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Friday, February 12, 2016

New Treatments, New Technologies in Parkinson Disease

Bret S. Stetka, MD
Disclosures | February 11, 2016


BRIAN FISKE, PHD
Editor's Note: 

Medscape recently spoke with Brian Fiske, PhD, senior vice president of research programs at the Michael J. Fox Foundation (MJFF), about the latest advances in the understanding and treatment of Parkinson disease (PD). 

Medscape: Welcome, Dr Fiske. The MJFF recently held its yearly research conference. What were some of the most promising highlights?
Dr Fiske: A lot of interesting work was discussed at this meeting. The goal was to highlight some of the areas that the MJFF has invested in and where we see really interesting promise. When we invite our grantees to present at this meeting, the goal is to try to build some of that excitement and interest in those project areas. Two talks during the session that focused on disease-modifying therapeutics were of particular interest.
One was from Dr Lars Wahlberg from NsGene; he was talking about his program around delivering the growth factor glial cell line-derived neurotrophic factor (GDNF) to people with PD, which is work he has been doing for quite some time now with us. The idea is packaging GDNF within what he's calling an "encapsulated cell" therapeutic approach; these encapsulated cells will secrete GDNF into the brain of people with PD, with the goal of protecting dopamine neurons.
It's an interesting idea. As a field, we've researched neurotrophic factors before, and there are a lot of challenges and problems that we've faced. I think what's interesting about this approach is that it's a novel twist on how to deliver a growth factor to the brain. He's really gearing up now for potential future human trials, and he's doing some additional work to try to better understand the capabilities of the system. It's really interesting to see the continued progress in that area.
Medscape: What has previous GDNF research in animal models of PD shown?
Dr Fiske: In general, the growth factor field has tried a couple of different approaches, including delivering both GDNF as well as another growth factor, called neurturin, in a variety of different ways. These include infusing the protein directly through a pump mechanism into the brain and also using something more novel, such as gene therapy.
Different companies have tried these approaches; unfortunately, the trial results to date have not been particularly positive, for a lot of reasons that people are still trying to figure out. In general, I think that there is still promise in neurotrophic factor therapeutics if we can do the trials correctly and safely, and in the right people.
Medscape: You described the mechanism as being cellular packets. Are these stem cells that release the growth factor?
Dr Fiske: These are engineered cells that Dr Wahlberg has basically created to produce GDNF. The technology here is that they're encapsulated in a way such that you could put them in the brain, but you could also remove them if you needed to—either for safety reasons or other reasons, to manipulate how you deliver them. It's like using the pump that infuses into the brain: If need be, you can turn off the pump. Gene therapy is obviously more of a permanent production, so if you put a gene into the brain, it will continue to produce GDNF. This was sort of a compromise between the two.
The encapsulation approach also helps to ensure that the cells are protected from possible immune rejection by the patient, which is obviously another important concern.
Medscape: So a neurosurgeon would place these packets in the substantia nigra or some other region of interest? 
Dr Fiske: Yes, and then it would produce GDNF, secreting it from these cells and acting as neurotrophic support for the brain.

