How to detect early signs of heart disease in the eyes

Early Signs of Heart Diseases Appear in the Eyes

According to experts, Eye doctors may be able to detect signs of heart disease during a comprehensive eye exam. A new study finds that people with heart disease tend to have retinas marked by evidence of eye stroke.

Eye strokes happen when the eye is deprived of blood flow and oxygen, causing cells to die. This creates a mark, called a retinal ischemic perivascular lesion. These marks can be spotted when eye doctors run optical coherence tomography, or OCT is order to take a closer look at the retina.

OCT scans of the retina are valuable ways to detect disease and dysfunction in all parts of the body — not just the eyes. Eye scans can detect signs of Alzheimer’s, Parkinson’s and other underlying health conditions.

How eye exams can detect heart disease

The eye is the only place in the body where a doctor can see the live action of blood vessels, nerves and connecting tissue without relying on an invasive procedure. That’s why eye doctors are often the first to detect health conditions including high blood pressure, high cholesterol, stroke and more.

While the marks left behind by eye strokes may be present in low numbers in healthy people, those with heart disease tend to have a far greater number. Researchers arrived at these results by reviewing the medical records of 84 people with heart disease and 76 healthy people, all of whom had received a retinal OCT scan.

Visual field testing

What is visual field testing?

As you focus on the words in this article, how much can you see out of the corners of your eyes? Can you tell what’s happening in your surroundings?

Your visual field is how wide of an area your eye can see when you focus on a central point. Visual field testing is one way your ophthalmologist measures how much vision you have in either eye, and how much vision loss may have occurred over time.

Visual field testing can detect blind spots

A visual field test can determine if you have blind spots (called scotoma) in your vision and where they are. A scotoma’s size and shape can show how eye disease or a brain disorder is affecting your vision. For example, if you have glaucoma, this test helps to show any possible side (peripheral) vision loss from this disease.

Ophthalmologists also use visual field tests to assess how vision may be limited by eyelid problems such as ptosis and droopy eyelids.

Six types of visual field tests

1. Confrontation visual field test

A common way for your doctor to screen for any problems in your visual field is with a confrontation visual field test. You will be asked to look directly at an object in front of you, (such as the doctor’s nose) while one of your eyes is covered. Your doctor may hold up different numbers of fingers in areas of your peripheral (side) vision field and ask how many you see as you look at the target in front of you.

2. Automated static perimetry test

To check for a suspected eye problem or monitor the progress of an eye disease, your ophthalmologist will rely on more specific tests to measure how you see objects in your field of vision. The automated static perimetry test is used for this purpose. It helps create a more detailed map of where you can and can’t see.

To do this test, you will look into the center of a bowl-shaped instrument called a perimeter. The eye not being tested will be covered with a patch. The testing eye will have your lens prescription placed in front of it to make sure you are seeing as well as possible.

A patient sits at a perimeter machine taking a visual field exam.

You will be asked to keep looking at a center target throughout the test. Small, dim lights will begin to appear in different places throughout the bowl, and you will press a button whenever you see a light. The machine tracks which lights you did not see.

You may blink normally during the test. You may also pause the test if you feel you need to take a break for a moment.

Because you are looking straight ahead during the test, your doctor can tell which lights you see outside of your central area of vision. Since glaucoma affects peripheral vision, this test helps show if there is vision loss outside of your central visual field.

This is called a “static” test because the lights do not move across the screen, but blink at each location with differing amounts of brightness. This allows the machine to find the dimmest light you can see at each location in your peripheral vision.

The machine will show some lights that are too dim for you to see. This is done deliberately to find what is called the “visual threshold” of each location, meaning the brightness that you have trouble seeing half the time. You may be concerned because you can’t see every light. Rest assured that this is how the test is supposed to work.

Normal visual field test results

A printout of normal visual field results.

3. Kinetic visual field test

In some cases, you may have a test called kinetic visual field testing. While it is similar to the perimetry testing process described above, the kinetic test uses moving light targets instead of blinking lights.

4. Frequency doubling perimetry

Another way your ophthalmologist can assess loss of vision is using something called frequency doubling perimetry. It uses an optical illusion to check for damage to vision. Vertical bars (usually black and white) appear on the perimeter screen. These bars will flicker at varying rates. If you are not able to see the vertical bars at certain times during the test, it could show vision loss in certain parts of your visual field.

