Showing posts with label retinal. Show all posts
Showing posts with label retinal. Show all posts

Wednesday, May 14, 2014

Launch of a new alliance for global assessment of diabetic retinopathy

A new project has been launched to assess the awareness, treatment and implications of diabetic retinopathy globally. Results are intended to inform decision-making and policy development around this common and serious complication of diabetes.

Project partners, the International Federation on Ageing (IFA) and the International Diabetes Federation (IDF), working in collaboration with the New York Academy of Medicine (NYAM) and the International Agency for the Prevention of Blindness (IAPB) will gather evidence on knowledge, policies, standards of care, and supportive services for retinopathy across 40 countries.

Retinopathy is one of the most common complications associated with diabetes and one of the major causes of adult blindness. Up to 11% of adults with diabetes have Diabetic Macular Edema (DME), a specific type of diabetic retinopathy. According to the IDF Diabetes Atlas 6th edition, there are large variations in the estimates of retinopathy prevalence in people with known diabetes, with estimates ranging from 11 to 45% worldwide in people with type 1 and type 2 diabetes.

The global assessment of retinopathy has two substantive and connected phases:

1. Phase I comprises approximately 120 interviews in eight countries representative of low, middle and high socio-economic status to better understand the level of awareness of: retinopathy as a condition and common complication of diabetes; the access, availability and pathway to retinopathy services; and the existence and content of relevant governmental policy.

2. Phase II is the implementation of a survey in 40 countries, which will be formulated based on the data gathered in Phase I. The survey aims to garner statistically significant evidence intended to assist in the development of effective governmental policy.

The project will culminate in the production of a barometer report and a compendium of resources designed to increase awareness, as well as to inform policy and practice related to diabetic retinopathy and vision loss across countries.

This project is financially supported by Bayer Pharma AG. Bayer is not involved in the analysis of the findings.

Source

Saturday, May 10, 2014

New technique to determine gene carriers for autosomal recessive retinitis pigmentosa

Scientists from Bascom Palmer Eye Institute and Duke University Medical Center have developed a non-invasive technique to determine if individuals carry a gene for the autosomal recessive type of retinitis pigmentosa

The work was being presented at the 2014 Annual Meeting of the Association for Research in Vision and Ophthalmology (ARVO) in Orlando, Florida.

The technique involves collecting a patient's urine and measuring the ratio between specific compounds. The non-invasive process makes subsequent testing clinic-friendly, especially for children being screened.

In search of quantitative biomarkers for the disease, the authors checked on the urinary and plasma dolichol profiles in autosomal recessive RP (arRP) patients and carriers with mutations in the DHDDS gene encoding dehydrodolichol diphosphate synthase, a key enzyme in dolichol biosynthesis. Dolichols are long chain polyisoprenoid alcohols composed of 17-21 isoprene units.

Mutations in the DHDDS gene lead to a characteristic shortening of plasma and urinary dolichols, which, as per the authors of this study, can be used as a functional readout of the enzyme. Urinary and plasma D18/D19 ratios reliably determine if a DHDDS genotype is disease-causing. 
D18/D19 ratio is a viable objective functional biomarker and can be readily adapted as a clinical test for arRP diagnosis and carrier screening with DHDDS or other genetic mutations that impair dolichol biosynthesis.

Wednesday, May 7, 2014

DENAQ, a new chemical that may restore sight in retinitis pigmentosa and macular degeneration

Scientists from the University of California, Berkeley report on a chemical ‘photoswitch’ named DENAQ that may be a potential drug for treating patients suffering from blinding diseases such as retinitis pigmentosa (RP) and age-related macular degeneration (AMD).

RP and AMD are blinding diseases caused by the degeneration of rods and cones, leaving the remainder of the visual system unable to respond to light. In the paper published in Neuron, the authors led by Dr Richard H Kramer report about a chemical photoswitch named DENAQ that restores retinal responses to white light of intensity similar to ordinary daylight, compared to earlier attempts at photoswitch that required very bright ultraviolet light, making it unsuitable for use in patients. In experiments conducted on three-month to six-month-old healthy mice, and on mice carrying a mutation causing nearly all their rods and cones to degenerate by the time they were a month old, a single intraocular injection of DENAQ has been able to photosensitize the blind retina for about 3 days, restoring electrophysiological and behavioral responses with no toxicity. DENAQ also is able to rapidly turns itself off, allowing rapid repeated stimulation of the retina. The researchers compared the retinae of DENAQ-injected mice to untreated healthy mice and found no signs of toxicity for up to 30 days after the injection.

Retinas with damaged rods and cones are subject to several morphological and biochemical changes, making them different from a healthy retina in more than one way. Experiments on mouse strains with functional, nonfunctional, or degenerated rods and cones show that DENAQ is effective only in retinas with degenerated or dead photoreceptors. Apparently, the degenerated outer retinal cells help in DENAQ photosensitization due to changes in electrophysiological characteristics, while the presence of intact photoreceptors possibly prevent this action. This appears to give it significant advantage, since this selective action on diseased tissue alone may potentially reduce side effects on healthy retina.

