Showing posts with label Update. Show all posts
Showing posts with label Update. Show all posts

Monday, 12 June 2017

Gene Therapy in Ophthalmology Update 14 Early Positive Results in Ongoing Gene Therapy Wet AMD and Stargardt’s Disease Studies


Last week, Oxford BioMedica and its partner Sanofi announced positive results in their ongoing gene therapy clinical trials for wet AMD and Stargardt’s disease. In an interim review of their Phase I (RetinoStat) and Phase I/IIa (StarGen) trials, the Data Safetly Monitoring Board (DSMB), an independent panel of specialists in the fields of ophthalmology, virology and vectorology, gave the go ahead to proceed to a final patient cohort in the Phase I study in the case of the RetinoStat trial, and to a third patient cohort in the Phase I/IIa study of the StarGen trial.

The companies announced the following:

DSMB highlights of ongoing RetinoStat Phase I study:

● Nine patients treated to date (n=3 at each of dose levels 1, 2 and 3)
● No serious adverse events related to RetinoStat or its method of administration
● Long-term safety profile now up to 18 months post-treatment (dose level 1)
● Successful retinal transduction, as shown by substantial increase in expression and secretion of endostatin and angiostatin proteins measured in the anterior chamber of the eye following a single administration of RetinoStat. So far, expression is sustained for up to 12 months post-treatment at dose level 1 (n=3) and up to six months post-treatment at dose level 2 (n=3) (The extent of the followup to date on dose level 2. Longer term results are expected to be achieved.)
● DSMB support received to proceed to final patient cohort (n=9, confirmatory dose level)

The RetinoStat open label, dose escalation Phase I study will enrol 18 patients total with"wet" AMD and will evaluate three dose levels to assess safety and aspects of ocular physiology.

The study is led by Professor Peter Campochiaro at the Wilmer Eye Institute at Johns Hopkins, Baltimore and Oxford BioMedica has now opened a second clinical site at the Oregon Health and Science University, Portland with Dr Andy Lauer as principal investigator.

Further results from this study are expected in Q4 2012.

On the basis of pre-clinical data, it is anticipated that RetinoStat may require only a single administration which would give the product a significant advantage in the market over currently available treatments that often require frequent, repeated administration.


DSMB highlights of ongoing StarGen Phase I/IIa study:

● Eight patients treated at dose level 1 to date (n=4 severe level of disease, n=4 less severe)
● No serious adverse events related to StarGen or its method of administration
● Long-term safety profile now up to 12 months post-treatment (dose level 1)
● DSMB support received to proceed to third patient cohort (n=4, dose level 2)

The StarGen open label, dose escalation Phase I/IIa study will enrol up to 28 patients and will
evaluate three dose levels for safety, tolerability and aspects of biological activity.

In the US, the study is led by Professor David Wilson at the Oregon Health and Science University, Portland, Oregon. In France, Professor Jose-Alain Sahel leads the study at Centre Hospitalier National d'Ophtalmologie des Quinze-Vingts, Paris.

StarGen has received European and US Orphan Drug Designation which brings development, regulatory and commercial benefits.

Further results from this study are expected in Q4 2012.

As noted above for the RetinoStat treatment, on the basis of pre-clinical data, it is anticipated that a single application of StarGen to the retina could potentially either provide long-term or permanent correction. There are currently no approved treatments available for Stargardt disease.


John Dawson, Chief Executive Officer of Oxford BioMedica, said:"The continued progress of our ophthalmology portfolio, supported by another positive DSMB review, is encouraging - particularly given that early RetinoStat data demonstrate sustained therapeutic protein expression in the eye following a single administration. The favourable safety profile of our novel ocular gene therapies further supports the wider LentiVector platform safety package with over 33 patients treated to date across the ocular and Parkinson's disease programmes."


Sunday, 7 May 2017

Sabah Snake Grass Clinacanthus Nutans Update


This is a follow-up on my earlier article on Sabah Snake Grass at http://greensanctuary56.blogspot.com/2011_07_01_archive.html

This grass is now grown in my own backyard, just as a past-time activity and they are not for commercial purpose. Indeed, it's more interesting to see them growing up, from small shoots to grown up plant.

Plucking them for consumption is easy. But it will take quite some time to grow back to a reasonable height again (before the next harvest). Those matured plants shown below, are around 3 months old. 

