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Duke-NUS’ GK Goh Centre for Neuroscience reveals new research on cultivating brain cells to treat diseases

Prof Zhang and his team showing the cultivated cells

Prof Zhang Suchun (seated), with his team, showing the cultivated cells

Scientists from Duke-NUS Medical School have come up with novel methods to cultivate brain cells from stem cells to treat and study neurodegenerative diseases.

While its inaccessibility makes any study of the brain challenging, our strategy is to develop functional brain cells to study and uncover their roles in neurodegenerative conditions.”
— Professor Zhang Suchun
SINGAPORE, December 15, 2023 /EINPresswire.com/ -- Scientists from Duke-NUS Medical School (Duke-NUS) and their collaborators have come up with new methods to cultivate brain cells from stem cells to treat and study neurodegenerative diseases. This novel technology forms the basis of two recent research projects under the newly established GK Goh Centre for Neuroscience (the GK Goh Centre) at Duke-NUS, offering hope for new treatments to patients suffering from neurological conditions such as Alzheimer’s disease, ischaemic stroke and Parkinson’s Disease.

The GK Goh Centre was established within Duke-NUS’ Neuroscience & Behavioural Disorders (NBD) Programme with the help of a generous $5 million gift by the G.K. Goh family in honour of Mr GK Goh, Founder and Executive Chairman of G.K.Goh Holdings, to investigate the impact of ageing on the brain through findings such as these. It is led by renowned neuroscientist Professor Zhang Suchun, who is also the director of Duke-NUS’ NBD Programme.

In the first research project, which was published in Advanced Science, scientists successfully grew neurons (nerve cells) from stem cells for transplantation into stroke patients to repair damaged brain tissue. The cells were cultivated on a chemical cocktail made up of Fibrinogen, a protein that helps with blood clotting; and Maraviroc, a drug used to treat infection. This mixture protected the cells from inflammation when they were transplanted into the highly inflamed environment of a brain affected by ischaemic stroke. In preclinical trials, the cells not only survived, but successfully matured into the target neuron type and repaired the damaged brain over a period of 30 days. Prior to this discovery, transplanted cells had poor survival rates as most of them would die in the ischaemic cavity of the brain due to inflammation.

Ischaemic stroke, which occurs when blood supply to the brain is suddenly reduced, is a leading cause of death and disability worldwide. Globally, one in four people over the age of 25 will have a stroke in their lifetime. To date, the only opportunity to mitigate the damage caused by stroke lies within the first six hours after the event. Even then, almost all survivors do not recover fully, living with disabilities, such as paralysis and cognitive impairment. No treatments are available that can fully restore function.

“The human brain has a very limited capacity to regenerate so there is a need for more effective treatment for neurological diseases. Stem cell-based approaches hold promise as they can protect the injured neurons from further damage and replace lost neurons. Our transplantation method has proven that cultivated cells can mature to become functional neurons and potentially integrate into brain circuitry in conditions such as stroke, spinal cord injury and Parkinson’s disease,” said Dr Wang Zhifu, lead author of the study, and a research fellow with Duke-NUS’ NBD Programme.

The team has licensed the method and patent applications are underway for this technology, which has also proven successful in other neurodegenerative diseases, including Parkinson’s disease. In previous studies of Parkinson’s disease, Prof Zhang and his collaborators have used their method to produce dopamine neurons. These cells, which are located in the midbrain, degenerate with the onset of the disease. The healthy neurons that were cultivated can then be transplanted into the brains of those with Parkinson’s disease, where the cells grow and regenerate damaged tissue in the process. The research findings were published in Cell Stem Cell and Nature Medicine. The team is seeking approval from US regulators to start human safety clinical trials.

“While its inaccessibility makes any study of the brain challenging, our strategy is to use the new technology to guide stem cells to develop into various types of neurons. With these functional brain cells, we can study how they age and uncover their roles in neurodegenerative conditions. The new insights will help in finding new and more effective therapies to treat brain diseases and perhaps even slow down the ageing process,” said Prof Zhang.

Using the same technology, the team at the GK Goh Centre are also the first in the world to produce norepinephrine neurons—specialised nerve cells located in the brainstem, which connects with every part of the brain and spinal cord. These neurons degenerate in many conditions such as Alzheimer’s disease and Parkinson’s disease—often as early as ten years before symptom onset. The production of these cells will enable scientists to study why they are vulnerable and how their degeneration causes the diseases. This research was published in Nature Biotechnology.

“I am delighted that our scientists have already made impactful findings that will go a long way to help patients suffering from neurodegenerative diseases in Singapore. I am confident that this Centre will continue to enable Duke-NUS to deliver innovative bedside interventions that will not only improve the quality of life for the individual but also support our nation’s efforts on healthier ageing,” said Mr GK Goh, who is also Chairman Emeritus of the international executive board of Temasek Foundation International and a member of the board of Temasek Foundation.

“The potential for this novel technology is limitless. Professor Zhang and his team have cultivated more than a dozen different types of functioning neurons, including those in the brain, eye and spinal cord. They have also collected a vast spectrum of biological samples that they can use in tandem to decode how the brain ages, a physiological process we still know little about. We are thankful for the donation by the G.K. Goh family, which will offer us the means to test drugs and develop new therapies for otherwise incurable brain conditions,” said Professor Thomas Coffman, Dean, Duke-NUS.

References:
Wang, Z. et al. (2023) ‘Enabling survival of transplanted neural precursor cells in the ischemic brain’, Advanced Science [Preprint]. doi:10.1002/advs.202302527

Tao, Y. et al. (2023) ‘Generation of locus coeruleus norepinephrine neurons from human pluripotent stem cells’, Nature Biotechnology [Preprint]. doi:10.1038/s41587-023-01977-4

Alice Chia
Duke-NUS Medical School
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