DENAQ confers light sensitivity on a hyperpolarization-activated inward current that is enhanced in degenerated retina, enabling optical control of retinal ganglion cell firing. The acceptable light sensitivity, favorable spectral sensitivity, and selective targeting to diseased tissue make DENAQ a prime drug candidate for vision restoration in patients with end-stage RP and AMD.

The researchers plan on conducting more experiments, including in larger animals before its safety can be established and any clinical trials can be considered.

To watch a video of Dr Kramer explaining his work, click here.

Sources: NeuronUniv of California, BerkeleyKramer LabThe Scientist

Editor's note: The drug appears to have an exciting potential to help patients with retinitis pigmentosa and age-related macular degeneration. There are two thoughts though. 

1. Such a drug may only work in advanced stages of the disease, considering we will have to wait for the retinal cells to die before it can act.

2. We also need to know how long the effect of one injection lasts. Such treatment may require repeat injections over a long-term, something similar to Lucentis or Avastin.

Thursday, November 21, 2013

QLT announces clinical & regulatory update for oral retinoid program for inherited retinal disease

QLT announced that, following meetings with the U.S. Food and Drug Administration and the European Medicines Agency, the Company believes that it is close to finalizing a pivotal trial protocol for QLT091001 for the treatment of inherited retinal disease such as Leber Congenital Amaurosis (LCA) and Retinitis Pigmentosa (RP) due to mutations in the LRAT and RPE65 genes, both orphan indications.

The Company expects to provide final guidance on its development plans in these indications before the end of the first quarter of 2014 after final feedback from the European regulatory agency.

Additionally, QLT has initiated recruitment of subjects for a Phase IIa proof-of-concept trial of its drug candidate, QLT091001, in adult subjects with Impaired Dark Adaptation (IDA), a condition that results in decreased ability to recover visual sensitivity in the dark after exposure to bright lights.

The Company also announced the launch of a compassionate use program for QLT091001 in LCA and RP, as well as plans for a patient registry and an update on its retreatment study in these indications.

source

Thursday, July 26, 2012

A new potential treatment for Retinitis Pigmentosa & Macular Degeneration

A team of researchers from the University of California, Berkeley, in collaboration with researchers at University of Munich and University of Washington in Seattle have found a chemical that can temporarily restore some amount of vision in blind mice.

This compound could eventually help those with Retinitis Pigmentosa, a common genetic disease that leads to blindness, as well as Age-related Macular Degeneration.

The chemical, referred to as AAQ, acts on the remaining cells in the retina, which are normally "blind" cells, sensitive to light. AAQ is a photoswitch that binds to protein ion channels on the surface of retinal cells; when switched on by light, it alters the flow of ions through the channels and activates these neurons similar to the way rods and cones are activated by light.

This chemical has been shown to eventually wear off, and hence may offer a safer alternative to other approaches that restore sight, such as gene or stem cell therapies, which may permanently change the retina. It is also less invasive than implanting light-sensitive chips in the eye.

Considering that it is a simple chemical, it will be easy to change the dosage, use it in combination with other therapies, or discontinue the therapy if the need be. This would allow new and improved chemicals that may become available in time to be offered to the same patients.

The blind mice in the experiment had genetic mutations that made their rods and cones die within months of birth and inactivated other photopigments in the eye. After injecting very small amounts of AAQ into the eyes of the blind mice, the researchers confirmed that they had restored light sensitivity because the mice's pupils contracted in bright light. The mice also demonstrated light avoidance, a typical rodent behavior impossible without the animals being able to see some light. The researchers are hoping to conduct more sophisticated vision tests in rodents injected with the next generation of the compound.

It will be a while before this compound will find its way in humans. The researchers have to show that these compounds are safe and will work in patients the way they work in mice. BUt these preliminary results demonstrate that this class of compound restores light sensitivity to retinas blind from genetic disease.

The current technologies being evaluated for restoring sight to people whose rods and cones have died include injection of stem cells to regenerate the rods and cones; "optogenetics," a type of gene therapy where a photoreceptor gene is inserted into blind neurons to make them sensitive to light; and installation of electronic prosthetic devices, such as a small light-sensitive retinal chip with electrodes that stimulate blind neurons.

Eight years ago, Kramer, Trauner, a former UC Berkeley chemist now at the University of Munich, and their colleagues developed an optogenetic technique to chemically alter potassium ion channels in blind neurons so that a photoswitch could latch on. Potassium channels normally open to turn a cell off, but with the attached photoswitch, they were opened when hit by ultraviolet light and closed when hit by green light, thereby activating and deactivating the neurons.

Subsequently, Trauner synthesized AAQ (acrylamide-azobenzene-quaternary ammonium), a photoswitch that attaches to potassium channels without the need to genetically modify the channel.

Newer versions of AAQ now being tested have demonstrated better results, as per the researchers. They activate neurons for days rather than hours using blue-green light of moderate intensity, and these photoswitches naturally deactivate in darkness, so that a second color of light is not needed to switch them off.

Source