Showing posts with label spinal cord injury. Show all posts
Showing posts with label spinal cord injury. Show all posts

18 December 2013

Studying the Validity of Stem Cell Therapy on Spinal Cord Injuries


A new study conducted a meta-analysis of previous lab experiments in 156 previously published studies on the effects of stem cell treatment for spinal cord injury.

The paper, "Stem Cell Transplantation in Traumatic Spinal Cord Injury: A Systematic Review and Meta-Analysis of Animal Studies", is published in the open access journal PLOS Biology by Ana Antonic, David Howells and colleagues from the Florey Institute and the University of Melbourne, Australia, and Malcolm MacLeod and colleagues from the University of Edinburgh, UK. It addresses the validity of stem cell therapy on spinal cord injuries.

The study finds that stem cell treatment results in about a 25% average improvement in both sensory and motor outcomes.

The spinal cord, combined with the brain, makes up the Central Nervous System (CNS). It is about 43 cm (17 in) to 45 cm (18 in) long and around 0.25 to 0.50 inches thick.

The spinal cord transmits the neural signals from the brain to the rest of the body. Neural circuits that can independently control numerous reflexes and central pattern generators also can be found in the spinal cord.

The spinal cord is very delicate, any major damage to the spinal cord may result in death or paralysis. Aside from stem cell therapy, scientists are looking into neuroprosthetics and robotics in treating spinal cord injury.

18 February 2013

Update On Spinal Cord Injury Treatment Through Robotics, Neurorehabilitation, and Electrical-Chemical Stimulation


An update on the research conducted last year on repairing spinal cord injury is set to be delivered at the 2013 Annual Meeting of the American Association for the Advancement of Science (AAAS) in Boston.

In the June 01 issue of Science, Grégoire Courtine, of the École Polytechnique Fédérale de Lausanne (EPFL) published a report on how rats with spinal cord injuries and severe paralysis managed to walk and even run again.

"After a couple of weeks of neurorehabilitation with a combination of a robotic harness and electrical-chemical stimulation, our rats are not only voluntarily initiating a walking gait, but they are soon sprinting, climbing up stairs and avoiding obstacles," explains Courtine, who holds the International Paraplegic Foundation (IRP) Chair in Spinal Cord Repair at EPF

Courtine used a cemical solution that triggers cell responses to specific receptors on the spinal neurons. This chemical, monoamine agonists, replaces neurotransmitters and acts to excite neurons. After the injection, the spinal cord is electrically stimulated with electrodes. The electrical stimulation sends continuous electrical signals through nerve fibers to the chemically excited neurons that control leg movement.

Every year, around 50,000 people suffer spinal cord injuries, most result in paralysis. This study may lead to effective treatments of these injuries and allow patients to walk again and even fully recover from it.

07 November 2012

Repairing Spinal Cord Injuries Through Schwann Cell Transplantation and Inhibition of Scarring


A new treatment for spinal cord injuries using the transplantation of Schwann cells and inhibiting the formation of scar tissues is being developed at the University of Liverpool and University of Glasgow.

The most abundant cells in the central nervous system are astrocytes (see image). They are a type of glial cells, cells that provide support and insulation between brain neurons. Their function includes biochemical support of endothelial cells that form the blood–brain barrier, provision of nutrients to the nervous tissue, maintenance of extracellular ion balance, and a role in the repair and scarring process of the brain and spinal cord following traumatic injuries.