Glare Reducing Lenses: Understanding Their Uses

Glare Reducing Lenses: Understanding Their Uses

There are two main types of glare reducing lenses for eyewear: lenses with an anti-reflective coating and polarized lenses. Both help to prevent glare in their own way. Glare reducing lenses can improve vision clarity, help people see better while driving at night, reduce annoying glare from water or other horizontal surfaces, and eliminate noticeable reflections on a lens itself.

What is glare?

Glare is caused by light bouncing off of a reflective surface. When talking about eyewear, people are most likely referring to lens glare or environmental glare. Lens glare is caused by the reflection of light off the surface of a lens. Whether it belongs to a camera, telescope, binoculars, or even just glasses, all lenses have some level of reflection with the lowest amount of reflection being less than 0.1%. Eyeglass lenses without a glare-reducing coating typically allow around 90% of light to pass through, depending on the lens material. The other 10% of the light reflects off the surfaces of the lens. The glare caused by this 10% reduces vision clarity, causes people to see halos around headlights and street lamps at night, and creates bright, almost white reflections on the lens itself.

Environmental glare is caused by light waves reflecting off of flat surfaces like water or the highway. It becomes focused and travels in a uniform direction parallel to that surface, creating a bright and intense reflection that we call glare. This type of glare affects everyone, regardless of whether or not they wear glasses.

glare reducing lenses

Outline, in Black

How do glare reducing lenses work?

While it may be impossible to eliminate 100% of the glare on glasses lens, technology has helped to get the number as close to 0 as possible. While both anti-reflective coatings and polarized lenses help to reduce glare, the technology behind these two is quite different. An anti-reflective coating (also known as AR or anti-glare coating) actually encourages more light to pass through a lens. When more light passes through, less light reflected off its surfaces, and thus, less glare.

Polarized lenses, on the other hand, reduce glare by absorbing light waves from a certain orientation. Most polarized lenses for eyewear are oriented to absorb horizontal light waves reflected off of flat surfaces like a lake or the snow-covered ground.

When it comes to eyewear, AR coatings are applied both eyeglass lenses and sunglass lenses. Anti-glare coating is applied to both sides of a lens to prevent light from reflecting off the back of the lens as well. Polarized lenses are typically used for sunglasses since the nature of its glare reducing technology is to block light instead of letting more through.

The benefits of glare reducing lenses

Many people question whether or not it’s worth it to get glare reducing lenses. The short answer is: while not everyone may need sunglasses with polarized lenses, lenses with an anti-reflective coating will vastly improve the quality of life for a glasses wearer.

Lens glare is a major source of eye strain since it reduces vision clarity, forcing your eyes to work harder to focus. People who work with computers are especially susceptible to this type of eye strain since illuminated screens act as a direct and constant source of glare on lenses. Adding AR coating to your lenses significantly lessens this glare, helps you see more clearly, and reduces eye strain caused by computer screens.

Glares called “halos” can be seen around the headlights of cars and street lamps. These halosare a great source of discomfort and distraction for glasses wearers who drive at night. They reduce visibility and make nighttime driving difficult. Anti-glare coating prevents these halos and helps to make driving at night safer for glasses wearers.

If you’re someone who is both literally and figuratively in the spotlight a lot, anti-reflective coating is a must. Glare caused by bright lights reflecting off a lens can be distracting. It also obscures your eyes, making it harder for people to find direct eye contact with you. So if you have a client- or customer-facing job, make sure to consider getting glare reducing glasses.

Finally, if you’re someone who spends a lot of time out on the water or working in the snow, you’re well aware of how much glare can reduce visibility and make it a literal pain to be outside. The tint on sunglasses with polarized lenses helps to reduce that all around brightness, while the polarization helps to save your eyes from blinding glare.

So for the best comfort while wearing glasses or sunglasses, consider glare reducing lenses. Not only will they help you see better, but they’ll also help you get the most out of life. At EyeBuyDirect, you can find affordable glare reducing lenses for any of our great styles.

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Don’t let glaucoma steal your vision

Overview

Open-angle glaucomaOpen-angle glaucomaOpen pop-up dialog box

Glaucoma is a group of eye conditions that damage the optic nerve, the health of which is vital for good vision. This damage is often caused by an abnormally high pressure in your eye.

Glaucoma is one of the leading causes of blindness for people over the age of 60. It can occur at any age but is more common in older adults.

Many forms of glaucoma have no warning signs. The effect is so gradual that you may not notice a change in vision until the condition is at an advanced stage.

Because vision loss due to glaucoma can’t be recovered, it’s important to have regular eye exams that include measurements of your eye pressure so a diagnosis can be made in its early stages and treated appropriately. If glaucoma is recognized early, vision loss can be slowed or prevented. If you have the condition, you’ll generally need treatment for the rest of your life.

Symptoms

The signs and symptoms of glaucoma vary depending on the type and stage of your condition. For example:

Open-angle glaucoma

  • Patchy blind spots in your side (peripheral) or central vision, frequently in both eyes
  • Tunnel vision in the advanced stages

Acute angle-closure glaucoma

  • Severe headache
  • Eye pain
  • Nausea and vomiting
  • Blurred vision
  • Halos around lights
  • Eye redness

If left untreated, glaucoma will eventually cause blindness. Even with treatment, about 15 percent of people with glaucoma become blind in at least one eye within 20 years.

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When to see a doctor

Promptly go to an emergency room or an eye doctor’s (ophthalmologist’s) office if you experience some of the symptoms of acute angle-closure glaucoma, such as severe headache, eye pain and blurred vision.

Causes

Glaucoma is the result of damage to the optic nerve. As this nerve gradually deteriorates, blind spots develop in your visual field. For reasons that doctors don’t fully understand, this nerve damage is usually related to increased pressure in the eye.

Elevated eye pressure is due to a buildup of a fluid (aqueous humor) that flows throughout the inside of your eye. This internal fluid normally drains out through a tissue called the trabecular meshwork at the angle where the iris and cornea meet. When fluid is overproduced or the drainage system doesn’t work properly, the fluid can’t flow out at its normal rate and eye pressure increases.

Glaucoma tends to run in families. In some people, scientists have identified genes related to high eye pressure and optic nerve damage.

Types of glaucoma include:

Open-angle glaucoma

Open-angle glaucoma is the most common form of the disease. The drainage angle formed by the cornea and iris remains open, but the trabecular meshwork is partially blocked. This causes pressure in the eye to gradually increase. This pressure damages the optic nerve. It happens so slowly that you may lose vision before you’re even aware of a problem.

Angle-closure glaucoma

Angle-closure glaucoma, also called closed-angle glaucoma, occurs when the iris bulges forward to narrow or block the drainage angle formed by the cornea and iris. As a result, fluid can’t circulate through the eye and pressure increases. Some people have narrow drainage angles, putting them at increased risk of angle-closure glaucoma.

Angle-closure glaucoma may occur suddenly (acute angle-closure glaucoma) or gradually (chronic angle-closure glaucoma). Acute angle-closure glaucoma is a medical emergency.

Normal-tension glaucoma

In normal-tension glaucoma, your optic nerve becomes damaged even though your eye pressure is within the normal range. No one knows the exact reason for this. You may have a sensitive optic nerve, or you may have less blood being supplied to your optic nerve. This limited blood flow could be caused by atherosclerosis — the buildup of fatty deposits (plaque) in the arteries — or other conditions that impair circulation.

Glaucoma in children

It’s possible for infants and children to have glaucoma. It may be present from birth or develop in the first few years of life. The optic nerve damage may be caused by drainage blockages or an underlying medical condition.

Pigmentary glaucoma

In pigmentary glaucoma, pigment granules from your iris build up in the drainage channels, slowing or blocking fluid exiting your eye. Activities such as jogging sometimes stir up the pigment granules, depositing them on the trabecular meshwork and causing intermittent pressure elevations.

