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Thursday, December 17, 2015

New drug that protects dopamine cells raises treatment hope for Parkinson's

17 December 2015


Researchers who tested a new drug in a mouse model of Parkinson's disease showed it can change the behavior of immune cells so they protect dopamine-producing cells instead of attacking them

The team - including members from the University of Nebraska Medical Center (UNMC) in Omaha and Longevity Biotech, Inc. of Philadelphia, PA - reports the findings in The Journal of Neuroscience.
Coauthor Dr. Scott Shandler, co-founder and CEO of Longevity Biotech, says:
"The results are exciting as they provide a bridge between the immune system and nerve cell protection in Parkinson's disease."
Senior author Howard Gendelman, a professor of pharmacology and experimental neuroscience at UNMC, says the idea for the drug was born nearly 10 years ago, when it was discovered that a type of white blood cell was attacking the brain cells that are responsible for Parkinson's disease. He adds:

"The new Longevity Biotech drug (LBT-3627) was able to change the function of these cells from killing the nerve cells to protecting them."
The death of dopamine-producing cells in a part of the brain called the substantia nigra pars compacta is a chief hallmark of Parkinson's disease. Dopamine transports brain signals that control a number of functions, including movement.
As the devastating brain-wasting disease progresses, patients gradually lose their ability to walk, talk and take care of themselves.
Immune cells play key role in
Parkinson's disease
Scientists have known for a while that Parkinson's disease involves changes to both dopamine and non-dopamine brain cells and their signaling pathways, plus inflammatory changes to microglia (innate immune cells in the central nervous system) and infiltration of T lymphocytes (a type of white blood cell in the adaptive immune system).
At first, they thought some of the changes - such as those involving the microglia and the white blood cells - were the result of injury rather than influencers of primary events. But then, nearly a decade ago, researchers discovered that both activated microglia and white blood cells play an important role in neurodegeneration in Parkinson's disease.
The evidence from that and other studies shows the immune system can both protect and attack the brain. This has spurred much research into how to use this knowledge to produce new treatments for Parkinson's - a disease for which there is yet no cure.
The experimental drug LBT-3627 is similar to a naturally occurring, well-established anti-inflammatory molecule called VIP that is effective in a range of disorders.
However, there have been problems with basing new drugs on VIP - one reason being it rapidly degrades in the body. Another reason is that is unable to distinguish between its two naturally intended receptors - VPAC1 and VPAC2.
Receptors are molecules that receive signals from outside the cell. They only bind to specific molecules called agonists. Drug developers use this feature to make agonist drugs that change cell behavior - in this case, to change immune cells from acting in an inflammatory to an anti-inflammatory manner.
New drug achieved 80% protection of
 dopamine-producing cells

LBT-3627 is different to VIP in two respects: it specifically targets only one of the receptors, VPAC2, and it appears to last much longer than VIP in the body before degrading. It also has the advantage that it could be given orally, making it more accessible to patients with Parkinson's disease, says Dr. Shandler.
When they tested LBT-3627 in a mouse model of Parkinson's disease, the team found it could achieve up to 80% protection of dopamine-producing cells.
The team also found that the drug had an effect on the microglia cells, and that they were ultimately responsible for the protective effect that halted the brain damage.
The developers are hoping to begin a phase 1 clinical trial of LBT-3627 in humans by 2017, after completing more preclinical tests.
Prof. Gendelman concludes:
"The key finding in our study was that a specific white blood cell subset was produced as a consequence of LBT-3627 treatment and provided protection of dopamine-producing nerve cells from being damaged. The neurotoxic immune reaction was halted and LBT-3627 was able to prevent disease."
There are around 10 million people worldwide living with Parkinson's disease - approximately 1 million of them in the US, where around 60,000 people are diagnosed with the disease each year.
Another hallmark of Parkinson's disease is the accumulation and progressive spread of protein clumps called Lewy bodies in the region of the brain most affected by loss of dopamine cells. Some scientists are beginning to think the protein clumps accelerate the disease.
From a study published in The Journal of Biological Chemistry earlier this year, Medical News Today learned how researchers discovered a potential mechanism for reducing Lewy bodies that could also lead to a treatment for Parkinson's disease.


http://www.medicalnewstoday.com/articles/304212.php

Pioneering Neuroprotective Results Achieved in Parkinson's Disease Preclinical Studies