5. Electroretinography

To check for visual field loss from certain retina conditions, your ophthalmologist may also use electroretinography (ERG). This test measures the electrical signals of light-sensitive cells in the retina called photoreceptors as well as other cells. To do this test, your eyes are dilated and you will also be given numbing eye drops. Your eyes are held open with instrument called a speculum. A tiny device called an electrode is placed on your cornea. You will look into a bowl-shaped machine at flashing or varying patterns of light. The electrode measures your eye’s electrical activity in response to the light.

6. Amsler grid: A basic visual field test for central vision

People who have age-related macular degeneration (AMD) are familiar with one very basic type of visual field test: the Amsler grid. It is a pattern of straight lines that makes a grid of many equal squares. You look at a dot in the middle of the grid and describe any areas that may appear wavy, blurry or blank.Amsler Grid, used at home daily to track vision changes in people with some eye conditions like AMD or toxoplasmosisAmsler Grid

The Amsler grid is commonly used at home by people with AMD. This test only measures the middle of the visual field, but is a simple yet helpful tool for monitoring vision changes.

How do you know if you need visual field testing?

Visual field testing is an important part of regular eye care for people who are at risk for vision loss from disease and other problems.

People with the following conditions should be monitored regularly by their ophthalmologist, who will determine how often visual field testing is needed:

  • Glaucoma
  • Multiple sclerosis
  • Thyroid eye disease (Graves’ disease)
  • Pituitary gland disorders
  • Central nervous system problems (such as a tumor that may be pressing on visual parts of the brain)
  • Stroke
  • Long-term use of certain medications (such as Plaquenil, or hydroxychloroquine, which requires yearly visual field checkups)

People with diabetes and high blood pressure have a greater risk of developing blocked blood vessels in the optic nerve and retina. They may need visual field testing to monitor any effects of these conditions on their vision.

If your visual field is limited, your ability to drive may be in jeopardy. If you are concerned about vision loss or your ability to continue driving, talk with an eye care practitioner.

You can have your visual field testing at Eyeupdate Eye clinic, 01, Ajuwon bus stop, Akute-Ajuwon Road via Iju Ishaga.

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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

Muscles, Nerves, and Blood Vessels in the Human Eye

By David Terfera, Shereen Jegtvig

Muscles enable you to move your eyes. Ocular nerves allow you to interpret what you see and blood vessels keep your eyes oxygenated. Six muscles, collectively called the extraocular muscles, move the eyeball. A seventh muscle moves the eyelid and is also found in the orbit.

The muscles of the human eye

The following muscles help your eyes move around.

image0.jpg

Muscles, Nerves, and Blood Vessels in the Human Eye

By David Terfera, Shereen Jegtvig

Muscles enable you to move your eyes. Ocular nerves allow you to interpret what you see and blood vessels keep your eyes oxygenated. Six muscles, collectively called the extraocular muscles, move the eyeball. A seventh muscle moves the eyelid and is also found in the orbit.

The muscles of the human eye

The following muscles help your eyes move around.

image0.jpg

  • Levator palpebrae superioris: Originates on the sphenoid bone above the optic canal. It inserts into the superior tarsis and skin of the eyelid. It’s innervated by the oculomotor nerve and elevates the superior eyelid.

  • Superior oblique: Originates on the sphenoid bone and inserts into the sclera deep to the superior rectus muscle. It’s innervated by the trochlear nerve and abducts, depresses, and medially rotates the eyeball.

  • Inferior oblique: Originates on the anterior part of the orbital floor and inserts onto the sclera deep to the lateral rectus muscle. It’s innervated by the oculomotor nerve and abducts, elevates, and laterally rotates the eyeball.

  • Superior rectus: Originates on the common tendinous ring and inserts into the sclera behind the corneoscleral junction. It’s innervated by the oculomotor nerve, and it elevates, adducts, and medially rotates the eyeball.

  • Inferior rectus: Originates on the common tendinous ring and inserts into the sclera behind the corneoscleral junction. It’s innervated by the oculomotor nerve and depresses, adducts, and laterally rotates the eyeball.

  • Medial rectus: Originates on the common tendinous ring and inserts into the sclera behind the corneoscleral junction, this muscle is innervated by the oculomotor nerve and adducts the eyeball.

  • Lateral rectus: Originates on the common tendinous ring and inserts into the sclera behind the corneoscleral junction. It’s innervated by the abducent nerve and abducts the eyeball.

