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Major challenge in hydrocephalus catheters—clogging—could be overcome by leveraging catheter geometry.
July 31, 2020
By: Mindy Blodgett
Institute for Medical Engineering and Science, MIT
For medical professionals treating hydrocephalus—a chronic neurological condition caused by an abnormal accumulation of cerebrospinal fluid (CSF), resulting in pressure on the brain—there have been a limited range of treatment options. The most common is the surgical placement of a medical device called a shunt, a sort of flexible tube, which is placed in the ventricular system of the brain, diverting the flow of CSF from the brain to elsewhere in the body. While effective, this surgery comes with risks (the procedure requires drilling a hole into the skull, after all), and the failure rate for these shunts, despite their lifesaving properties, is quite high. Whether congenital (present at birth, including spina bifida) or acquired (from a brain injury, for instance)—hydrocephalus affects more than 1 million Americans, ranging from infants and older children to seniors. Now, MIT researchers have released a paper in the Journal of the Royal Society Interface that proposes and validates a new design principle for hydrocephalus catheters that seeks to overcome a central challenge in the design of these devices: that they regularly become clogged. A clogged catheter has life-threatening implications, especially for children, and usually leads to emergency surgery, the reopening of sealed scars and the possible need for resection of the implanted catheter from the brain before putting a new catheter in, followed by required additional healing time. This process carries with it the risk of damage to brain tissue and infection. For pediatric patients, catheters have a 60 percent chance of failure, often due to tissue that is clogs the catheters, eventually stopping the flow of CSF away from the brain. The new research focuses on the potential redesign of the shunts, according to one of the authors of the paper, Thomas Heldt, an associate professor of electrical and biomedical engineering in the Department of Electrical Engineering and Computer Science and the Institute of Medical Engineering and Science (IMES). He points out that an important part of the research process was to conduct in vitro experiments exposing cell cultures to fluid shear stress, in addition to microfluidic flow imaging, and conducting fluid dynamic calculation and measurements.
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