Identifying Genetic Targets for Drug Development

Medscape: That's fascinating. What other research presented at the meeting shows particular promise, in your opinion? 
Dr Fiske: I think the other interesting highlight was around a genetic target for PD. There is a gene called leucine-rich repeat kinase 2 (LRRK2); in about 2004, some of the mutations within the gene were first discovered to be associated with PD. Since that time, people have really become excited about this target for a few reasons. One is because of the genetics; there is a strong genetic link to PD.
But also, the gene encodes for a type of protein called a kinase, and because of that, drug companies have become very interested in developing drugs that target it. They are very familiar with making drugs against kinases from other fields, such as oncology. Because of the really strong genetics and the compelling biological function of the protein, it's had a robust response from drug-makers working in the PD field.
What was interesting about the presentation at the conference—which was presented by one of our research staff members, Dr Marco Baptista—was a lot of work that we've been doing in the past year or so, looking at the potential safety of LRRK2-targeted targeted drugs. It started about a year or two ago, when some initial data came out showing that Genentech's version of an LRRK2 drug, when delivered into nonhuman primates, was showing some cellular abnormalities in lung tissue. We very quickly worked with them to try to verify that finding, to be sure that we could replicate it and understand it to determine whether it was really true or not. We've been working to verify those findings, first with Genentech and then ultimately with other companies.
Marco presented the outcomes of some of these studies, looking to demonstrate whether or not we can see this lung cellular abnormality in primates treated with LRRK2 inhibitors. We've also been trying to better understand what this could actually mean. For example, is it causing any functional changes in the lung, and are there detrimental effects? So far, we don't see any functional impact on the lung tissue at all, and the cellular abnormality is reversible when the drug is stopped, so our sense is that many companies will continue to pursue their LRRK2 inhibitor programs regardless of this potential finding. We'll need to decide in future clinical trials whether we need to put in particular safety measures to look for lung function changes in people.
Medscape: How far off do you think human trials of LRRK2 inhibitors are? 
Dr Fiske: It's hard to say. I think it really depends on a variety of factors. It's been relatively easy to make LRRK2 drugs because of the chemical knowledge people already have around this type of protein and drug target. I think the real challenges are more around the trials.
Obviously, if you're going to be moving into a clinical trial, presumably you're going to want to start first with people who carry the LRRK2 mutation. Making sure that we could actually find enough of those people, and at the right stage of PD, to actually be able to do this type of trial is one logistical challenge.
Another important issue is what types of biomarkers you would want to measure in these individuals, to know that your drug is actually affecting not only PD-relevant biology but also LRRK2-relevant biology specifically. I think we will see some of these drugs start moving into the clinic in the next couple of years, on the basis of our initial forecasting.

Using Biomarkers in Predictive Modeling for PD

Medscape: How about biomarkers? Was there anything new this year at the conference?
Dr Fiske: Yes, there was some interesting work around biomarkers. Obviously, this has been a big effort for the MJFF, and we've invested quite heavily in this area—in particular with regard to a large study, the Parkinson's Progression Markers Initiative (PPMI). Now that the study has been ongoing for 5 years, we're starting to get really meaningful data out of it.
One presentation that I think was particularly interesting was from Dr Andrew Singleton at the National Institute on Aging, which is part of the National Institutes of Health. He has been utilizing some of the data from PPMI, along with other data, to devise predictive models that could be used to help determine whether someone is at risk for PD. He's looking at a combination of genetics and some clinical features that basically allow you to distinguish people with PD from those without PD. The idea is that you ultimately predict whether someone might be at high risk for getting PD. These data were actually published in Lancet Neurology this year.[1]
A nice feature of the PPMI study is that the data that we collect are made available in real time, so people can have access to them as soon as we're able to get them out through the distribution mechanisms. People are then able to do these types of studies far more easily.

The Prion Hypothesis: An Update

Medscape: How about the idea that PD might be a prion-like disorder? Have there been any recent updates in the field here? 
Dr Fiske: This continues to be an interesting area. What's most exciting about alpha-synuclein in the therapeutic space right now is that we have multiple companies conducting clinical trials with various alpha-synuclein–based therapeutics: AFFiRiS, Prothena, Biogen, and Neuropore are developing therapeutic programs around alpha-synuclein in the clinic.
The prion hypothesis is very interesting, but whether it will necessarily affect existing therapeutic approaches is unclear. Most of these approaches are not targeting the actual mechanism of the alpha-synuclein spread, but rather trying to target alpha-synuclein directly and lower it or get rid of it. Hence, we don't think that answering the question about whether alpha-synuclein spreads in a prion-like mechanism is necessarily going to affect current therapy, but you never know.
Medscape: Do you think that the prion theory could be the unifying factor between PD and other neurodegenerative disorders, including Alzheimer disease?
Dr Fiske: I think it's an interesting question to ask. And I do think that the idea of an abnormal protein causing other proteins to become abnormal and spreading across the brain could potentially be a common thread underlying a number of neurodegenerative diseases. I think it is something that we continue to monitor very closely. Obviously, if that is true, it gives you some common areas and ways to target those kinds of mechanisms that could then have an impact beyond PD.
Generally, in the field of neurodegenerative research, people are starting to home in on these kinds of common biological pathways—how proteins are handled and distributed and gotten rid of in cells, and also how bioenergetic mitochondrial dysfunction might be involved. I think as we understand more about these diseases, we may start to realize that there might be more similarities than differences.
Medscape: Are there any final highlights from the research conference you'd like to share? 