Information contained on this page is provided by an independent third-party content provider. WorldNow and this Station make no warranties or representations in connection therewith. If you have any questions or comments about this page please contact pressreleases@worldnow.com.
SOURCE Longevity Biotech

Allows immune system to repair brain damage; results reported in Journal of Neuroscience
PHILADELPHIADec. 16, 2015 /PRNewswire/ -- A team of scientists at the University of Nebraska Medical Center (UNMC) and Longevity Biotech, Inc. demonstrated that neuroprotection could be attained in preclinical models by a novel drug candidate that changes immune responses.  The results, published today in the Journal of Neuroscience, describe the prevention of nerve cell damage in a mouse model of Parkinson's disease.  Notably, the drug protected nerve cells that produce dopamine, which is the chemical responsible for agility and movement that is lost in human disease. 

"The results are exciting as they provide a bridge between the immune system and nerve cell protection in Parkinson's disease," said Scott Shandler, Ph.D., co-founder and CEO of Longevity Biotech.  
"The idea was birthed nearly a decade ago when specific types of circulating blood cells called lymphocytes were found to damage the types of nerve cells responsible for disease," said Howard Gendelman, M.D., the Margaret R. Larson Professor and chair of the UNMC Department of Pharmacology and Experimental Neuroscience.  "The new Longevity Biotech drug (LBT-3627) was able to change the function of these cells from killing the nerve cells to protecting them. This is especially significant for the Nebraska team, as the mechanism parallels closely the human trials nearing completion for Parkinson's patients."
LBT-3627 is similar to the naturally occurring vasoactive intestinal peptide (VIP), a well-established anti-inflammatory peptide with beneficial effects across a variety of disorders. VIP is rapidly degraded by the body and is unable to distinguish between its two naturally intended receptors (VPAC1 vs. VPAC2). These limitations have stymied prior translational success using VIP. 
In contrast, LBT-3627 specifically targets VPAC2 and demonstrates impressive biological durability. In addition, LBT-3627 has the potential to be administered orally, Dr. Shandler said, which would further improve its clinical prospects and make it more accessible for people with Parkinson's disease. 
Preclinical studies performed by the UNMC team demonstrated that LBT-3627 could achieve up to 80 percent protection of dopamine-producing nerve cells in a mouse model of Parkinson's disease.  Furthermore, the immune transformation also affected primary scavenger cells called microglia cells that were found ultimately responsible for the neuroprotective activities observed that halted brain damage. 
"The key finding in our study was that a specific white blood cell subset was produced as a consequence of LBT-3627 treatment and provided protection of dopamine producing nerve cells from being damaged," Dr. Gendelman said. "The neurotoxic immune reaction was halted and LBT-3627 was able to prevent disease."
"There are limited therapeutic strategies available to Parkinson's patients," said Marco Baptista, Ph.D., Senior Associate director of research programs at The Michael J. Fox Foundation for Parkinson's Research, which supported this work together with the National Institute of Neurological Disorders and Stroke and a generous gift from the Blumkin Foundation in Nebraska. "This approach shows one avenue to potentially protect the brain cells affected by Parkinson's disease and alter disease progression."
Dr. Shandler said Longevity Biotech is currently progressing LBT-3627 through preclinical development and hopes to begin a Phase I clinical trial in humans by 2017. 
ABOUT PARKINSON'S DISEASE
Parkinson's disease is a progressive neurodegenerative disorder resulting in motor impairment and non-motor symptoms. Parkinson's is the second most common neurodegenerative disease after Alzheimer's disease.  While a range of medications and surgical interventions are available to treat some of the symptoms of Parkinson's disease, no therapy has been shown to either prevent or cure the disease. Parkinson's disease is associated with a range of medical and societal costs, including frequent medical interventions and hospitalizations, loss of productivity, inability to work, and diminished quality of life for patients and care partners.
ABOUT UNIVERSITY OF NEBRASKA MEDICAL CENTER
We are Nebraska Medicine and UNMC. Our mission is to lead the world in transforming lives to create a healthy future for all individuals and communities through premier educational programs, innovative research and extraordinary patient care.
ABOUT LONGEVITY BIOTECH, INC
Longevity Biotech, Inc. is a preclinical-stage biopharmaceutical company developing numerous innovative preclinical programs based on the patented Hybridtide® platform technology.  Specific therapeutic areas include neuroscience, metabolics, oncology and virology.  Each program has a unique set of attributes leading to either first or best-in-class product profiles in their respective indication.  
The Hybridtide® platform enables development of longer-acting, higher durability therapeutic peptidomimetics when compared to currently approved peptides which generate billions of dollars in global sales. Hybridtides® are a blend of natural and non-natural amino acids; this combination improves structural and digestive profiles without surface modification requirements such as lactam bridges, pegylation or macrocycles.
The Hybridtide® technology can be applied to most peptides and is available for partnership and/or co-development efforts as appropriate.  For more information, visit http://www.longevitybiotech.com
ABOUT THE MICHAEL J. FOX FOUNDATION
As the world's largest nonprofit funder of Parkinson's research, The Michael J. Fox Foundation is dedicated to accelerating a cure for Parkinson's disease and improved therapies for those living with the condition today. The Foundation pursues its goals through an aggressively funded, highly targeted research program coupled with active global engagement of scientists, Parkinson's patients, business leaders, clinical trial participants, donors and volunteers. In addition to funding more than $525 million in research to date, the Foundation has fundamentally altered the trajectory of progress toward a cure.
Longevity Biotech, Inc
CONTACT:
Ross Gillfillan, Public Relations
Longevity Biotech, Inc
Tel: +1 215-689-1042
University of Nebraska Medical Center
CONTACT:
Tom O'Connor, UNMC Public Relations
Tel: 402-559-4690