This plant needs good sunlight and abundance of moisture. They need food too. Organic fertilizer such as 'compost' is still the best choice although it is quite expensive. I also added the residue of fruits (after blending) from time to time, including residue from yellow beans (after making tofu drink) etc. Try not to use inorganic fertilizer such as chicken dung, or goat's dungs, or even processed fetilizers.

Nevertheless, here are some basic steps when planting them :


Harvest the stalks from the mother plant



Cut up each stalk into stems. Always leave their
'nodes' for the young plants to emerge
later




Plant about 3 - 4 stems in each plastic bag
(if you are planning to reproduce them).
Did you see the young plants emerging from
the nodes ?




After 30 - 45 days of attention





Eventually ..... after 2 - 3 months







Before consumption, always wash them thoroughly
before blending, particularly those bought from
outside sources. This is to avoid sickness due to 

E.Coli bacteria, if inorganic fertilizers have been 
used, since they are eaten raw. Skin of your green
apple(s) have to sliced too, when added.



Drink within 5 minutes after processing (to avoid
loss of fresh nutrients) and for those who has
gastric, or any stomach problem, always drink
it after food.

For those who is scared of coldness, or having a
weak stomach, you may add a few slices of
ginger to be blended together. The later will 
assist to provide a warming effect

 


Thanks to a generous contributor. I was given this recommended guidelines for end-users to follow :

Stage 1 : 30 leaves daily
Stage 2 : 50 leaves daily
Stage 3 : 100 leaves daily
Stage 4 : 200 leaves daily (100 leaves at each time)
Critical stage : 300 leaves daily (100 leaves at each time)

For Kidney patients


Those not yet dialysis :

120 leaves mix with green apple and cold water, after blend, filter and consume, once daily

Those dialysis once a week :
150 leaves

Those dialysis twice a week :
200 leaves

Those dialysis three times a week :
250 leaves

It is best to consume between 3pm-4pm

Recommended methods of preparation

*
1) Pour half cup of clean water in a blender
2) Add a quarter of lemon or half a lime (lemon preferred to avoid gastritis)
3) Wash the required fresh SSG leaves and put them into the blender
4) Peel a green apple and remove the core/seeds and cut into quarter and blend
5) Blend and drink immediately but SLOWLY within 5 minutes

Recommended pointers
*
1) Since herbal is very “cooling” especially for women, you may add a few slices ginger and blend together.
2) Do not wash SSG unless you are going to consume it. Keep in container that does not retain water.
3) It is recommended to chew a few leaves first to let the brain processes what we are consuming. This helps to avoid bloated stomach if the blended juice are swallowed or gulped quickly. This will also help to increase better absorption as the body can release the proper enzyme.
4) Do not consume 2 days before and after and during chemotherapy or radiology.
5) Do not consume together with other herbs.

Recommended food to avoid
  1. Sugar & sugary products; Dairy Products and Bird's Nest;
  2. Honey; Kembong fish especially Sting Ray;
  3. 7 angled fish; Chicken and Duck meat; Yam;
  4. Glutinous Rice; Margarine and Durians;
  5. Ginseng and other rejuvenating Herbs.
[Dairy products contain mucus that provides a conducive environment for cancer cells to grow]

    Note  :

    There is a supplier now, who claimed she has begun to fill SSG (after grounded into powder form) into capsules for sale, to oversea users. This is a good start, as it will be able to help many suffering patients from all over the World.

    Let's pray that this new found herbs can really help a lot and lots of people.

    View her blog at http://ssgrass.blogspot.com/p/photo-ssg.html
     

    Monday, 17 April 2017

    Avastin Lucentis Update 11 A White Paper on Why Avastin vs Lucentis Matters


    This White Paper was written by a group of retinal specialists (listed at the end), who are alarmed by the public health implications of the high cost of Lucentis. They have been trying to gather grassroots interest within their profession, with hopes of eventually getting the ear of legislators. Attached is their essay that summarizes the medical issues involved, their concerns, and their recommendations.

    This paper is reproduced with permission of the authors.

    Avastin versus Lucentis: Why It Matters

    Although Lucentis is a remarkably safe and effective treatment for exudative macular degeneration, it could cost our health care system billions of dollars annually, which will be a significant burden on our strained health care system. Fortunately, it appears that Avastin is roughly equal to Lucentis in safety and efficacy, and Avastin’s far lower cost makes it an attractive alternative. We encourage wider use of Avastin, which can help sustain the health care system that has benefited our patients medically and ourselves professionally.