The nerves of the eye

The eyes are served by the following cranial nerves and their branches:

image1.jpg

  • Optic nerve (CN II): Sensory nerve that transmits impulses from the retina to the brain

    • Oculomotor nerve (CN III), trochlear nerve (CN IV), and abducent nerve (CN VI): Enter the orbital space through the superior orbital fissure to innervate the extraocular muscles.

    • Ophthalmic nerve (part of the trigeminal nerve, CN V): This nerve has three branches:

      • The lacrimal nerve runs to the lacrimal gland and gives off branches to the conjunctiva and skin of the superior eyelid.

      • The frontal nerve enters through the superior orbital fissure and provides sensory innervation to the superior eyelid, scalp, and forehead.

      • The nasociliary nerve is the sensory nerve to the eyeball. It also has branches that serve the orbit and other parts of the face. One of its branches, the infratrochlear nerve, supplies the eyelids, conjunctiva, and lacrimal sac.

    • Ciliary ganglion: This group of postsynaptic parasympathetic nerve cell bodies is associated with the oculomotor nerve and ophthalmic nerve (CN V1). Presynaptic parasympathetic fibers from the oculomotor nerve synapse on the cell bodies of postsynaptic parasympathetic neurons in the ciliary ganglion.

      Short ciliary nerves emerge from the ciliary ganglion and enter the eye. The short ciliary nerves contain postsynaptic parasympathetic fibers from the ciliary ganglion, afferent fibers of the nasociliary nerve, and postsynaptic sympathetic fibers from the internal carotid plexus. Postsynaptic parasympathetic fibers innervate the ciliary muscle and sphincter pupillae muscle. Afferent fibers convey sensory impulses from the iris and cornea. Postsynaptic sympathetic fibers innervate the dilator pupillae muscle.

      The long ciliary nerves contain afferent and postsynaptic sympathetic fibers from the nasociliary nerve. Long ciliary nerves bypass the ciliary ganglion and run to the iris, cornea, and dilator pupillae muscle.

    The blood vessels

    Blood flow to the orbit (and beyond) comes from branches of the internal carotid artery, chiefly via the ophthalmic artery and its branches:

    • Ophthalmic artery: Branches from the internal carotid artery and passes through the optic canal into the orbital cavity

    • Central artery of the retina: Runs from the ophthalmic artery to the eyeball alongside the optic nerve; it branches at the optic disc and supplies the retina

    • Supraorbital artery: Starts at the ophthalmic artery and exits the orbit at the supraorbital notch to supply the forehead and scalp

    • Supratrochlear artery: Runs from the ophthalmic artery to the forehead and scalp

    • Lacrimal artery: Runs from the ophthalmic artery along the lateral rectus muscle to supply the lacrimal gland, conjunctiva, and the eyelids

    • Dorsal nasal artery: Branches from the ophthalmic artery and runs along the nose to supply it with blood

    • Short posterior ciliary arteries: Branch from the ophthalmic artery and pierce the sclera at the edge of the optic nerve; they supply the choroid and the rods and cones of the retina

    • Long posterior ciliary arteries: Branch from the ophthalmic artery and pierce the sclera to supply the ciliary body and iris

    • Posterior ethmoidal artery: Leaves the ophthalmic artery to supply blood to ethmoidal cells

    • Anterior ethmoidal artery: Runs from the ophthalmic artery to supply ethmoidal cells, frontal sinus, nasal cavity, and skin over the nose

    • Anterior ciliary artery: Runs from the muscular branches of the ophthalmic artery through the sclera near the rectus muscles and forms an arterial network in the iris and ciliary body

    • Infraorbital artery: Runs from the maxillary artery along the infraorbital groove and out to the face

    Blood is returned from the orbits via the superior and inferior ophthalmic veins, which pass through the superior orbital fissure into the cavernous sinus. The central vein of the retina may join an ophthalmic vein or enter the cavernous sinus directly. Vorticose veins drain the vascular layer of the eyeball, and the scleral venous sinus encircles the anterior chamber of the eyeball.

