Neural Stem Cells Healing Spinal Cord Injury

Neural Stem Cells Healing Spinal Cord Injury

There is currently no go-to highly effective treatment option for spinal cord injury, despite the significant challenges those with this type of injury face. However, recent research has shown that stem cells of the brain, called neural stem cells, can help regenerate damaged area of the spinal cord. The scientists, who conducted their experiment in China, published these recent findings in the journal Experimental and Therapeutic Medicine.

Before this particular study was undertaken, it was observed that neural stem cells could help repair damage in the brain that occurred from other events, such as stroke. Because neural stem cells are able to proliferate and develop into multiple types of brain cells, they have been proposed to be an ideal type of stem cell for fixing neural injuries.

A hormone called erythropoietin, which is normally produced by the kidney, has also been shown to help neural stem cells differentiate into brain cells. Researchers therefore hypothesized that combining neural stem cell transplantation with injections of erythropoietin into the brain could help with recover from spinal cord injury. To test their idea, they induced spinal cord injury in rats and then split the rats in four groups: one group was given no treatment, one was given just a neural stem cell transplantation, one was given just erythropoietin, and one was given a combination of neural stem cell transplantation and erythropoietin.

After their interventions, the scientists saw that all the rats that received neural stem cells performed better on a test of hind limb recovery, which indicates recovery of spinal cord function. However, the rats that received the combination of neural stem cells and the hormone erythropoietin improved the most of all four groups, confirming the scientist’s idea that neural stem cells could help with reversing spinal cord injury, especially when in the presence of erythropoietin.

Going forward, researchers will likely work to see if these initial results replicate in other studies. If the results do seem to be consistent and reliable, scientists will probably begin to test the potential to use neural stem cells to treat spinal cord injury in human patients. Erythropoietin is already used clinically, so adding it to a neural stem cells transplantation protocol may also be something we see in the near future.

Learn more about treating brain disorders with stem cells.

 

Reference

Zhao, Yan et al. (2016). Neural stem cell transplantation combined with erythropoietin for the treatment of spinal cord injury in rats. Experimental and Therapeutic Medicine, 12(4), 2688-2694.

Stem Cells May Be Able to Reverse Stroke Brain Damage

Stem Cells May Be Able to Reverse Stroke Brain Damage

Scientists have now shown that combining human stem cells with a specific protein can help the stem cells turn into neurons, thereby reversing brain damage associated with stroke. The research team, led by Berislav Zlokovic at the Keck School of Medicine at the University of Southern California, published their findings in Nature Medicine in August.

The protein, 3K3A-APC is a variant of a protein normally found in the human body called activated protein C (APC). APC has both cell signaling activity and anticoagulant activity that minimizing bleeding. The 3K3A-APC variant maintains the cell signaling capacity but minimizes the anticoagulation associated with APC. This variant has been demonstrated to improve a number of health-related problems, including a number of pathologies related to the brain. Brain trauma and multiple sclerosis, for instance, have been improved through the use of 3K3A-APC.

One week after inducing stroke in a group of mice, Zlokovic and his colleagues administered put human neural stem cells in the area of the brain that had been damaged. Over the course of seven days, they then administered 3K3A-APC to one group of mice and a placebo solution to second group. The mice who received the protein in addition to the stem cells had 16 times more stem-cell derived neurons than those who received the stem cells alone.

Even more promising than the growth of neurons was that the neurons became functional, connecting with other parts of the nervous system, just as the neurons that were lost due to stroke would have, and restoring motor and sensorimotor performance in these mice. Performance on tasks such as walking on a rotating rod and removing tape from the forepaw was significantly better in the mice who received the protein than in those that did not. To ensure that the recovered functioning was a result of the stem cells, the scientists employed a toxin that rid the brain of neurons that were derived from the stem cells and saw that the improvements were then reversed.

The United States Food and Drug Administration (FDA) has already approved the use of the APC protein in clinical stroke studies, and it is currently being used in a Phase II clinical trial at the National Institutes of Health. In the trial, the protein is being used in patients who have suffered from an ischemic stroke in the past few hours. Zlokovic and his colleagues are hoping to initiate a similar trial to test the effects of the stem cell 3K3A-APC combination in patients who have suffered from stroke. The work Zlokovic has already completed, as well as related work by others, signals that there is great potential for stem cell therapy to restore brain tissue as well as normal functioning in stroke patients.

Learn more about treating post stroke syndrome with stem cells.

 

Reference

Wang, Y. et al. (2016). 3K3A-activated protein C stimulates postischemic neuronal repair by human neural stem cells in mice. Nature Medicine, 22(9), 1050-1055.

Subscribe To Our Newsletter

Subscribe To Our Newsletter

Join our mailing list to receive the latest news and updates from our team.

You have Successfully Subscribed!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!

Request Information Packet

We'll send your FREE information packet that outlines our entire personalized, stress-free stem cell treatment process!

Thanks for your interest!