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Risk factors

Because chronic forms of glaucoma can destroy vision before any signs or symptoms are apparent, be aware of these risk factors:

  • Having high internal eye pressure (intraocular pressure)
  • Being over age 60
  • Being black, Asian or Hispanic
  • Having a family history of glaucoma
  • Having certain medical conditions, such as diabetes, heart disease, high blood pressure and sickle cell anemia
  • Having corneas that are thin in the center
  • Being extremely nearsighted or farsighted
  • Having had an eye injury or certain types of eye surgery
  • Taking corticosteroid medications, especially eyedrops, for a long time

Prevention

These self-care steps can help you detect glaucoma in its early stages, which is important in preventing vision loss or slowing its progress.

  • Get regular dilated eye examinations. Regular comprehensive eye exams can help detect glaucoma in its early stages, before significant damage occurs. As a general rule, the American Academy of Ophthalmology recommends having a comprehensive eye exam every five to 10 years if you’re under 40 years old; every two to four years if you’re 40 to 54 years old; every one to three years if you’re 55 to 64 years old; and every one to two years if you’re older than 65. If you’re at risk of glaucoma, you’ll need more frequent screening. Ask your doctor to recommend the right screening schedule for you.
  • Know your family’s eye health history. Glaucoma tends to run in families. If you’re at increased risk, you may need more frequent screening.
  • Exercise safely. Regular, moderate exercise may help prevent glaucoma by reducing eye pressure. Talk with your doctor about an appropriate exercise program.
  • Take prescribed eyedrops regularly. Glaucoma eyedrops can significantly reduce the risk that high eye pressure will progress to glaucoma. To be effective, eyedrops prescribed by your doctor need to be used regularly even if you have no symptoms.
  • Wear eye protection. Serious eye injuries can lead to glaucoma. Wear eye protection when using power tools or playing high-speed racket sports in enclosed courts.

Health benefits of bitter kola


Did you know that Coca-Cola got its name from a common African tree?

Some of the first recipes for Coca-Cola were made using the extract of the bitter kola plant. Though the company hasn’t used actual kola to flavor their sodas in years, the name remains a reminder of the unusual plant that inspired the iconic drink.

Bitter kola, also known as bitter cola or Garcinia Kola, is a plant found in Central and Western Africa that has long been valued for its medicinal properties. Although traditional African medicine uses all parts of the Bitter Kola plant, the seeds are mostly commonly eaten.

Bitter kola seeds have a sharp, bitter flavor that eases into a slight sweetness as you chew, and they’re typically eaten raw.

Health Benefits

Although bitter kola has been eaten in Africa for years, scientists are just beginning to study the health benefits of this flowering plant.

According to these early studies, bitter kola may be able to help with health problems including:CONTINUE READING BELOW

Infections

Bitter kola has been used over the years to fight infections from the common cold to hepatitis. A 2018 study showed that bitter kola can help combat coughs, bacterial infections, and viral infections. Eating bitter kola when an infection starts may help fight the infection and make you feel better more quickly.

Inflammation

Bitter kola seeds have commonly been chewed on in Africa to fight against inflammatory conditions like arthritis. One 2008 study showed that patients with osteoarthritis in their knees showed significantly reduced inflammation when eating bitter kola compared to a placebo. The high levels of potassium in bitter kola may be a contributing factor in reducing inflammation.

Diabetes

Early studies suggest that a chemical called kolaviron, which is found in bitter kola, may protect against hypoglycemia in people with type 2 diabetes. Although this first study was done on rats and has not yet been reproduced on humans, these early findings are promising.

Nutrients per Serving

The FDA considers bitter kola generally safe to eat, but classifies it similarly to essential oils. That means there’s not much information available about serving sizes or nutritional data. However, a 2013 study found that bitter kola was high in the following nutrients:

  • Carbohydrates
  • Fat
  • Protein

The study same study also found that bitter kola had high levels of:

  • Vitamin C
  • Calcium 
  • Potassium
  • Iron
  • Caffeine

How to Prepare Bitter Kola

Bitter kola can be eaten on its own, uncooked, like many other nuts. Keep in mind, however, that it’s called “bitter” for a reason. Bitter kola can be an acquired taste.

You can sometimes find drinks made or flavored with bitter kola at African markets and online stores. If you don’t like the taste but want to introduce bitter kola to your diet, these drinks may be a good option.

Road safety and your eyesight

Uncorrected vision continues to endanger the lives of drivers, passengers, and pedestrians around the world. Compounded by external factors such as nighttime driving, inclement weather, and adverse road conditions, uncorrected vision contributes to more than 1.25 million road accident deaths each year.[1] Until recently, the intersection of vision and road safety has not received adequate attention. Consequently, there is a lack of awareness around the need to address the impact of vision problems on driver and road safety. While governments and policymakers can play a significant role in raising  greater awareness of this public health threat, eye care professionals are also part of the solution as they are a competent authority in promoting effective assessment of vision and correcting drivers’ visual functions.CONTENTKEY TAKEAWAYSREFERENCES

The problematic relationship between uncorrected vision and road safety is a deadly, global phenomenon, and is growing more dangerous. The World Health Organization (WHO) has reported that road traffic crashes are a leading cause of road deaths globally and the main cause of deaths among those aged 15 to 29 years-old.[2] What is perhaps most disturbing is how traffic accidents disproportionately affect low- or middle-income countries, which are home to more than 80 percent of the world’s population. Though these countries account for only 54 percent of the world’s vehicles, they see 90 percent of all road traffic deaths. These road accidents also come with an adverse economic impact, estimated at US$500 billion a year –another burden on low- or middle-income countries. [2]

“These road accidents also come with and adverse economic impact, estimated at US$ 500 Billion a year – another burden on low- or middle-income countries.”

There are hopeful signs, yet much work remains. Globally, the number of traffic deaths plateaued between 2007 and 2015 despite a four percent increase in the world’s population – and an increase in motorization even four times higher than that – suggesting that intervention efforts can and do save lives. [2] However, disparity remains. Among the 68 countries that saw a rise in the number of road traffic deaths between 2010 and 2013, 84 percent were low- or middle-income.[2]

Recognizing the severity and disparity of both the human toll and economic burden that traffic accidents place on national economies and individual households alike, the United Nations, in its Sustainability Goals, included an ambitious goal of halving traffic-related deaths and injuries by the year 2020.

This new imperative to address road safety brings with it a greater urgency to understand the underlying causes of traffic accidents. Much attention has been given to the effects of drunk driving and, more recently, the use of wireless devices while driving. But in addition to the important issues of inebriated and inattentive driving, vision impairment also warrants attention.

The assumption of good vision, necessary to safely operate a vehicle, has long caused uncorrected vision to be overlooked as a factor in road safety. Drs. Cynthia Owsley and Gerald McGwin note in their analysis, “Vision and Driving,” that “the visual demands of driving are intricate.” [3] By cataloging the many and varied visual tasks involved in driving, including the simultaneous use of central and peripheral vision to monitor primary and secondary tasks, they reinforce how visually intensive driving under normal conditions is. These findings have led researchers to conclude that many visual tests for drivers are inadequate, often failing to simulate the distractions and wide ranging contrast and luminance levels experienced in real-world road conditions.[3] This is compounded by the fact that many drivers avoid seeking evaluation and treatment for vision issues; in Europe, 19 percent of drivers reported delaying visits to an optician until they notice problems with their vision.[5]

Driving and vision infographics Vision Impact Institute - Points De Vue

The contributions of Owsley, McGwin, Chakrabarty and others to the growing dialogue around driving and vision are indicative of the increased attention and analysis that this issue requires. However, though the link between vision and road safety should be a global concern, the disparity between high-income and low- or medium-income countries illustrates that it remains very much a local issue, which demands a greater understanding of local factors.

Road Safety Around the World

As the correlation between vision and road safety has come to the forefront, more data is becoming available from both high-income and low- or medium-income countries.

In India, for example, the dual forces of population growth and economic development have resulted in a higher number of vehicles on the road and, consequently, a greater number of traffic accidents. One study of vision and drivers in India calculated the road crash involvement rate of drivers with unacceptable vision test results at 81 percent, which was 30 percent higher than that of drivers with good vision.[6] While many factors, including poor vehicle and road conditions and traffic violations, have been found to affect driver safety, researchers have pointed to vision problems,  worsened by night driving, as significant causes of driver safety challenges.