    Growing health care expenses (to which rapidly rising drug costs have contributed heavily) are unsustainable. In response to these growing costs, Medicare has been attempting to reduce all physician fees, a move Congress blocked at the last minute in 2006. Right now, ophthalmology faces annual cuts of 1% for four years, a 3% cut in 2007 for certain commonly used ophthalmology codes, and the prospect of further Medicare cuts in the future. Just as legislators targeted cataract fees as a way to reduce health care expenditures, it cannot serve ophthalmology well if huge pharmaceutical expenses result in an explosive growth in federal expenses for ophthalmic care. Fortunately, there are things all ophthalmologists can do to address these challenges.

    How Might Lucentis Affect Physician Compensation?

    Medicare Part B pays for physician services as well as drugs delivered in offices. In ophthalmology, Visudyne and Macugen have caused sharp increases in Medicare Part B expenses, and the impact of Lucentis is likely to far exceed that of Visudyne and Macugen combined. There are more than 200,000 new cases of exudative age-related macular degeneration (AMD) in the U.S. each year, (1) and we estimate that about 85% are treatable. The cost of Lucentis is about $2257 per injection, (2) and the MARINA study (3) showed benefit from monthly Lucentis injections for two years. Therefore, after one year of full market implementation, Lucentis costs in the U.S. could, in theory, exceed $9 billion.(4)

    Several factors temper this figure, and, based on Lucentis sales data, it appears reasonable to anticipate at least $2-3 billion in annual U.S. sales under current conditions. Some patients require less than 24 treatments, and some retinal specialists use the PIER or PrONTO protocols. (5) Also, many providers currently treat exudative AMD primarily with Avastin. On the other hand, exudative AMD appears to be a recurrent condition, so many successfully treated patients may need additional rounds of therapy, just as many of our PDT patients have developed recurrences after initial closure of the choroidal neovascular membrane (CNVM).

    To put this $2-3 billion figure in perspective, in 2006 the total Medicare Allowed Charges for all of ophthalmology was $4.77 billion. That total covers physician fees, practice expenses, malpractice Relative Value Units, and imaging. In 2004, total spending for all Medicare Part B drugs for all medical fields was about $12 billion. Compare the approximate $54,168 cost of treating one eye with Lucentis monthly for two years to the $46,326 median annual household income in the U.S. in 2005.

    Avastin’s Benefits

    In contrast to Lucentis’ cost, the drug cost for Avastin is only about $50 per dose. Further, many treating physicians have noted that Avastin seems to be longer-acting than Lucentis, perhaps because Avastin’s larger size impedes clearance from the eye. Consequently, many clinicians use a less frequent dosing regimen with Avastin than Lucentis.

    Why Would Ophthalmologists Use Lucentis?

    Although Avastin is a safe, effective, inexpensive treatment of exudative AMD, some ophthalmologists have offered the following reasons to use Lucentis:

    1. Lucentis is FDA-approved for this indication.

    2. Unlike Avastin, Lucentis has been studied with a randomized clinical trial, and the data for Lucentis are more long-term data than those of Avastin.

    3. Lucentis may be safer than Avastin.

    4. Lucentis has greater activity in vitro and Lucentis is a smaller molecule designed for better retinal penetration.

    5. Physicians receive substantially more income by using Lucentis.

    We’ll address each of these reasons in turn. First, most prescriptions written in the U.S. are for off-label uses. There is compelling evidence of Avastin’s safety and efficacy for CNVM in AMD based on published reports (6) and current widespread clinical use. Consequently, the federal Medicare program offers coverage for intraocular Avastin for this indication.

    Second, Avastin and Lucentis are structurally very similar, and ophthalmologists’ collective short-term experience with Avastin has shown results comparable to those with Lucentis. The planned two-year National Eye Institute head-to-head study should clarify this issue.