New Formulations, New Technologies

Dr Fiske: Dr Warren Olanow from Mount Sinai Hospital discussed the plethora of options that are now coming to patients in terms of different ways to deliver dopamine therapeutics. In the past, it's always been just the traditional dopamine approaches (eg, Sinemet® [carbidopa/levodopa]), and then some of the dopamine agonist drugs that are available. We're now starting to see additional types of drugs becoming available, including intestinal gels (Duopa™) and extended-release formulations (Rytary™), for example.
Dr Ray Dorsey from the University of Rochester discussed another interesting area: the growing trend to use different technologies in PD care, in particular wearable devices and smartphones. We're investing in this area ourselves and trying to collect data in novel innovative ways from people with the disease, so that we can better understand their day-to-day experience. I think we will continue to see this type of movement in the field as we better understand the technologies we have, and what we do ultimately with the data they can supply.
http://www.medscape.com/viewarticle/858532?src=wnl_edit_tpal&uac=140844CK

Neurons in Parkinson’s Patients May Be Taught to Respond to Placebos as Drugs

February 12, 2016By Daniela Semedo, PhD


Brain cells in Parkinson’s disease patients can learn to respond to placebo drugs, although the training appears to wear off after 24 hours. This finding, researchers said in “Teaching neurons to respond to placebos,” a study published in The Journal of Physiology, shows it may be possible to lower Parkinson’s medication by mixing real drugs with placebos.
A placebo is an inert treatment administered as an effective treatment so as to induce positive expectations of clinical improvement. Placebos have been found to affect patients’ brains in a number of conditions, including pain and motor disorders. In Parkinson’s disease (PD), placebo treatment has been seen to induce a release of dopamine in the striatum and to change the activity of neurons in specific brain regions, but in very few patients.
To investigate whether the broader effect observed in pain and motor disorders could be replicated in PD patients, Fabrizio Benedetti and colleagues at the University of Turin, Italy, studied 42 subjects with advanced disease undergoing electrode implantation for deep brain stimulation, a therapy that alleviates some disease symptoms. During the therapy, the researchers measured the activity of individual neurons in the thalamus, an area of the brain that is inhibited in PD as a consequence of dopamine privation.
Some patients were given a saline injection but told it was apomorphine (a drug that alleviates PD symptoms by activating dopamine receptors). This injection produced no response — except in those patients who had been “preconditioned” to expect a response by receiving one-to-four daily injections of the real drug over the preceding days.
These preconditioned patients responded to the saline: after receiving the injection, their neurons were seen to exhibit increased activity and their muscle rigidity symptoms to decline by an independent neurologist not told who was on saline placebo. If patients had received four previous apomorphine injections, there was “no difference between drug and placebo response,” Dr. Benedetti said in a news release.
Importantly, the responses are not likely to be due to any residual apomorphine in the participants’ systems, as the drug is effectively eliminated by the body within hours of administration, the release said.
Trained response wore off after a day, so it is short-lived. However, Dr. Benedetti believes that the placebo “memory” of neurons may be improved by giving patients real drugs for longer periods of time.
The study is noteworthy “because of its clear demonstration that clinical response and neuronal activation are clearly linked and can be trained,” Christopher Goetz, a neurologist at Rush University Medical Center in Chicago, Illinois, said in the release. “Though the group sizes are small, the results seem compelling,” added Tor Wager, a neuroscientist at the University of Colorado Boulder, who has studied placebo effects in pain relief.
Evidence from previous studies of placebos in pain and immune responses have demonstrated that learned effects occur even in people aware of a placebo drug. While Dr. Benedetti acknowledges that this study does not clarify whether an  “honest placebo” approach could work for PD patients, he and others said that it could be possible to use placebo drugs in clinical practice if patients are informed of placebos interspersed with actual medicines.
According to Alberto Espay, a University of Cincinnati in Ohio neuroscientist who has also conducted research into placebo effects in Parkinson’s patients, more study is needed to evaluate the long-term benefit of such an approach. However, he believes that placebos could eventually be used in clinical practice to decrease drug amounts and costs. Dr. Benedetti is hopeful that placebo use might also help to delay drug tolerance, ensuring a medication’s effectiveness in patients for longer periods of time.
http://parkinsonsnewstoday.com/2016/02/12/parkinsons-patients-trained-to-respond-to-placebos/