As the correlation between vision and road safety has come to the forefront, more data is becoming available from both high-income and low- or medium-income countries.

In India, for example, the dual forces of population growth and economic development have resulted in a higher number of vehicles on the road and, consequently, a greater number of traffic accidents. One study of vision and drivers in India calculated the road crash involvement rate of drivers with unacceptable vision test results at 81 percent, which was 30 percent higher than that of drivers with good vision.6 While many factors, including poor vehicle and road conditions and traffic violations, have been found to affect driver safety, researchers have pointed to vision problems,  worsened by night driving, as significant causes of driver safety challenges.

Driving and vision infographics Vision Impact Institute - Points De Vue

Despite the disproportionate impact of uncorrected vision on road safety in low- or medium-income countries, high-income countries are not immune to this threat. A 2003 European analysis of health-related risk factors in traffic accidents found that the risk of car crash increased by nine percent when there was a visual impairment.[7] Research also reveals how even a relatively small percentage of drivers with uncorrected vision can cause a significant economic impact. In the U.K., for example, only seven percent of the population suffers from uncorrected vision, yet the economic impact of road accidents in relation to vision amounted to US$55 million in 2012.[9,13]

Driving and vision infographics Vision Impact Institute - Points De Vue

Vision Solution Efforts

Though uncorrected vision remains a danger to road safety, recent research is helping to make the case for policies and resources that can put the brakes on this global public health threat. With more stakeholders undertaking efforts to understand the intersection of vision and road safety, researchers, governments, organizations and eye care professionals around the world are beginning to identify promising solutions. In Italy, researchers evidenced that the use of an appropriate ophthalmic compensation with corrective lenses is able to improve drivers’ visual abilities.[10] In India, for instance, as the result of early efforts to prevent traffic accidents, drivers are now required to undergo vision screenings and be granted access to driving aids such as anti-glare glasses.[4]

Based on their research, Drs. Owsley and McGwin recommend additional screening measures to augment current visual acuity tests, which would examine drivers’ contrast sensitivity, visual field, processing speed, and divided attention. But most importantly, they call for more research methodology on vision and driving to expand upon the current database of knowledge.[3]

However, more research, more testing and even more rigorous testing will not reduce the threat of uncorrected vision on road safety if drivers do not seek evaluation and treatment from eye care professionals. The WHO released a report, “Universal Eye Health: A Global Action Problem 2014-2019,” which focuses on finding solutions to visual impairments. According to the report, if vision care – such as refractive services and surgeries – were provided, more than two-thirds of people affected by uncorrected vision could improve their eyesight.[11]

For this reason, organizations like Essilor and the Fédération Internationale de I’Automobile (FIA) have pledged to address the correlation between poor vision and driver and road safety. Essilor’s role in the partnership is to advocate for road safety and reinforce FIA’s messages about the vital role of adequate vision along with corresponding efforts to lobby against road accidents and deaths. The collaboration between these two organizations rests on the “New Golden Rule, ‘Check your vision,’” which aims to raise awareness on vision as a public health challenge by updating FIA’s ten “Golden Rules” on road safety. This partnership received the distinct endorsement of the World Council of Optometry and the Vision Impact Institute at the 2nd World Congress of Optometry in Sept. 2017.[12]

Conclusion

It is imperative that we address vision problems and their impact on the safety of drivers, passengers, and pedestrians. Vision standards for driving must be a priority, and the development and implementation of these standards should not fall solely on local, state and national governments, but also on eye care professionals around the world. As we work towards our goal of expanding access to proper vision care around the world, our success will hinge on the collaboration between stakeholders to identify solutions that will improve driver vision, equip medical professionals with the information and resources they need and, ultimately, ensure road safety for drivers everywhere.

“It is imperative that we address vision problems and their impact on the safety of drivers, passengers, and pedestrians.”

Four technologies that could revolutionize the treatment of blindness

by Simon Makin

A decade ago, clinicians had nothing to offer most people affected by retinal degeneration. Breakthroughs in genetics, bionics and stem-cell therapy are changing that.

Worldwide, 36 million people have total vision loss1. They cannot see shapes or even sources of light. For most of these people, their blindness stems from rectifiable problems such as cataracts — they simply lack access to appropriate health care. The remaining millions, however, are blind as a result of conditions that currently have no effective treatment

Blindness is one of the most life-altering conditions a person could experience,” says William Hauswirth, an ophthalmologist at the University of Florida in Gainesville. As well as the difficulties that it causes for mobility and in finding employment, visual impairment is associated with a host of other health issues, including insomnia, anxiety and depression, and even risk of suicide. “Restoring useful vision would make an almost unimaginable improvement in quality of life,” Hauswirth says.

In high-income countries where preventable causes of visual impairment are routinely addressed, the leading cause of blindness is degeneration of the retina. Found at the back of the eye, this tissue contains specialized cells that react to light and process visual signals, and is therefore crucial to vision. Photoreceptor cells — neurons commonly known as rods and cones — convert light that strikes the retina into electrochemical signals. These signals then filter through a complex network of other neurons, including bipolar cells, amacrine cells and horizontal cells, before reaching neurons known as retinal ganglion cells. The long projections, or axons, of those cells form the optic nerve, along which signals from the retina are carried to the brain’s visual cortex, where they are interpreted as images.

Retinal disorders commonly involve the loss of photoreceptor cells, which depletes the eye’s sensitivity to light. In some retinal disorders, including age-related macular degeneration (AMD), this loss results from the failure of the epithelial cells that form a layer at the back of the retina known as the retinal pigment epithelium (RPE). The RPE keeps photoreceptor cells healthy by cleaning up toxic by-products produced during the reaction with light, as well as by providing nutrients. In retinal disorders in which photoreceptors remain in good shape, the main cause of blindness is degeneration of retinal ganglion cells.

Variety in the causes of visual impairment makes it more difficult to find solutions. But advances in several areas are raising hopes that almost all forms of retinal disorder could become treatable.

One approach is to augment or bypass damaged eyes with functional prostheses. Such bionic eyes can restore only limited vision at present, but researchers continue to push the devices’ capabilities. Another option is gene therapy. Already available to people with specific genetic mutations, researchers are looking to extend this approach to more people and conditions. Some scientists are also pursuing treatments based on a related technique known as optogenetics, which involves genetically altering cells to restore light sensitivity to the retina. This work is at an early stage, but researchers hope that the approach will ultimately be able to help a wide range of people, because it is agnostic to the causes of retinal degeneration. And efforts to replace lost or damaged cells of the retina, either in situ or through cell transplants, hint that even late-stage retinal disorders might eventually become treatable.

Much of this research is in its infancy. But Hauswirth is upbeat about the progress that has already been made. Ten years ago, he says, he often had to tell patients that he could do nothing for them. “For many of these diseases, that’s totally changed.”

Bionic eyes

Almost 30 years ago, Mark Humayun, a biomedical engineer at the University of Southern California in Los Angeles, began to electrically stimulate the retinas of people with blindness. Working with colleagues at Second Sight Medical Products, a medical technology firm in Sylmar, California, his experiments showed that such stimulation could induce the visual perception of spots of light called phosphenes. After a decade of work in animals to establish the amount of electrical current that could be applied safely to the eye, and armed with vastly increased knowledge about the number and types of cell that persist in degenerating human retinas, Humayun’s team was ready to begin working with people. Between 2002 and 2004, the researchers implanted a bionic eye in each of six people who had total or almost-total blindness in one eye — the first trial of its kind. Recipients of the device, known as the Argus I, reported being able to perceive phosphenes, directional movement and even shapes2. Around 300 people now experience the world through that device’s successor, the Argus II, which was approved by regulators in Europe in 2011 for use in people with retinitis pigmentosa — a group of rare genetic disorders that cause photoreceptor cells to degenerate. The US Food and Drug Administration (FDA) followed suit two years later.