    Third, after thousands of applications, the ocular safety of both Lucentis and Avastin has been well demonstrated. In terms of systemic safety, thromboembolic events (such as angina, heart attacks, and strokes) have been the main concern. Preliminary long-term data indicate that Lucentis in the ocular dose of .5 mg (as currently prescribed) has a four-fold increased risk of stroke compared to a .3 mg dose, and this risk seems to involve primarily people with a history of prior stroke. (7) There is less long-term data on ocular use of Avastin. Among patients using Avastin systemically for metastatic colon cancer, 4.4% who had Avastin in combination with other colon cancer chemotherapies had thromboembolic events, compared to 1.9% who received various colon cancer chemotherapies and no Avastin. However, this finding is of doubtful relevance to ocular use of Avastin. The ocular dose (1.25 mg) is about 1/300th of the systemic dose (5 mg/kg) used to treat metastatic colon cancer. Colon cancer patients receive treatment every two weeks, while intraocular injections of Avastin are generally at least 6 weeks apart. Therefore, ocular Avastin results in approximately 1/1000th of the systemic exposure compared to intravenous use. The increased risk of thromboembolic events occurred only in colon cancer patients who concurrently used other chemotherapies, so the increased risk may reflect drug interactions. Finally, colon cancer often leads to a hypercoagulable state, which predisposes the patient to thromboembolic events. As a smaller molecule, Lucentis has a shorter systemic half-life than Avastin, but it is unknown whether Lucentis has less systemic toxicity. (8)

    Fourth, in practice Lucentis does not appear to be more effective than Avastin. It may be that the 1.25 mg Avastin dose effectively blocks all VEGF receptors, and any additional potency of Lucentis does not confer additional effect. Lucentis’ smaller size may turn out to be a drawback, because Lucentis may clear the eye too quickly to work as well as, or as long as, Avastin.

    Fifth, Medicare reimburses ophthalmologists 6% over the Average Wholesale Cost of Lucentis. Consequently, ophthalmologists who pay $1950 for Lucentis receive $2067 from Medicare, for a profit of $117 per dose given. In contrast, there is little, if any, profit generated by the $50 Medicare reimbursement for Avastin. A retinal specialist treating only 72 patients with monthly Lucentis injections, rather than treating these same patients with Avastin, will be paid an additional $100,000/yr by Medicare for the Lucentis drug. Further, retina specialist treating monthly with Lucentis, rather than treating patients with Avastin every 6-12 weeks, will likely generate additional income through injection fees.

    Retinal specialists typically treat hundreds of exudative macular degeneration patients per year. While there are strong financial incentives to use Lucentis, we don’t know whether these incentives influence treatment recommendations. We do know that, for every $100,000 of “profit” paid to ophthalmologists by the 6% “margin” from Lucentis sales, the cost of the drug to Medicare, insurers, and patients is $1.76 million. The 80% Medicare portion of this $1.76 million comes from the same Medicare Part B “pot” that also pays for physicians’ medical services.

    Are Medicolegal Concerns with Avastin Reasonable?

    We see no reason to infer that ocular use of Avastin poses significant risk of systemic toxicity or more such risk than other anti-VEGF ocular drugs. While some providers avoid Avastin in patients with a recent thromboembolic event, (9) ocular Avastin has become a standard of care for most exudative AMD patients. A January 2007 Internet survey of the American Society of Retinal Specialists (ASRS) with 276 respondents found that 58.76% usually recommend Avastin for patients with subfoveal CNVM due to AMD when these patients have both Medicare and secondary insurance coverage (9.97% of these recommend Avastin plus PDT for such patients). For patients without secondary coverage, for whom the co-payment on Lucentis treatment is substantial, 79.20% of ASRS respondents usually recommend Avastin (2.77% of these recommend Avastin plus PDT).

    What Other Factors Influence Pharmaceutical Use?

    Pharmaceutical companies have always been eager to court “opinion-shapers,” academic clinicians whom their colleagues trust to offer informed recommendations. The companies readily sponsor research by these academicians, hire them as consultants, and pay them for speaking engagements. These people deny that their objectivity has been compromised, but a general review of industry-sponsored research showed a bias in favor of the sponsoring company’s products. (10) Of course, many academicians do speak their minds, regardless of corporate relationships.

    Who Is Paying for Lucentis?

    For many years, growth in government expenditures for health care has exceeded the rate of inflation. Such growth is not sustainable. In an attempt to control rising costs, there are federally mandated restrictions on Medicare cost increases, effectively putting health care providers in direct economic competition with drug companies for limited Medicare Part B dollars. If we cannot control pharmaceutical costs, our patients will suffer, and we physicians will likely suffer as well. While it may be more politically expedient in the short term for Medicare to cut reimbursement to physicians than to reduce benefits, rising health care costs will eventually result in larger patient premiums, increased co-payments, or reduced access to care. Ultimately, our patients will suffer to the degree that the health care system is financially crippled.

    What about Patients Who Demand Lucentis?