Wednesday, December 16, 2015

Mitochondria Dysfunction Seen to Play a Role in Parkinson’s Disease

Study points to mitochondria, not free radicals, as force being cellular senescence 
Dec. 16, 2015 
MARGARIDA AZEVEDO
A novel physiological role for mitochondria with implications in the study of age-related diseases such as Parkinson’s has been described. Researchers found that mitochondrial dysfunction in proliferating human cells induces senescence growth arrest and causes cells to secrete distinct secretory phenotypes. The research paper, titled “Mitochondrial Dysfunction Induces Senescence with a Distinct Secretory Phenotype,” was published in Cell Metabolism.
Cellular senescence, a response usually attributed to stress and damage from extracellular and endogenous sources — and an important driver of the aging process, is characterized by a permanent state of growth arrest and loss of the ability to divide. However, new research from Dr. Judith Campisi at the Buck Institute for Research on Aging indicates that signaling from dysfunctional mitochondria also induces senescence, with these cells secreting a different senescence-associated secretory phenotype (SASP). Dr. Campisi and her team happened upon this discovery were eliminating sirtuins, proteins involved in longevity, in human cell cultures. Elimination of mitochondrial sirtuins led to a senescent phenotype with a different SASP,  lacking one of the major SASP factors previously identified, the IL-1-dependent inflammatory arm, a phenomenon the research team named MiDAS (mitochondrial dysfunction-associated senescence).
Dr. Campisi explained how this research might contribute to new therapies. “We don’t yet know how much this process contributes to natural aging. But we do think the findings are important in addressing mitochondrial diseases, and those age-related diseases, such as some forms of Parkinson’s, which involve mitochondrial dysfunction,” she said in a press release.
Furthermore, mitochondrial dysfunction also disrupted the balance of NAD+, an enzyme that is a co-factor of sirtuins, arresting cell growth and disrupting IL-1 dependent SASP. “The NAD+ balancing act happens outside the mitochondria in the cytoplasm of the cell. This really highlights a signaling role for mitochondria, something understudied in the context of disease. And it identifies a new type of SASP, underscoring the existence of different types of senescence,” said Dr. Christopher Wiley, PhD.
Studies in mice with dysfunctional mitochondria and premature aging showed accumulation of senescent cells and suppression of adipogenesis, an important cell metabolism and fat creation mechanism. According to the researchers, these results explain the lipodystrophy, or loss of subcutaneous fat, observed in patients taking early HIV drugs, which deplete mitochondrial DNA.
Dr. Campisi concluded, “For any disease that has a mitochondrial component, this research adds a potential explanation for the real driver of the dysfunction — and it’s not free radicals, which we ruled out in our study. Our findings suggest a new role for mitochondria when it comes to affecting physiology.”