To be fitted with an Argus II, patients undergo surgery to attach a chip containing an electrode array to the surface of the retina. To ‘see’ with the device, a miniature video camera mounted on a pair of glasses relays signals to a processing unit that is worn by the recipient. The processor converts the signals into instructions that are transmitted wirelessly to the implanted device. The electrodes then stimulate retinal ganglion cells at the front of the retina. Using the prosthesis is a learning process. Recipients must train their brain to interpret the new type of information being received. And because the video camera does not track the motion of the eye, they must also learn to move their head to direct their gaze.

The device provides only limited vision. Users can detect light sources and objects with high-contrast edges, such as doors or windows, and some can decipher large letters. These limitations arise partly because the device’s 60 electrodes provide very low resolution compared with the millions of photoreceptor cells in a healthy eye. But even this minimal enhancement can improve people’s lives considerably.

Whereas the Argus II is an epiretinal implant — meaning that it lies on the surface of the retina — other devices in development are designed be placed beneath the retina. These subretinal implants can stimulate cells that are closer to those that normally introduce signals to the retina — the photoreceptor cells. By stimulating cells higher up in the visual pathway, researchers hope to preserve more of the signal processing that is performed by a healthy retina.

Retina Implant, a biotechnology company based in Reutlingen, Germany, has built a subretinal implant comprising photodiodes (semi-conductor devices that convert light into electrical current) that directly sense light entering the eye. This eliminates the need for an external video camera, enabling users to direct their gaze naturally. Power is supplied by a hand-held unit, through a coil that is implanted under the skin above the ear. Alpha AMS, the current version of the system, has received regulatory approval in Europe for use in people with retinitis pigmentosa.

Pixium Vision in Paris is testing a photovoltaic subretinal implant called Prima. The system projects signals from a video camera mounted on glasses into the eye using near infrared light, the wavelength of which optimally drives photodiodes in the device to stimulate retinal cells. Projecting images in this way gives users some control over the direction of their gaze, because they can explore the scene by moving just their eyes. Power is also provided by the near infrared light, making the implant wireless and the surgery to fit it less complicated. “Patients are learning how to regain vision faster, and the resolution seems better,” says José-Alain Sahel, an ophthalmologist at the University of Pittsburgh, Pennsylvania, who is conducting safety trials of the device in ten people with AMD. “It’s early days, but this is very promising.”

All of these devices work only when functioning cells remain in the retina. In common eye conditions that affect mainly photoreceptor cells, including retinitis pigmentosa and AMD, there are usually some cells left to stimulate. But when too many retinal ganglion cells die, as occurs in advanced diabetic retinopathy and glaucoma, such implants cannot help. For people without any remaining retinal function, whether due to disease or injury, an alternative bionic approach might be more relevant.

Humayun and his colleagues are working on a system that bypasses the eye by sending signals straight to the brain. The idea is not new: in the 1970s, US biomedical engineer William Dobelle showed that directly stimulating the visual cortex triggered the perception of phosphenes3. But bionic-eye technology is only now catching up. Second Sight has developed Orion, a system that is, according to Humayun, “basically a modified Argus II”. Similarly to the original, it uses a video camera and signal processor that communicate wirelessly with an implant, but the chip is placed on the surface of the visual cortex rather than on the retina. The device is being tested in five people with limited or no light perception owing to an eye injury or damage to the retina or optic nerve. “So far, the results are good,” he says. “We’re not surprised by anything yet.”

Given that some of the technology is already tried and tested in people, Humayun is optimistic that the system could receive regulatory approval within a few years. “Obviously, brain surgery has a different level of risk, but the procedure is pretty straightforward, and the Orion could help a lot more patients,” he says. However, much less is known about stimulating the brain to provide useful vision. “We know a lot about the retina but very little about the cortex,” says Botond Roska, a neurobiologist at the Institute of Molecular and Clinical Ophthalmology Basel in Switzerland. “But we’ll never know enough if we don’t try,” he says.

Gene therapy

The eye is an ideal target for gene therapy. Because it is relatively self-contained, the viruses that are used to carry genes into the cells of the retina should not be able to travel to other parts of the body. And because the eye is an immunoprivileged site, the immune system is less likely to mount a defence there against such a virus.

In the first demonstration of gene therapy’s potential for tackling blindness, three teams of researchers have used the technique to successfully treat people with Leber congenital amaurosis (LCA). This inherited condition leads to severe visual impairment and begins in the first few years of life, often manifesting as night blindness before progressing to broad vision loss that starts at the periphery of the visual field. It affects about 1 in 40,000 babies.

The researchers set out to tackle a specific form of the condition known as LCA 2. This is caused by mutations in RPE65, a gene that is expressed by the RPE. The mutated gene adversely affects RPE function, which in turn damages photoreceptor cells. In 2008, the three teams, including one led by Hauswirth, each showed in early-stage clinical trials that delivering a healthy copy of RPE65 to the retina was safe and led to limited improvements in vision4,5,6. A phase III clinical trial led by Albert Maguire, an ophthalmologist at the University of Pennsylvania in Philadelphia, showed in August 2017 that people with LCA 2 who received the treatment were better able to navigate obstacle courses at various levels of illumination than those who did not7. In December 2017, the FDA approved the treatment, voretigene neparvovec (Luxturna), making it the first gene therapy for any condition to get the green light for clinical use.

It is possible to treat LCA 2 in this way because the genetic mutations involved show a recessive pattern of inheritance. This means that both of a person’s copies of RPE65 must carry the relevant mutations to cause the disorder. Supplying a single, unmutated version therefore fixes the problem. Conditions that are caused by dominantly inherited mutations, however, require only one mutated copy of a gene to manifest. In most of these, simply adding a normal copy of the gene will not help; instead, the mutated gene must be inactivated. One option is to silence it by adding specific RNA molecules that intercept the mutated gene’s instructions for making the faulty protein, and then supplying a normal copy of the gene to take over its duties — an approach termed suppression and replacement. Another is to correct the mutation using the gene-editing technique CRISPR–Cas9. Researchers at the University of Modena and Reggio Emilia in Modena, Italy, demonstrated this approach in a mouse model of retinitis pigmentosa8 in 2016. The following year, a team in the United States used it to correct the mutation that causes a type of glaucoma both in mice and in cultured human cells9.

An important driver of gene therapy’s progress has been the use of adeno-associated virus (AAV) to deliver replacement genes to cells. AAVs have been shown to be safe, in part, because they tend not to integrate into their host cell’s genome, which minimises the risk of cells turning cancerous. And their small size enables them to diffuse widely through the eye and therefore infect a large number of cells. But the ability of AAVs to deliver genes has limits: some genes are simply too large for AAVs to carry, including ABCA4, mutations in which can lead to Stargardt disease, an inherited form of macular degeneration. Two workarounds are being pursued. The first uses a virus with a greater carrying capacity, such as a lentivirus, to deliver replacement genes. The safety and efficacy of this approach is unknown but clinical trials are under way. A second strategy is to break the replacement gene in two and transport each half separately into the cell, together with a means of recombining them. “That’s working in at least one animal model right now,” says Hauswirth.

Regardless of the approach, gene therapy has a considerable limitation. More than 250 genes are implicated in blindness, and because each can be affected by numerous types of mutation, the number of potential therapeutic targets is enormous. For example, more than 100 mutations in the gene RHO lead to retinitis pigmentosa, the most common dominantly inherited retinal disorder. Developing a gene therapy for each and every mutation is not practical, says Hauswirth.