    Genentech’s media blitz has encouraged many people to request Lucentis. We tell patients that Avastin appears roughly equal in safety and effectiveness. One reason we prefer Avastin is that it may require less frequent injections, which would help reduce the risks of anti-VEGF treatment. We also note that, for people without secondary insurance, the out-of-pocket cost of Lucentis is much higher. Then we leave the choice to our patients. When using Lucentis, we generally follow the PrONTO study guidelines. That protocol often results in significantly fewer than 24 treatments for each CNVM episode.

    What Do We Recommend?

    1. We think it is reasonable for general ophthalmologists to ask retinal specialists who use primarily Lucentis why they choose to do so.

    2. Until the NEI’s study of Avastin versus Lucentis is completed (not before 2009), we need to carefully monitor outcomes.

    3. As professionals, we have obligations to society-at-large as well as to our patients. In this new era of extremely (we think outrageously) expensive drugs for macular degeneration, we should be mindful of the public-health consequences of our practice patterns.

    4) As public health advocates, we should encourage legislators and regulators to remove financial incentives that might encourage physicians to treat patients with more expensive drugs.


    References:

    1. Postgrad Med 1998;103(5):153-64.
    2. $1950 (wholesale cost) + $117 (Average Wholesale Cost mark-up) + $190 (approximate injection fee).
    3. New Eng J Med 2006;355:1419-31.
    4. After one year, there could be 170,000 eyes receiving monthly treatments and another 170,000 added in the second year. Each eye would receive 12 treatments per year at $2257 per treatment.
    5. Ophthalmol Clin North Am 2006;19(3):361-72.
    6. Ophthalmol 2006;113:363-72; Am J Ophthalmol 2006;142:1-9; Retina 2006;26:383-90.
    7. Genentech “Dear Health Care Provider” [physician advisory] 1/24/07.
    8. New Eng J Med 2006;355:1409-12.
    9. Ophthalmol 2006;113:363-72.
    10. JAMA 2006;296:996-8; Br Med J 2006;333:782-6; Br Med J 2003;326:1167-70.


    Authors (All authors are retinal specialists):

    February 9, 2007

    Leon A. Bynoe, MD, Fort Lauderdale, FL
    Randy Dhaliwal, MD, FRCSC, FACS, Augusta, GA
    Joel D. Eichler, MD, Belleville, NJ
    Matthew E. Farber, MD, Ft. Wayne, IN
    Steve Friedlander, MD, FACS, Reno, NV
    Timothy Holekamp, MD, Columbia, MO
    Stephen R. Kaufman, MD, Cleveland, OH
    Mike Lahey, MD, Hayward, CA
    Jeffrey M. Lehmer, MD, Union City, CA
    James G. Randall, MD, Missoula, MT
    Scott C. Richards, MD, Ogden, UT
    J. Gregory Rosenthal, MD, Toledo, OH
    J. Sebag, MD, FACS, FRCOphth, Huntington Beach, CA


    Avastin versus Lucentis: Why It Matters
    Physicians for Clinical Responsibility
    pharmeval@yahoo.com
    216-283-6702
    P.O. Box 201791

    Tuesday, 4 April 2017

    AMD Update 5 Emerging Technologies for Treating AMD


    Over the past year and a half, I have been tracking several new technologies that have a good chance to become breakthrough technologies in the treatment of both wet and dry age-related macular degeneration (AMD). I have written about several of these (as shown below), and would like to introduce you to an exciting new approach, using embryonic stem cells, that looks like a winner.

    First, a summary of some of the newer technologies that I have been tracking and writing about:

    The Ellex 2RT Retina Regeneration Therapy

    Just prior to the 2007 AAO meeting, I became aware of a new potential laser treatment for retinal diseases. I met with the then president of the company, Peter Falzone, and decided to write about what Professor John Marshall and his colleague Dr. Ali Hussain were proposing.

    From what I understand, 2RT is the use of non-thermal laser pulses to “stimulate” the retinal pigment epithelial (RPE) cells. This in turn causes the RPE cells to migrate and release metalloproteinases, which are the enzymes that “clean” Bruch’s membrane. This, in turn increases the transport of water and chemicals through Bruchs to rejuvinate the retina.

    For more on this, see my writeup: Ellex 2RT Retina Regeneration Therapy: A First Report

    Collaboration Between Lumenis and Stemedica

    In May of 2008, I became aware of the collaboration agreement between Lumenis and Stemedica, to use the Lumenis SRT laser to target RPE cells (similar to what John Marshall, above, was doing in London), and then to use Stemedica’s stem cell lines to regenerate the damaged retinal cells.