Human mini-brains to speed up Alzheimer’s and Parkinson’s research

February 12, 2016 By Science Editorin Washington


The miniature organs, which are around the size of an insect eye, contain neurons and cells of a human brain

Tiny human mini-brains could speed up cures for Alzheimer's and Parkinson's disease Photo: ALAMY

Tiny human mini-brains which can think have been created by scientists to speed up cures for Alzheimer’s and Parkinson’s disease. 
The miniature organs, which are around the size of an insect eye, contain neurons and cells of a human brain and even show evidence of electrical activity, which can be measured. 
'We believe the future of brain research will include less reliance on animals, more on human, cell-based models' 
Dr Thomas Hartung 
Scientist at Johns Hopkins in the US say they can be mass-produced in labs to allow new drugs to be tested for safety and effectiveness without the need for animals which often do not mirror how human cells work. 
"Ninety-five percent of drugs that look promising when tested in animal models fail once they are tested in humans at great expense of time and money," says study leader Dr Thomas Hartung, MD, PhD, of the Bloomberg School of Public Health at Johns Hopkins in Baltimore. 
"While rodent models have been useful, we are not 150-pound rats. And even though we are not balls of cells either, you can often get much better information from these balls of cells than from rodents. 
"We believe that the future of brain research will include less reliance on animals, more reliance on human, cell-based models.”


Dr Hartung said the brains had even started to produce ‘a primitive type of thinking.’ 
'It has the beauty that we can do this from essentially anybody. We have been doing this from five different donors so far, among them also people with genetic diseases' 
Dr Thomas Hartung 


Obviously there's no input or output,” he added. “It is meaningless electrical activity but the neurons are trying to communicate with each other.” 
The brains are made from skin cells of adults which have been reprogrammed back to a stem-cell like state, then grown into brain cells which then transform into mini-brains within eight weeks. 
The team said that cells from people with certain genetic traits could also be grown to provide a model for diseases like Alzheimer’s,Parkinson’s or multiple sclerosis. 
"It also has the beauty that we can do this from essentially anybody,” added Dr Hartung. “We have been doing this from five different donors so far, among them also people with genetic diseases. So we can test for the first time the combination of genetic traits together with the effect of substances, because many disease are not explained by genes along.

“We have been doing work on Parkinson's as an example, which we're publishing, because we can really replicate some of the hallmarks of Parkinson's in human brain model." 
The brains even showed spontaneous electrophysiological activity, which could be recorded with electrodes. To test them, the researchers placed a mini-brain on an array of electrodes and listened to the spontaneous electrical communication of the neurons as test drugs were added. 
The research was presented at the annual Advancement for American Science Annual Conference (AAAS) in Washington.

http://www.telegraph.co.uk/news/science/science-news/12154573/Human-mini-brains-to-speed-up-Alzheimers-and-Parkinsons-research.html

Tiny worm opens big discovery on nerve degeneration

February 12, 2016
Researchers have discovered two proteins that play a role in the degeneration of axons in nerve cells. Credit: Dr Rosina Giordano-Santini / QBI
A discovery in a transparent roundworm has brought scientists one step closer to understanding nerve degeneration.