Researchers are working on a potential solution that puts a twist on the suppression-and-replacement approach. Instead of targeting copies of RHO containing a specific mutation, they use a silencing RNA to suppress all expression of the gene, whether RHO is mutated or not, while delivering a replacement copy that is immune to the silencing RNA. A team led by Jane Farrar, a geneticist at Trinity College, Dublin, showed the promise of this strategy in 2011 in a mouse model of dominant retinitis pigmentosa10. In 2018, Hauswirth and colleagues tested the approach in dogs with retinitis pigmentosa11. They showed that degeneration of photoreceptor cells in treated areas of the retina could be halted — an improvement that persisted for at least eight months. This strategy tackles all mutations that can cause dominantly inherited retinitis pigmentosa in a single treatment, and therefore extends gene therapy from recessive to dominantly inherited conditions “in a fairly simple way”, Hauswirth says. He plans to study how well dogs that have received the treatment can navigate a maze, and is collecting the safety data required to start a clinical trial.

Optogenetics

Gene therapy works only in people whose blindness is caused by genetic mutation. It is also not appropriate for tackling end-stage retinal disease, in which an insufficient number of cells remain to be repaired. But a related approach based on a technique called optogenetics is disorder agnostic and could lead to treatments for different stages of degeneration. In optogenetics, genes that enable cells to produce light-sensitive proteins known as opsins are delivered by a virus. Introducing opsins can restore some light sensitivity to damaged photoreceptors, or even make other cells of the retina, including bipolar cells or retinal ganglion cells, sensitive to light.

Problematically, however, whereas photoreceptor cells in the eye can cope with a wide range of light intensities — working well in both bright sunlight and twilight — opsins have a limited range and often perform better at high light intensities. A potential solution is to use a set-up that works in a similar way to Pixium Vision’s Prima bionic-eye system, in which recipients are fitted with glasses that incorporate a video camera that captures the user’s view and a projector that points into their eye. As with Prima, the benefit is that the nature of the light that enters the eye can be tailored to the retina’s modification; however, in this case, the intensity and wavelength chosen are those that best drive the newly introduced opsins rather than implanted photodiodes.

GenSight Biologics, a biotechnology company in Paris that counts Sahel and Roska among its founders, is already testing such a system. It aims to deliver an opsin to retinal ganglion cells, but there is a potential snag: retinal ganglion cells are naturally sensitive to light. They express melanopsin, a protein involved in the pupillary light reflex, in which the pupil of the eye constricts in response to bright light. To avoid triggering this, the researchers at GenSight are using an opsin that responds to red wavelengths of light, because melanopsin responds preferentially to light at the blue end of the spectrum. The company began an early-stage clinical trial in October 2018 in people with advanced retinitis pigmentosa who have minimal sight remaining. The trial will involve cohorts from the United Kingdom, France and the United States, and the initial results are expected by the end of 2020.

“This is a simple approach, and we’ll have to see what will be gained,” Roska says. “Then, we can move to more and more sophisticated approaches.” One problem that remains is that many of the disorders that optogenetic techniques might treat involve degeneration of specific parts of the retina, with useful vision being retained in other areas. The light that drives opsins is visible and could interfere with remaining natural vision. In the future, opsins that respond to near infrared light might enable optogenetics treatments to work in tandem with residual natural vision.

Cell regeneration

Stem-cell therapy could potentially cure blindness even in the late stages of disease. Because stem cells can be coaxed into becoming any type of cell, they could be used to grow fresh retinal cells for transplantation into the eye to replace those that have been lost. However, studies in animals have shown that only a small proportion of transplanted neurons are able to integrate correctly into the retina’s complex neural circuitry. This is a considerable obstacle for stem-cell treatments that aim to replace retinal neurons.

The cells that make up the retinal pigment epithelium, on the other hand, sit outside the retina’s circuitry. Stem-cell-based therapies therefore hold most promise for conditions, such as AMD and retinitis pigmentosa, that cause RPE cells to degenerate. “Photoreceptors have to connect to the circuitry but the retinal pigment epithelium does not,” says Roska. “That’s where people are closest to making advances.” Initially, researchers tried injecting the retina with stem-cell-derived RPE cells in suspension, but too few stuck around where they were needed. Several teams now think that a better approach is to transplant RPE cells into the eye as a preformed sheet that is then held in position by a biocompatible scaffold. “The scaffold approach is a huge improvement, compared to suspension, for RPE cells,” says Sahel.

In March 2018, the London Project to Cure Blindness — a collaboration between University College London and Moorfields Eye Hospital in London — announced the findings of a phase I trial in which a sheet of RPE cells was implanted in the retinas of two people with wet AMD (a rare, serious form of AMD involving abnormal growth and leakage of blood vessels). Both recipients tolerated the procedure well and were able to read 21–29 more letters on a reading chart than before the treatment12. The following month, a team led by Humayun reported similar phase I results in five people with dry AMD, the more common form of the condition13. These initial results are full of promise. “This has led to a lot of excitement,” says Humayun. But the findings need to be confirmed by phase III trials in a greater number of participants, and Humayun cautions that the treatment might be many years away from use in the clinic, because no stem-cell therapy for a retinal disorder has yet made it through the approval process.

A related approach, still in the early stages of basic research, could fulfil the hope of replacing lost neurons, opening the door to treatments for a wide variety of eye diseases. In humans, mature neurons do not divide and therefore cannot regenerate, which makes restoring vision especially difficult. But the same is not true of all animals. Reptiles and certain fish can regenerate retinal neurons, and birds also exhibit some regenerative capacity. Thomas Reh, a neuroscientist at the University of Washington in Seattle, is trying to unlock this ability in humans. But rather than transplanting cells grown in the laboratory, Reh aims to coax cells that are already in the retina to differentiate into fresh neurons.

In 2001, Reh suggested that Müller glia — cells that provide structure to the retina and support its function — are the source of new neurons that had been observed in fish and birds14. He and his team then set about finding out whether Müller glia could be used to generate fresh neurons in mice. In 2015, they engineered mice to make Ascl1, a protein that is important for producing neurons in fish, and then damaged the animals’ retinas15. Their hope was that Ascl1 would provoke Müller glia to transform into neurons.

The experiment failed to produce new neurons in adult mice, but succeeded in young mice. Nikolas Jorstad, a biochemist and PhD student in Rehs’ team, proposed that chemical modifications made to chromatin (a complex of DNA, RNA and proteins) in the cell nucleus during development might block access in mature cells to genes that enable Müller glia to transform into neurons. In August 2017, Reh’s team showed that by introducing an enzyme that reverses such modifications, they could coax Müller glia to differentiate16. “For the first time, we could regenerate neurons in the adult mouse,” Reh says. “After all these years I was pretty thrilled.” Although they were not true photoreceptor cells, and looked more like bipolar cells, the neurons connected to the existing circuitry, and were sensitive to light. “I was surprised they connect as well as they do,” says Reh.More from Nature Outlooks

Although far from being ready to treat retinal disorders in people, the work has huge potential. The next step will be to repeat the studies in animals with eyes that are more similar to those of humans. Reh’s team are already working with retinal cell cultures from non-human primates. The researchers also need to work out how to direct the differentiation process to produce specific cell types such as rods and cones. “Now we’ve got our foot in the neuron-making business, cones would be great,” says Reh.

If successful, the approach could be widely applicable. “Ultimately, this will be the way all these eye diseases will be treated,” Reh predicts. “It just makes sense. You don’t have to worry about getting transplants right. Your cells are right where you need them.”

Humayun is also encouraged by the work. “I cheer on anybody with a new good idea,” he says. “It’s very early, it’s high risk, but never say never. That’s what I’ve learned.”

References

  1. 1.Bourne, R. R. A. et al. Lancet Glob. Health 5, e888–e897 (2017).
  2. 2.Humayun, M. S. et al. Vision Res. 43, 2573–2581 (2003).
  3. 3.Dobelle, W. H. & Mladejovsky, M.

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Gene therapy works only in people whose blindness is caused by genetic mutation. It is also not

Russian Covid-19 Vaccine very effective – British Medical Journal

According to RT Respected British medical journal The Lancet publishes study showing Russia’s ‘Sputnik V’ Covid-19 vaccine to be 100% effective

Respected British medical journal The Lancet publishes study showing Russia’s ‘Sputnik V’ Covid-19 vaccine to be 100% effective

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The world’s first registered Covid-19 vaccine successfully produced antibodies in all 76 participants in early-stage trials, according to a study published in The Lancet, one of the oldest and best-respected medical journals.