How alcohol affects your eyes -Eye care perspective

Although light consumption of alcohol probably won’t cause any health problems, drinking alcohol excessively can have harmful effects on your body, including your eyes. Heavy drinking of alcohol may cause problems with your vision and overall eye health including the following:

    • Decreased visual performance: Your overall visual performance may be altered since drinking heavily impairs brain function. You may have blurred vision or double vision due to weakened eye muscle coordination. You may also experience delayed reactions while driving.
    • Slow pupil reactions: Alcohol tends to affect the speed at which your iris constricts and dilates. A driver that has been drinking alcohol cannot adapt as quickly to oncoming headlights.
    • Decreased peripheral vision: Drinking alcohol has also been shown to decrease the sensitivity of your peripheral vision. This may give you the effect or perception of having tunnel vision.
  • Decreased contrast sensitivity: Drinking too much alcohol can alter your contrast sensitivity, or how precise you can discern between shades of gray. Driving in rain or fog will be much more dangerous.
  • Optic neuropathy: Also referred to as tobacco-alcohol amblyopia, people who drink or smoke in excess can develop optic neuropathy. You might develop a painless loss of vision, decreased peripheral vision or reduced color vision. Even though studies have shown the vision loss to be a result of a nutritional deficiency, some professionals believe that the condition develops because of toxic effects of alcohol and tobacco.
  • Frequent migraines: Alcohol has been shown to be a trigger for severe migraine headaches in some people. You may experience a temporary, but debilitating visual aura before the onset of the headache. The visual aura may appear as blind spots, graying of vision or zig-zag patterns of light.​
  • Poor cosmetic appearance: Drinking can cause eye redness. Alcohol causes the blood vessels in your eyes to expand, making them more prominent.

 

If you have any issues with your eyes, visit or call : Eye update Eye clinic & optical supplies, 01, Ajuwon junction, Ajuwon bus stop, Akute/Ajuwon road, off Elliot bus stop, Iju-Ishagah. Tel: 08034971582

Postal Codes of Streets in Ojodu Lagos Nigeria

Ojodu Streets Zip Codes

Address:
Area: Ojodu, Lagos, Lagos State. Associated Zip Code: 100213

District Name: Area: Ojodu
Local Government Area: Lagos
State: Lagos State
Associated Zip Code: 100213

Streets: (260)
Street name Zip Code
Raimi St St. 100213
Rasheed Baruwa St. 100213
Regina Ola Ore St St. 100213
Sogo St St. 100213
Sowebo Oladipupo St. 100213
Soyemi St St. 100213
Sule Abore St St. 100213
Taiwo Ishola St. 100213
Taiwo Okolu St. 100213
Tijani Bello St St. 100213
Unity Cl St. 100213
Zinzon S St. 100213
Alara St St. 100213
Adesina St St. 100213
Funsho St St. 100213
Tobun St St. 100213
Olumo St St. 100213
OlasimboSt St. 100213
Olu Osifeso St St. 100213
Remi Abuah St St. 100213
Majaro St St. 100213
Akintunde St St. 100213
Mobolaji St St. 100213
Johnson St St. 100213
Araromi St St. 100213
Ajayi St St. 100213
Aderibigbe St St. 100213
Lawal St St. 100213
Adebiyi St St. 100213
Abiodun St St. 100213
Adesina St St. 100213
Barikisu Iyade St St. 100213
University Rd St. 100213
Davies St St. 100213
Ayodele St St. 100213
Amusa St St. 100213
Sule St St. 100213
Abudu St St. 100213
Amen St St. 100213
Ajayi Bembe St St. 100213
Obadina St St. 100213
Mosuro St St. 100213
Sadiku St St. 100213
Ebun St St. 100213
Balogun St St. 100213
Are Ago St St. 100213
Abule Ijesha Rd St. 100213
Morris Rd St. 100213
Eletu Odibo St St. 100213
Shodipe St St. 100213
Saka Ln St. 100213
Martins St St. 100213
Odenike St St. 100213
Shobowale St St. 100213
Otun St St. 100213
Oduntan St St. 100213
Oguntuga St St. 100213
Silver St St. 100213
Bailey St St. 100213
Akinsola St St. 100213
Bamigbopa St St. 100213
Alaka St St. 100213
Mosuro St St. 100213
Bankole St St. 100213
Lemboye St St. 100213
Ogabi St St. 100213
Iwaya Rd St. 100213
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Chalazion -Eye/Optical clinic near Ojokoro

chalazion is a small, usually painless, lump or swelling that appears on your eyelid. A blocked meibomian or oil gland causes this condition. It can develop on the upper or lower eyelid, and may disappear without treatment. Chalazia is the term for multiple chalazion.

A chalazion is sometimes confused with an internal or external stye. An internal stye is an infection of a meibomian gland. An external stye is an infection in the area of the eyelash follicle and sweat gland. Styes are usually painful and chalazia usually aren’t. Chalazia may develop after styes.

You should see your eye doctor if you think you have a chalazion, especially if it blocks your vision or if you’ve had chalazia in the past.