University of Queensland researchers have discovered the worm contains two proteins that play a role in the degeneration of axons in nerve cells.

Project leader Associate Professor Massimo Hilliard, from the Queensland Brain Institute, said axons - long, thread-like nerve cell sections that transmit information - were one of the first parts destroyed in neurodegenerative disease.
"By understanding the molecules involved in axonal degeneration, we can find better ways to protect neurons," Dr Hilliard said.
"Axons are often hit and damaged by external trauma or internal injury."

Nerve axons are also damaged in neurodegenerative conditions including Alzheimer's disease, Parkinson's and Charcot-Marie-Tooth diseases.

The researchers discovered the new proteins by using a laser to cut axons in the roundworm Caenorhabditis elegans (C. elegans), a small model system with only 302 neurons.

Monash University collaborator Dr Brent Neumann, previously of QBI, said C. elegans was an ideal research model.

"This tiny worm - about 1mm long - allows us to understand what happens in axonal degeneration on a molecular and genetic level," Dr Neumann said.
"We found there is cross-talk between the dying neuron and the surrounding tissue, where the neuron sends a signal that it needs to be cleaned up."
The study's co-lead author, Ms Annika Nichols, said the discovery created new avenues for researchers seeking to limit the degenerative process.
"The aim would be to allow neurons to be better preserved," she said.
The proteins identified seem to alter the membrane of dying neurons.


"The molecular components we discovered are conserved across evolution, meaning that the same proteins exist in the C. elegans worm as in flies, mice and humans," Ms Nichols said.

http://www.medicalnewstoday.com/releases/306492.php
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Thursday, February 11, 2016

Machine-learning robot could streamline drug development

CHRIS WOOD  FEBRUARY 10, 2016
The technology could revolutionize the testing of new medications (Credit: Shutterstock)
Testing out newly developed drugs is an extremely time-consuming process, and it can be difficult to get right. Now, a team of scientists at Carnegie Mellon University (CMU) is working to streamline the task, creating a robotically-driven experimentation system that's able to reduce the number of tests that have to be carried out by as much as 70 percent.
When working on a new drug, scientists have to determine its effects to ensure that it's both an effective treatment and not harmful to patients. This is hugely time-consuming, and it's simply not practical to perform experiments for every possible set of biological conditions.
That's where CMU's new robotic system steps in. It uses a machine learning approach to choose which experiments to conduct, using patterns in the data to accurately predict results of experiments without actually carrying them out.
The system is able to conduct selected experiments on its own, using liquid-handling robots and an automated microscope. Its abilities were put to the test in a study to determine the effects of 96 drugs on 96 cultured mammalian cell clones, containing different, fluorescently-tagged proteins. A total of 9,216 experiments were possible, each of which involved testing the effects of a drug by taking a picture of it mixing with the target cell.
The machine began by imaging all 96 cells, pinpointing the location of the protein within it. The effects of each drug were then recorded in the same way, with the machine learning algorithm slowly identifying patterns in the location of the proteins, known as phenotypes.
By grouping together similar images, the machine learner was able to identify potential new phenotypes without help from the researchers. As more data was gathered, it was used to form a predictive model, guessing the outcomes of unmeasured experiments.
A total of 30 rounds of testing were undertaken by the automated system, with 2,697 experiments completed out of the possible 9,216. The rest of the outcomes were predicted by the machine, to an impressive accuracy rate of 92 percent.
The researchers believe that their work proves that machine learning techniques are viable for use in medical testing, and could have a big impact on both the practical and financial issues faced by the field.
"The immediate challenge will be to use these methods to reduce the cost of achieving the goals of major, multi-site projects, such as The Cancer Genome Atlas, which aims to accelerate understanding of molecular basis of cancer with genome analysis technologies," said senior paper author Robert F. Murphy.
The findings of the research were published online in the journal eLife.
http://www.gizmag.com/machine-learning-drug-development/41759/?utm_source=Gizmag+Subscribers&utm_campaign=d5986a6098-UA-2235360-4&utm_medium=email&utm_term=0_65b67362bd-d5986a6098-92059757