The trials of ‘Sputnik V,’ funded by the Russian Ministry of Health, discovered that every single patient who received the vaccine developed antibodies, and none showed any significant side effects.

On August 11, Russian President Vladimir Putin announced that the country had registered the world’s first Covid-19 vaccine. Developed by Moscow’s Gamaleya Research Institute of Epidemiology and Microbiology, the formula will first be distributed to teachers and medical workers before being made available to the general public next year.

Following its registration, scientists and epidemiologists worldwide criticized Russia for the vaccine’s rapid development, questioning its safety due to the small number of trial subjects. Although the testing was successful, longer-term trials, including a placebo comparison, are required to establish its actual quality, according to The Lancet.

However, according to the Russian Direct Investment Fund (RDIF), the scientific data provided in the article proves the “safety and effectiveness of the Russian vaccine.”

Explaining why it took a month to publish the results, Gamaleya Institute head, Alexander Gintsburg, told Russian news agency Interfax that it took a long time to prepare, and the article was evaluated by five independent reviewers, following all standard international peer-review conventions.

“The scientific community has assessed it quite objectively,” he explained

Despite its well-earned reputation, The Lancet has not been immune from controversy. Earlier this year, the journal published a study refuting the effectiveness of malaria drug hydroxychloroquine against Covid-19, but it was later withdrawn due to multiple errors.

Russia is not the only country racing to develop an effective vaccine against coronavirus. In July, a coronavirus vaccine developed by the University of Oxford was reported as creating immunity in a trial of 1,077 people. Earlier that month, UK security minister James Brokenshire claimed that Russian hackers had attacked British labs to steal vaccine research data.

Eye care tips

Your eyes are an important part of your health. Most people rely on their eyes to see and make sense of the world around them. But some eye diseases can lead to vision loss, so it is important to identify and treat eye diseases as early as possible. You should get your eyes checked as often as your health care provider recommends it, or if you have any new vision problems. And just as it is important to keep your body healthy, you also need to keep your eyes healthy.

Eye Care Tips

There are things you can do to help keep your eyes healthy and make sure you are seeing your best:

  • Eat a healthy, balanced diet. Your diet should include plenty or fruits and vegetables, especially deep yellow and green leafy vegetables. Eating fish high in omega-3 fatty acids, such as salmon, tuna, and halibut can also help your eyes.
  • Maintain a healthy weight. Being overweight or having obesity increases your risk of developing diabetes. Having diabetes puts you at higher risk of getting diabetic retinopathy or glaucoma.
  • Get regular exercise. Exercise may help to prevent or control diabetes, high blood pressure, and high cholesterol. These diseases can lead to some eye or vision problems. So if you exercise regularly, you can lower your risk of getting these eye and vision problems.
  • Wear Transition lenses. Sun exposure can damage your eyes and raise your risk of cataracts and age-related macular degeneration. Protect your eyes by using sunglasses that block out 99 to 100 percent of both UV-A and UV-B radiation.
  • Wear protective eye wear. To prevent eye injuries, you need eye protection when playing certain sports, working in jobs such as factory work and construction, and doing repairs or projects in your home.
  • Avoid smoking. Smoking increases the risk of developing age-related eye diseases such as macular degeneration and cataracts and can damage the optic nerve.
  • Know your family medical history. Some eye diseases are inherited, so it is important to find out whether anyone in your family has had them. This can help you determine if you are at higher risk of developing an eye disease.
  • Know your other risk factors. As you get older, you are at higher risk of developing age-related eye diseases and conditions. It is important to know you risk factors because you may be able to lower your risk by changing some behaviors.
  • If you wear contacts, take steps to prevent eye infections. Wash your hands well before you put in or take out your contact lenses. Also follow the instructions on how to properly clean them, and replace them when needed.
  • Give your eyes a rest. If you spend a lot of time using a computer, you can forget to blink your eyes and your eyes can get tired. To reduce eyestrain, try the 20-20-20 rule: Every 20 minutes, look away about 20 feet in front of you for 20 seconds.

Eye Tests and Exams

Everyone needs to have their eyesight tested to check for vision and eye problems. Children usually have vision screening in school or at their health care provider’s office during a checkup. Adults may also get vision screenings during their checkups. But many adults need more than a vision screening. They need a comprehensive dilated eye exam.

Getting comprehensive dilated eye exams is especially important because some eye diseases may not have warning signs. The exams are the only way to detect these diseases in their early stages, when they are easier to treat.

The exam includes several tests:

  • A visual field test to measure your side (peripheral) vision. A loss of peripheral vision may be a sign of glaucoma.
  • A visual acuity test, where you read an eye chart about 20 feet away, to check on how well you see at various distances
  • Tonometry, which measures your eye’s interior pressure. It helps to detect glaucoma.
  • Dilation, which involves getting eye drops that dilate (widen) your pupils. This allows more light to enter the eye. Your eye care provider examines your eyes using a special magnifying lens. This provides a clear view of important tissues at the back of your eye, including the retina, macula, and optic nerve.

If you have a refractive error and are going to need glasses or contacts, then you will also have a refraction test. When you have this test, you look through a device that has lenses of different strengths to help your eye care professional figure out which lenses will give you the clearest vision.

At what age you should start getting these exams and how often you need them depends on many factors. They include your age, race, and overall health. For example, if you are African American, you are at higher risk of glaucoma and you need to start getting the exams earlier. If you have diabetes, you should get an exam every year. Check with your health care provider about if and when you need these exams

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Glaucoma

Glaucoma

Glaucoma is a condition that damages your eye‘s optic nerve. It gets worse over time. It’s often linked to a buildup of pressure inside your eyeGlaucoma tends to run in families. You usually don’t get it until later in life. 

The increased pressure in your eye, called intraocular pressure, can damage your optic nerve, which sends images to your brain. If the damage worsens, glaucoma can cause permanent vision loss or even total blindness within a few years.

Most people with glaucoma have no early symptoms or pain. Visit your eye doctor regularly so they can diagnose and treat glaucoma before you have long-term vision loss.

If you lose vision, it can’t be brought back. But lowering eye pressure can help you keep the sight you have. Most people with glaucoma who follow their treatment plan and have regular eye exams are able to keep their vision.

Glaucoma Causes

The fluid inside your eye, called aqueous humor, usually flows out of your eye through a mesh-like channel. If this channel gets blocked, the liquid builds up. Sometimes, experts don’t know what causes this blockage. But it can be inherited, meaning it’s passed from parents to children.

Less-common causes of glaucoma include a blunt or chemical injury to your eye, severe eye infection, blocked blood vessels inside your eye, and inflammatory conditions. It’s rare, but eye surgery to correct another condition can sometimes bring it on. It usually affects both eyes, but it may be worse in one than the other.

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Glaucoma Risk Factors

It mostly affects adults over 40, but young adults, children, and even infants can have it. African Americans tend to get it more often, when they’re younger, and with more vision loss.

You’re more likely to get it if you:

  • Are of African American, Irish, Russian, Japanese, Hispanic, Inuit, or Scandinavian descent
  • Are over 40
  • Have a family history of glaucoma
  • Have poor vision
  • Have diabetes
  • Take certain steroid medications such as prednisone
  • Have had an injury to your eye or eyes
  • Have corneas that are thinner than usual
  • Have high blood pressure, heart disease, diabetes, or sickle cell anemia
  • Have high eye pressure
  • Are nearsighted or farsighted

Types of Glaucoma

There are two main kinds:

Open-angle glaucoma. This is the most common type. Your doctor may also call it wide-angle glaucoma. The drain structure in your eye (called the trabecular meshwork) looks fine, but fluid doesn’t flow out like it should.

Angle-closure glaucoma. This is more common in Asia. You may also hear it called acute or chronic angle-closure or narrow-angle glaucoma. Your eye doesn’t drain like it should because the drain space between your iris and cornea becomes too narrow. This can cause a sudden buildup of pressure in your eye. It’s also linked to farsightedness and cataracts, a clouding of the lens inside your eye.