    I contacted friends at Lumenis and the people at Stemedica, offering to write up what they were trying to do, and compare it with what John Marshall in London was doing.

    Unfortunately, my friends at Lumenis were no longer with the company, and no-one at Stemedica was willing to talk to me.

    Recently, a new-found friend at Lumenis informed me that the Lumenis SRT laser was no longer in the picture and that Stemedica was continuing on its own. I then got an offer from a researcher at Stemedica to tell me what they were doing, but upon followup, no further information was forthcoming. (I do know, however, that research on the project is continuing and being carried out at the Fyodorov Eye Institute in Russia.)

    Also, one of my old friends from Lumenis, the former program manager, got in touch with me and said he was interested in pursuing the Lumenis SRT development project if he could obtain outside financing. So, this approach is still alive and ticking.

    Visualization of Living RPE Cells

    In February of this year, David Williams and his research group at the Institute of Optics at the University of Rochester announced that they had used adaptive optics to image RPE cells in vivo.

    I have written up this announcement in more detail: AMD Update 4: Does Visualizing RPE Cells Hold the Key to Understanding AMD?

    Now we have a diagnostic mechanism to see changes in RPE cells, possibly when applying some of the new techniques discussed above and below.

    And, now, the breakthrough that could hold the key to finally finding a “cure” for AMD:

    Embryonic Stem Cell Treatment for AMD

    Finally, as noted above, I came across an article that appeared in the April 19, 2009 issue of the London Times Online, describing the work of Professor Peter Coffey of the London Project to Cure Blindness and Dr. Lyndon da Cruz, a surgeon at Moorfields Eye Hospital in London.

    Their process involves replacing a layer of degenerated retinal cells with new ones, created from embryonic stem cells, pioneered by scientists and surgeons from the Institute of Ophthalmology at University College London and Moorfields Eye Hospital. Further, Pfizer has announced one of its new companies, Pfizer Regenerative Medicine, launched last year, will be providing financial backing of this project to bring the therapy to fruition. The undifferentiated embryonic stem cells will be transformed into differentiated replicas of the degenerated RPE cells, placed on a membrane and inserted into the back of the retina.

    Professor Coffey believes that the insertion process could be accomplished in less than an hour, making this a potential outpatient process.

    A clinical trial is expected to begin within two years and become the second in the world to use embryonic stem cells in humans. (The first being the work by Geron on patients with spinal cord injuries.)

    This technology could become ground-breaking breakthrough technology in the treatment of dry AMD and Geographical Atrophy.

    In their own words, here is how The London Project to Cure Blindness describes their process:

    “Neuralised human embryonic stem cells (HESCs) represent a potentially unlimited source of progenitor cells for use in the repair of retinal disease. In addition to the genesis of retinal neurons, there is now compelling evidence that RPE can also be derived from undifferentiated HESCs. These ES-derived RPE cells not only appear to behave like normal RPE in culture but also have a gene expression profile more akin to primary human RPE. This is of particular clinical relevance to any RPE based transplantation strategies designed to treat AMD.”

    “HESCs will be used to generate precursors of retinal pigment epithelium (RPE) cells in vitro in order to provide a candidate therapeutic for age related macular degeneration (ARMD). The previously used method will be optimized with respect to RPE cells to improve both yield and reproducibility. RPE transplantation has already been shown to be capable of restoring the subretinal anatomy and improving photoreceptor function in a variety of retinal diseases. The sourcing of appropriate cell lines with the prerequisite characteristics of RPE will allow transplantation to enter the mainstream of retinal therapy at a time when the treatment of previously blinding retinal diseases is finally becoming a reality.”

    Pfizer Regenerative Medicine’s role will be to focus on clinical study design, product manufacturing (the membrane), and securing worldwide regulatory approvals.

    Under the terms of the collaborative agreement, Pfizer will fund University College London's preclinical research. In turn, Pfizer will retain exclusive worldwide rights to proceed with efficacy trials to develop and commercialize any resulting retinal pigment epithelium stem cell-based therapies.

    "We are excited to be working with pioneers in the field of stem cell ophthalmology from UCL," Ruth McKernan, PhD, chief scientific officer for Pfizer Regenerative Medicine, said. "While we have much to learn about how stem cells can be used therapeutically, we are confident that this relationship will increase that understanding and help us advance to a time when our work may benefit patients worldwide."