Causes and risk factors

The chalazion is caused by a blockage in one of the tiny meibomian glands of the upper and lower eyelids. The oil these glands produce helps to moisten the eyes.

Inflammation or viruses affecting the meibomian glands are the underlying causes of chalazia.

Chalazia are more common in people with inflammatory conditions like seborrheaacnerosacea, chronic blepharitis, or long-term inflammation of the eyelid. They’re also more common in people with viral conjunctivitis or an infection covering the inside of the eyes and eyelids.

Recurring or unusual chalazia may be symptoms of more serious conditions, but these are rare.

Symptoms

A chalazion usually appears as a painless lump or swelling on your upper or lower eyelid. Chalazia may affect both upper and lower lids and can occur in both eyes at the same time. Depending on the size and location of the chalazion, it may blur or block vision.

Although not as common, a chalazion may be red, swollen, and painful if an infection is present.

Diagnosis

In most cases, a doctor can diagnose this condition by taking a close look at the lump on your eyelid. Your doctor will also ask about your symptoms to determine if the lump is a chalazion, a stye, or something else.

Treatment

Some chalazia can go away without treatment. If your doctor does recommend treatment, options may include:

Home care

First, do not try to squeeze the chalazion. It’s best if you touch it as little as possible.

Instead, you should apply a warm compress to your eyelid four times per day for about 10 minutes at a time. This can reduce the swelling by softening the oils in the blocked gland. Make sure you wash your hands before you touch the area.

Your doctor may also tell you to gently massage the lump a few times per day or to scrub your eyelid. Your doctor may also prescribe eye drops or eyelid creams.

Medical treatment

If the chalazion doesn’t go away with home treatment, your doctor may recommend a corticosteroid injection or a surgical procedure. Both the injection and the surgery are effective treatments.

The choice of treatment depends on several different factors. Your doctor will explain the benefits and risks.

Preventing a chalazion

It’s not always possible to avoid getting a chalazion. This is especially true if you’re prone to this type of eye problem. But there are a few things that you can do to prevent this condition:

  • Always wash your hands before touching your eyes.
  • Make sure that anything that comes in contact with your eyes, such as contact lenses and glasses, is clean.
  • If you have a condition that increases your chance of developing chalazia, follow your doctor’s instructions to help control them.

 

If you have any eye infection or discomfort with the eyes, call or visit:

Eye update Eye clinic & opticals 01, Ajuwon junction, Ajuwon bus stop, beside BPNL filling station, Akute/Ajuwon road, off Elliot bus stop, Iju-Ishagah Near Ojokoro. Tel: 0803497158, 08107531046

Arifanla Akute -Eye clinic near Arifanla Akute Ogun state

Greetings from Eyeupdate Eye clinic & optical supplies.

This page is all about eye care services for Arifanla residents in Akute.

If you have any issues with your eyes, worry no more. Simply contact us at Eyeupdate Eye clinic by filling the form below. You can also call us via 08034971582 or 08107531046 for eyecare advice. Our well equipt eye clinic is located at 01 Ajuwon junction, Ajuwon bus stop near Grail-land Estate gate, Ajuwon

When to see an Eye-Doctor

1, You always have a headache
2, Your eye is infected
3, There are bright flashes or floaters
4, There is eye pain
5, You have been squinting
6, You have diabetes or it is in the family
7, You have hypertension or it is in the family
8, Excessive light sensitivity
9, Your eyes are always red
10, You spend so much time on computer or phone-screen
11, If you have never had your eyes examined before.

COVID-19 & Eye Health -Eye/Optical within Obawole Iju Ishaga

The 2019 novel coronavirus (COVID-19) pandemic is rapidly changing the way the health and development communities are working. With the proximity of eye health professionals to patients during eye examinations and reports that the virus can cause conjunctivitis, COVID-19 has implications for eye health and eye health professionals. Travel restrictions, reprioritisation of health resources and economic consequences are impacting the work of many of our member and partner organisations.

To assist IAPB members, eye health personnel, health professionals and program personnel, IAPB is collating and sharing information and resources specific to eye health and international development in relation to COVID-19. Without much ado, COVID-19 Resources: Here is what we know:

COVID 19 & Eye Health Resources
COVID 19 Resources
RESOURCES 

Eye Health, Health, International Development and Vision Impairment News and Blogs

Member Stories
MEMBER STORIES

Read the COVID 19 stories from our Members across the globe.