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Less common types of glaucoma include:

Secondary glaucoma. This is when another condition, like cataracts or diabetes, causes added pressure in your eye.

Normal-tension glaucoma. This is when you have blind spots in your vision or your optic nerve is damaged even though your eye pressure is within the average range. Some experts say it’s a form of open-angle glaucoma.

Pigmentary glaucoma. With this form, tiny bits of pigment from your iris, the colored part of your eye, get into the fluid inside your eye and clog the drainage canals.

Glaucoma Symptoms

Most people with open-angle glaucoma don’t have symptoms. If symptoms do develop, it’s usually late in the disease. That’s why glaucoma is often called the “sneak thief of vision.” The main sign is usually a loss of side, or peripheral, vision.

Symptoms of angle-closure glaucoma usually come on faster and are more obvious. Damage can happen quickly. If you have any of these symptoms, get medical care right away:

  • Seeing halos around lights
  • Vision loss
  • Redness in your eye
  • Eye that looks hazy (particularly in infants)
  • Upset stomach or vomiting
  • Eye pain

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Glaucoma Diagnosis

Glaucoma tests are painless and don’t take long. Your eye doctor will test your vision. They’ll use drops to widen (dilate) your pupils and examine your eyes.

They’ll check your optic nerve for signs of glaucoma. They may take photographs so they can spot changes at your next visit. They’ll do a test called tonometry to check your eye pressure. They may also do a visual field test to see if you’ve lost peripheral vision.

Glaucoma Treatment

Your doctor may use prescription eye drops, oral medications, laser surgery, or microsurgery to lower pressure in your eye.

Eye drops. These either lower the creation of fluid in your eye or increase its flow out, lowering eye pressure. Side effects include allergies, redness, stinging, blurred vision, and irritated eyes. Some glaucoma drugs may affect your heart and lungs. Be sure to tell your doctor about any other medications you’re taking or are allergic to.

Oral medication. Your doctor might also prescribe medication for you to take by mouth, such as a beta-blocker or a carbonic anhydrase inhibitor. These drugs can improve drainage or slow the creation of fluid in your eye.

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Laser surgery. This procedure can slightly raise the flow of fluid from your eye if you have open-angle glaucoma. It can stop fluid blockage if you have angle-closure glaucoma. Procedures include:

  • Trabeculoplasty. This opens the drainage area.
  • Iridotomy. This makes a tiny hole in your iris to let fluid flow more freely.
  • Cyclophotocoagulation. This treats areas of the middle layer of your eye to lower fluid production.

Microsurgery. In a procedure called a trabeculectomy, your doctor creates a new channel to drain the fluid and ease eye pressure. This form of surgery may need to be done more than once. Your doctor might implant a tube to help drain fluid. This surgery can cause temporary or permanent vision loss, as well as bleeding or infection.

Open-angle glaucoma is most often treated with combinations of eye drops, laser trabeculoplasty, and microsurgery. Doctors tend to start with medications, but early laser surgery or microsurgery could work better for some people.

Infant or congenital glaucoma — meaning you are born with it — is usually treated with surgery because the cause is a problem with your drainage system.

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Glaucoma Prevention

You can’t prevent glaucoma. But if you find it early, you can lower your risk of eye damage. These steps may help protect your vision:

  • Have regular eye exams. The sooner your doctor spots the signs of glaucoma, the sooner you can start treatment. If you’re over age 40 and have a family history of the disease, get a complete eye exam from an eye doctor every 1 to 2 years. If you have health problems like diabetes or are at risk of other eye diseases, you may need to go more often.
  • Learn your family history. Ask your relatives whether any of them have been diagnosed with glaucoma.
  • Follow your doctor’s instructions. If they find that you have high eye pressure, they might give you eye drops to prevent glaucoma.
  • Exercise. Moderate activity like walking or jogging at least three times a week might help lower eye pressure.
  • Protect your eyes. Use protective eyewear when playing sports or working on home improvement projects

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Corneal layers and corneal transplant -Eye care perspective

What are the different layers of the cornea?

The cornea is the clear front wall of the eye, similar to a watch crystal. Functionally, the cornea has 3 main layers. All layers are clear and must be so to focus light properly.

The outer 10% of the cornea, the epithelium, is the protective skin layer that has sensation. It tells you to blink when your eyes are dry or if you get something in it. The epithelium protects the stroma from infection, scarring, drying out, and other potential harm. Just like the outer layer of your skin, the corneal epithelium sheds and regenerates itself every week. The new cells are grown by corneal epithelial stem cells. Therefore, an eye with an area of bad or opaque epithelium that blocks vision likely does not need a transplant to remove to opacity. Instead of the opacity typically only needs to be removed so that new healthy and clear epithelium can grow in (superficial keratectomy or SK). All other corneal layers do not regenerate and would need to be replaced or transplanted if removed.

The middle layer, the stroma, is the tough structural portion that makes up about 85% of the cornea thickness. The stroma is covered on the outside by the epithelium and on the inside by Descemet’s membrane.

The inner layer of the cornea, Descemet’s membrane, makes up 3 to 5% of its thickness. It is a thin Saran wrap-like membrane that has a single layer of extremely important endothelial cells living on its inner surface. The cornea needs oxygen and nutrients delivered to it, but it does not have blood flow like other parts of the body since blood vessels would make it opaque. The cornea is nourished by a clear fluid called aqueous humor. Aqueous inside the eye is made by arteries and is drained by veins. Descemet’s membrane limits the rate that aqueous humor can flow into the cornea. The endothelial cells pump out “used” aqueous humor so that it does not build up in the cornea which would otherwise make it opaque.

Corneal Layer Diagram

Is it possible to remove and/or transplant just one layer of the cornea?

Yes. We can explain the different types of cornea transplantation using the analogy of a wall. Think of the stroma as the drywall and bricks, Descemet’s membrane and endothelium as the wallpaper, and the epithelium as the temporary protective layers of clear coat that the owner must paint on the bricks from time to time.

Not that long ago, the only available surgery was a full thickness cornea transplant or penetrating keratoplasty (PK). With PK, all of the corneal layers are transplanted, and new epithelial cells grow over the new cornea in time. The entire wall is knocked out with a hammer, and a new wall and all its layers are brought in. The owner provides a new layer of clear coat over time. A prosthetic corneal transplant (keratoprosthesis (KPro) is an artificial full-thickness corneal transplant.

Selective keratoplasty surgeries are a huge advance over PK in that they allow us to replace just the portion of the cornea that is diseased.

Selective Keratoplasty Diagram

    • Superficial keratectomy (SK) and phototherapeutic keratectomy (PTK) remove the epithelium (and possibly some superficial stroma with PTK) so that new healthier epithelium can grow in. The corneal epithelium is the only layer of the cornea that regenerates. So, SK and PTK aren’t true transplants. They are like removing some imperfections in the layer of clear coat on the outside of the house so that the owner can lay down new clear coat. Conversely, an epithelial stem cell transplant is necessary when the owner’s can of clear coat runs out or goes bad. It becomes necessary to give the owner a new supply of clear coat, which involves transplanting in a special area of a donor cornea.
    • Deep anterior lamellar keratoplasty (DALK) transplants all stroma but leaves the host’s healthy Descemet’s membrane and endothelium behind to allow less risk of rejection or less risk from blunt trauma. The entire wall is changed out, but the host’s own delicate wallpaper is left behind.
  • Descemet’s membrane endothelial keratoplasty (DMEK) and Descemet’s stripping automated endothelial keratoplasty (DSAEK) replace Descemet’s membrane and endothelium without removing the host’s stroma. DMEK is more selective than DSAEK. Both DMEK and DSAEK remove old Descemet’s membrane and endothelium. DMEK adds a new Descemet’s membrane and endothelium only. DSAEK also adds a new Descemet’s membrane and endothelium but with an additional layer of donor stroma. Using the wallpaper analogy, in both DMEK and DSAEK the old wallpaper is removed. With DMEK, only new wallpaper is inserted. With DSAEK, a new piece of drywall that has new wallpaper on it is inserted on top of the old drywall.

