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The catheter's coating contains a lubricating oil that resists the attachment of bacteria.
May 10, 2019
By: David Tenenbaum
University of Wisconsin-Madison
A super-slippery coating being developed at a University of Wisconsin–Madison lab could benefit medical catheters, factory equipment, and even someday, oil tankers. The coating contains a lubricating oil that resists the attachment of bacteria. A first commercial target is catheters, which are used to deliver or remove fluids in medicine. Catheters are frequently colonized by bacteria that form a tough “biofilm” that resists agents that would otherwise kill them. Between 250,000 and 500,000 catheter infections in the United States each year cost billions through increased use of antibiotics, longer hospital stays, and the need to replace the catheter. UW–Madison chemical engineering Professor David Lynn creates the patented coating by alternately dipping an object in two polymer solutions. The Wisconsin Alumni Research Foundation holds several patents on Lynn’s work and has enrolled the project in the WARF Accelerator Program. According to WARF Accelerator director Greg Keenan, “The super-slippery surface could reduce infections, blockages and costs associated with catheters.” WARF Accelerator aims to cut risks of promising technologies and ease the path to licensing by a business. “The goal of WARF Accelerator is to attract industry partners or investors by validating market potential, demonstrating commercial value, and de-risking the underlying technology,” said Keenan. Revenues from licenses are the primary source of the millions of dollars that WARF sends to UW–Madison annually to support research, salaries, buildings and equipment. The new coating can also be infused with slow-release antibiotics, which could kill fungi and bacteria in the bloodstream or urinary tract where catheters are often used. With Helen Blackwell, a professor of chemistry at UW–Madison with extensive understanding of bacterial growth, Lynn has demonstrated that the “slippery liquid-infused porous surfaces” (SLIPS) indeed prevent bacteria from growing on glass surfaces. Lynn’s slippery coatings were inspired by certain plant leaves, which cause water to bead up into nearly spherical drops. “There’s been a lot of effort in materials science to develop synthetic mimics of those leaves,” Lynn said. Lynn’s SLIPS are porous materials that are made by dipping an object in two polymer solutions. The coatings are about three millionths of a meter thick, about 25 times thinner than a sheet of paper.
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