Revolutionary stem cell therapy trial for Parkinson’s disease to be held in Australia

Dec. 15, 2015
Australia has been chosen to host a world-first trial of revolutionary stem cell therapy for Parkinson’s disease.
The trial, by the Californian-based International Stem Cell Corporation, will be held at the Royal Melbourne Hospital.If first phase is successful, larger trials will start in Australia, Europe and the US in the next couple of years.
Melbourne neurologist Dr Andrew Evans said phase one was approved to be held in Australia because the country has a culture of innovation and a high standard in clinical research.“I think favourable research environment with regards to R and D [Research and Development] tax credits,” he said.
The trial involves 12 Australian Parkinson’s sufferers injected with neural stem cells.Those 12 patients’ stem cells will then be observed for one year, with Dr Evans and his team looking to see whether they are able to boost the brain’s capacity to produce and release the chemical messenger dopamine.
“Dopamine is one of the most critical neurotransmitters or chemical messengers in the brain that is lost in Parkinson’s disease, and the loss of this neurotransmitter is directly linked to the development of the cardinal features that include stiffness, slowness and shaking,” Dr Evans said.
“It’s hoped that through replenishment of the dopamine through these neural stem cells, which show some capacity to differentiate into obviously dopamine producing cells in the annual models, we are hoping to restore some of the functions in patients with Parkinson’s disease.”

Neural stem cells get around ethical minefields of previous trials

Previous Parkinson’s disease studies have used embryonic stem cells.
Dr Evans said that one of the major sticking points in terms of those technologies are the ethical minefields surrounding the use of those cells.So by using neural stem cells, Dr Evans said that problem was eliminated.
“[Embryonic stem cells] are fertilised and have a capacity to go on and develop into humans, whereas the parthenogenetic stem cells do not,” he said.
“Another major technological barrier has been the ability of these cells to differentiate well into neural cells, and that with the most recent technologies is becoming much less of a barrier.”

Cause of Parkinson’s disease remains the ‘holy grail’ for scientists

At the moment the Therapeutic Goods Administration in Australia has given the trial a conditional approval “There are a few caveats we have to work through, but I’m sure we will be able to do that within the next month or so,” Dr Evans said.
“They’re not high bars.”
Dr Evans said he was excited to be involved in the trial.
“The holy grail of finding out what causes Parkinson’s disease is still elusive for scientists, so we really need to focus our fight against Parkinson’s disease on two fronts,” he said.He said the first thing they need to work out is what causes Parkinson’s disease initially and then how to reverse that “trigger”.
“In the meantime we need to find treatments that do not necessarily rely on understanding or knowing what causes Parkinson’s disease, and perhaps replenishing or replacing some of the brain functions that are lost,” Dr Evans said.
“This is the way forward in the current research environment.”
By Rachael Brown
http://caringcare.info/?p=2585

~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~

Parkinson’s Treatment Using Stem Cells to Be Tested in Phase 1/2a Clinical TrialDosing study to evaluate International Stem Cell's ISC-hpNSC in moderate to advanced PD patients







International Stem Cell Corporation announced that its subsidiary, Cyto Therapeutics, has been given regulatory permission to start a Phase 1/2a dose escalation clinical trial of its neural stem cells (ISC-hpNSC) in the treatment of Parkinson’s disease (PD). Clearance for the trial came the Therapeutics Goods Administration (TGA) of Australia.
The trial will test ISC-hpNSC, neural stems cells derived from human parthenogenetic stem cells, in patients with moderate to severe PD symptoms at the Royal Melbourne Hospital in Australia. “We are very pleased to start the first human study of ISC-hpNSC’s for the treatment of this debilitating disease. There is a large unmet medical need for new treatments that may halt or reverse the progression of Parkinson’s disease and we believe our human neural stem cells may fill this need for the millions of people with this disease,” Andrey Semechkin, PhD, CEO of International Stem Cell, said in a press release. “We look forward to reporting on the progress of the clinical trial over the coming months.”
The company has published positive results from preclinical trials on rodents and primates that found its proprietary ISC-hpNSC candidate to improve PD symptoms and increase brain dopamine levels after intracranial administration. Results showed that ISC-hpNSC provided neurotrophic support and cell replacement to dying dopaminergic neurons in the recipient PD brains.
The open-label clinical trial will evaluate three different dose regimens of 30 million to 70 million neural cells in 12 study participants. After transplantation, follow-up will occur at predetermined intervals for 12 months to evaluate the safety and biologic activity of ISC-hpNSC. A PET scan will be performed at baseline, and at six and 12 months post-surgery. After the administration of ISC-hpNSC, clinical responses will be compared with initial PET scan results.
“We are the first company in the world to conduct clinical trials of human pluripotent stem cells based product for the treatment of Parkinson’s disease. We believe the outcome of the study will produce findings in-line with our preclinical studies, where we demonstrated not only safety of our proprietary neural stem cells, but also their functional efficacy. The cells were able to successfully integrate into the brain and provide a significant increase of dopamine levels in the nigrostriatal system,” said Russell Kern, PhD, the company’s executive vice president and CSO.