Why do we need different types of transplants? Why not just do PK for everyone

PK has many limitations regarding vision, astigmatism, recovery time, rejection rate, and other risks. All types of selective transplants improve the outcomes when compared to PK. DMEK especially has many other benefits compared to DSAEK and PK. For example, performing PK for purely endothelial disease is outdated. It would be like knocking down the wall and bringing in a whole new wall when the only thing needed is new wallpaper!

Cornea Transplant Procedures Diagram

Do I need to go on systemic immunosuppressive medications for a corneal transplant?

Not for most types of corneal transplants. Epithelial stem cell transplants are an exception. When someone gets a kidney or a heart transplant, they need to go on strong medications that make the immune system less aggressive and less likely to attack the transplant. These medications have some potentially significant side effects.

Because there are no blood vessels in the cornea, it is generally invisible to the immune system. Thus for corneal transplants, with the exception of epithelial stem cell transplants, we only need anti-inflammatory eye drops to prevent an immune system attack or rejection. Most patients get down to one drop a day after several few months.

Rarely, patients with aggressive immune systems require stronger systemic medications to prevent rejection. Even with aggressive immune systems, rejection is still very rare with DMEK and is more commonly seen with DSAEK, DALK, or PK. PK has the highest risk of rejection.

After a corneal transplant, do I have to take any precautions if I ever receive a vaccination?

There is some data to suggest that the increase in the immune system activity after vaccination, including the flu and shingles vaccines, may put the graft at a slightly increased risk for a rejection episode. To combat this, we typically recommend that if you were down to just one steroid drop a day, immediately following a vaccine you should increase the steroid drops to four times a day for one week, then two times a day for one week, and then go back to just one daily. If you have previously been told that you cannot take steroid drops due to pressure problems or other issues, ask your cornea surgeon for advice before getting a vaccine. transplant.

How long will my transplant last?

Traditional full thickness corneal transplants (PK) last about 20 years. Cell count studies show that, with the passage of time, transplants still lose endothelial cells gradually just like any other cornea, but usually at a faster rate. When the endothelial cell counts fall low enough, the transplant becomes opaque and fails. Since DMEK and DSAEK are relatively new, it is not possible to say how long they will last; however, preliminary data is encouraging, especially for DMEK. There is variation between transplants, but early data suggest some transplants can even last one’s lifetime. Either way, the replacement of a transplant is possible.

Dr. Tenkman is studying variables that may reveal which donors have cells that are more resistant to death and also surgical techniques that are minimally harmful to endothelial cells. Many surgeons suggest it is normal to lose 30 to 50% of the donor’s endothelial cells during surgery. We have some early data suggesting less than 10% cell loss from surgery when selecting a specific subset of donors.

Does a rejection episode mean that I will lose my cornea transplant?

No. If untreated, a rejection episode can cause significant damage. But usually, the episode stops with an increase in anti-inflammatory eye drops. Patients are instructed to RSVP: come see us if they develop Redness, Sensitivity to light, Vision reduction, or Pain. It’s key to see us right away for prompt diagnosis and treatment.

Will I need glasses after my transplant? Could laser vision correction be done to reduce any postoperative need for glasses?

Whether or not you need glasses after your transplant depends on many factors. DMEK transplants reduce glasses dependence the most often. DSAEK is less predictable. DALK and PK can both frequently cause high astigmatism that needs glasses or even hard contacts to attain good vision.

Some patients are candidates for ASA (advanced surface ablation) to minimize their dependence on glasses or contacts after corneal transplant surgery. ASA is a laser vision correction procedure similar to LASIK. Whether or not ASA could be done to reduce dependence on glasses or contacts after surgery depends on several factors and is taken on a case by case basis.

What are the costs and risks of a cornea transplant?

Corneal transplant tissue is donated, but still typically costs $3,700 or more. The fees go to the eye banks that must harvest the corneas, screen for possible diseases that could be transferred to the patient, transport, and process the corneas, and deliver them to the surgery center… all within just a few days. The cost of receiving a transplant includes not just the tissue, but the surgery center, surgeon, and anesthesia fees. Fortunately, these costs are less at an outpatient surgery center and are typically covered by Medicare and private insurance, although patients may be responsible for deductibles and co-payments. Generally, DMEK and DSAEK can be performed in an outpatient surgery center whereas DALK and PK more often have to be done at a hospital. Having surgery at a hospital can increase costs several-fold.

The risk of infection from a corneal transplantation procedure is about the same as following a routine blood transfusion. The risk of receiving a disease from a transplant is very low.

Other risks include primary graft failure, rejection, graft dislocation, cataract formation, glaucomainfection, irregular astigmatism, double vision, bleeding, iris damage, vitreous prolapse, and cystoid macular edema. Most of these complications are quite rare but are theoretically possible with all types of eye surgery. Patients using steroid drops, which all corneal transplants require, have to be followed for the development of increased pressure. High eye pressure usually gives no symptoms, so follow up is crucial to allow the doctor to treat as necessary with medication or procedures. Patients are usually seen every 3 to 6 months for life depending on the strength of steroid used.

In our hands, the overall success rate for a DMEK or DSAEK graft attaching and working well is about 99%. Should the transplant fail due to rejection or otherwise, it would need to be repeated.

Because the time to heal is longer for DALK and PK, and because they involve more risk, the odds of a DALK or PK failing to restore vision is more significant than for DMEK or DSAEK. DALK and PK have several additional risks.

  • DALK, and more so PK, have a higher risk of bleeding during surgery while the patient’s own cornea is removed and the eye is depressurized. Although not common, such bleeding can do significant damage to the eye.
  • DALK, and more so PK, also have a significant risk of rejection. Higher doses of steroid drops may be necessary in here to prevent or treat rejection, which can increase the risk of increased eye pressure (glaucoma).
  • DALK and PK involve a 360-degree corneal incision. Such large corneal wounds don’t heal with full strength and are at risk to split open with moderate blunt trauma (ie if a patient fell and hit their face in the shower). If the wound were to split open, it could lead to loss of the eye.
  • DALK and PK require about 16 sutures. These sutures are not removed for many months or even over a year. The sutures are buried in a manner so they cause no pain to the patient. However, they commonly become loose and can cause a foreign body or sandy sensation. More significantly, a loose suture is a risk for infection (corneal ulcer). Corneal ulcers can be more serious in the setting of a corneal transplant because the immune system in the area is suppressed by steroid eye drops.
  • DALK and PK commonly heal with large amounts of astigmatism. The normally spherical corneal surface becomes like an irregularly shaped egg. Since the smooth corneal shape largely determines focus, an irregular cornea causes blurred vision. Corneal astigmatism is measured in diopters. In routine patients who have not had had a corneal transplant, we consider 1 diopter mild astigmatism, 2 diopters moderate astigmatism, and 3 diopters high astigmatism. DALK and PK average about 4 to 5 diopters of astigmatism. A common range is 2 to 10 diopters of astigmatism. Regarding astigmatism risk, there are controllable and uncontrollable causes. The surgeon can try to sew the graft as evenly as possible to reduce risk of severe astigmatism; however, the surgeon cannot control the natural tension lines in the cornea or how symmetrically the tension lines will balance as the wound heals. Severe or irregular astigmatism cannot be corrected with glasses. Special hard contact lenses are often necessary. On average, one-third of all DALK and PK patients need hard contact to see their best due to astigmatism. Therefore, at Bennett & Bloom, we never perform DALK or PK for keratoconus patients to try to get out of contact lenses. The patient could go through all the added cost and risk of surgery only to end up where they started… or worse. DALK and PK are reserved for severe disease that cannot be fixed by contact lens wear

 

For corneal transplant at Bennet & Bloom Eye center in the USA or for medical tourism in the USA, contact Eyeupdate Clinic & Optical Supplies, 01 Ajuwon junction, Off Elliot bus stop, Iju Ishagah, Lagos.Tel: +2347030000001, +19093663551