Is there a link between gut microbiota and Parkinson’s disease?





At first, he noticed a twitch in one of his fingers. “It’s nothing”, he thought. But as time went on, the movements did not stop. So Michael J Fox, who played Marty McFly in the popular Back to the Future film sagadecided to go to the doctor, who, unfortunately, diagnosed him with Parkinson’s disease in 1991. At that time, the American actor was only thirty years old. Like him, there are 6.3 million people suffering from this condition worldwide, according to the European Parkinson’s Disease Association. Normally, the age of onset is over sixty, but it is estimated that 10% of patients are diagnosed before the age of fifty – and that’s what happened to the actor.
Parkinson’s disease (PD) is a progressive neurodegenerative condition that results in the gradual loss of cells responsible for the production of dopamine, a neurochemical transmitter essential for the coordination of movement. That means that this neurological disease eventually renders some patients unable to walk, to talk or even to take care of themselves.  As things are now, researchers do not know either the exact cause or a cure for the condition. However, a new study conducted at the University of Helsinki and the Helsinki University Central Hospital seems to shed some light on the subject.
Finnish experts led by neurologist Filip Scheperjans of the Departament of Neurology of the Helkinski University Hospital, showed for the first time that there are differences between the gut microbiota of PD patients and that of healthy subjects and that these differences may be related to both the symptom’s severity and the clinical phenotype of the disease. This new study fits in a chain of previous research that proposed PD to be of gastrointestinal origin.
Based on a study conducted with 72 Parkinson’s patients and 72 control subjects, Scheperjans and his team saw that patients with Parkinson’s had much less bacteria in their guts from the Prevotellaceae family than their healthy counterparts did. Researchers also detected a direct correlation between the amount of microbes from the Enterobacteriaceae genus in the intestines of patients and the degree of severity of balance and walking problems. The more Enterobacteriaceaethey had, the more severe their symptoms were. In a short article published in www.gutmicrobiotaforhealth.com, Doctor Scheperjans stated that, “the abundance of Enterobacteriaceae was related to the severity of postural instability and gait difficulty. So there was a connection between the gut microbiota and the motor symptoms of our patients. Our study is the first to demonstrate alterations of gut microbiota composition in neurodegenerative disease”.
Researchers are now re-examining the same patients, in order to determine whether the differences are permanent, and whether the intestinal bacteria are associated with the progression of the disease and, therefore, its prognosis. “We will have to see if the changes in the bacterial ecosystem existed before the onset of motor symptoms. We will, of course, also try to establish the basis of this connection between intestinal microbiota and Parkinson’s disease, what kind of mechanism binds them”, Scheperjans considers.
This new study, founded by the Michael J Fox Foundation for Parkinson’s Research and the Finnish Parkinson Foundation, which has been published in  Movement Disorders, the clinical journal of the International Parkinson and Movement Disorder Society, is in addition to other recent papers that have been able to relate gut microbes to a variety of health conditions and diseases such as obesitydepression, schizophrenia and lupus.

Scheperjans and his team hope that their results could be used to create a diagnostic test for Parkinson’s disease, and may pave the road for the development of better treatment strategies and, possibly, even prevention strategies that  focus on microbiota.

http://www.gutmicrobiotaforhealth.com/en/is-there-a-link-between-gut-microbiota-and-parkinsons-disease/