Current Parkinson treatments, such as L-DOPA and dopamine agonists, are known to improve early disease symptoms. As the disease progresses and dopaminergic neurons continue to be lost, however, the drugs can become ineffective and cause side effects
http://parkinsonsnewstoday.com/2015/12/17/international-stem-cell-corporation-receives-authorization-to-initiate-phase-iiia-clinical-trial-of-isc-hpnsc-for-the-treatment-of-parkinsons-disease-2/

Tuesday, December 15, 2015

Antibiotic resistance could help find drugs for some of the most intractable diseases

 15 December 2015 


Amyloid diseases such as Parkinson's, Alzheimer's and type-2 diabetes pose a particular problem for drug designers because they do not present a clear target structure to aim at.
Instead of the disease being linked to a single, easily identifiable species such as the active site of an enzyme or a specific receptor, amyloid diseases are associated with heterogeneous accumulations of proteins sticking together.
This is the key reason why many amyloid diseases are currently incurable.
The new study, published in Nature Chemical Biology, outlines a way of using antibiotic resistance to find chemicals capable of stopping amyloid formation.
Professor Sheena Radford, FRS Director of the Astbury Centre for Structural Molecular Biology at the University of Leeds, led the research.
She said: "Until now, we haven't had effective ways to identify drugs to combat amyloid formation. Amyloid-prone proteins often don't have a clearly defined structure, which makes it very difficult to identify areas to target with drugs.
"Also, because amyloid-causing proteins have a tendency to stick together, they can be very hard to study in the lab. This study shows a way of getting around these problems by grafting amyloid-prone sequences into enzymes which break down antibiotics."
The study, involving researchers in the University's School of Chemistry and the Astbury Centre for Structural Molecular Biology, exploits the complex series of adversarial relationships between molecules in a positive way to select for chemicals that counter amyloid formation.
First, amyloid-prone sequences from target proteins are attached to antibiotic degrading beta-lactamase enzymes. Bacteria carrying the modified enzymes are combined in laboratory dishes with the antibiotic. Normally, the presence of the beta-lactamase would disable the antibiotic, allowing bacterial growth.
However, the amyloid-causing sequences act as "Trojan horses" in the beta-lactamase, preventing it from attacking the antibiotic and therefore stopping the tell-tale bacterial growth. Next, the researchers add chemicals and test whether they disable the amyloid-causing sequences, freeing the beta-lactamase to attack the antibiotic and allowing bacterial growth.
Dr Janet Saunders, a researcher on the study, said: "In our research, an old enemy -- anti-bacterial resistance -- turns out to be our friend. When we see bacterial growth, we know we have chemicals that are obstructing amyloid formation."
The study identified one chemical -- L-dopamine -- that blocks amyloid deposits forming from sequences associated with type II diabetes. However, the real significance of the work is its potential for generic use with any protein associated with amyloid disease.
Co-author Dr David Brockwell, Associate Professor in the University's School of Molecular and Cellular Biology, said: "If you can insert a protein sequence into beta-lactamase, you are likely to be able to use this technique as a screen for chemicals capable of inhibiting its aggregation. You can screen thousands of compounds by putting them through this test."
Professor Radford said: "It is important to stress that an efficient screen is only one step in the journey toward drug discovery. The power of our study is that it provides the first step on this path by showing us the type of molecules we should be looking at to inhibit a particular disease-causing protein."
Another application of the new technique could be for use in the manufacture of bio-pharmaceuticals, a class of protein-based drugs that includes many of the highest grossing modern drugs.
Dr Brockwell said: "The problem with many of these new protein-based drugs is that they suffer from similar problems to those we see in amyloid diseases; they stick together. This means you can end up with potentially life-saving drugs that you cannot manufacture.
"We are investigating whether we can use our technique to work out which biopharmaceuticals will be resistant to aggregation and hence much more likely to be successful as a drug product." 
http://www.medicalnewstoday.com/releases/304103.php?tw