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The 3D-printed pipette-tip ELISA method could also help make certain medical testing available in rural or remote areas.
A desire for a simpler, cheaper way to do common laboratory tests for medical diagnoses and to avoid “washing the dishes” led University of Connecticut researchers to develop a new technology that reduces cost and time. Their pipette-based technology could also help make certain medical testing available in rural or remote areas where traditional methods might otherwise be prohibitively expensive and complicated to conduct. The 3D-printed pipette-tip test developed by the researchers leverages what “has long been the gold standard for measuring proteins, pathogens, antibodies and other biomolecules in complex matrices,” they say. The method still employs the enzyme-linked immunosorbent assay, also known as ELISA, but through a different route. They detailed their findings in a paper recently published online in Analytical Chemistry. For 30 years or more, ELISA has been used to test blood, cells and other biological samples for everything from certain cancers to HIV, from Lyme disease to pernicious anemia. Traditional ELISA tests are performed on plates featuring 96 micro-wells; each well works as a separate testing chamber where samples can be combined with various agents that will then react with the sample, typically by changing color. Technicians can then analyze whether a sample contains indicators of a particular disease or condition depending on the intensity of the color produced during the reaction. While effective and accurate, the equipment used to run ELISA is expensive—often costing thousands of dollars to install in a lab—and requires specialized training to conduct testing, as improper techniques can lead to incorrect results. The agents used in the actual tests—usually various forms of antibodies—can be expensive as well. Like many research laboratories, James Rusling’s chemistry lab where research assistant Mohamed Sharafeldin and his primary collaborator, Karteek Kadimisetty ’18 Ph.D., conducted their work, doesn’t have an automated ELISA washing machine, meaning that plates being used for tests must be manually washed—a time consuming and difficult process. “The ELISA washing techniques take forever,” said Sharafeldin, who is currently working toward his doctorate in chemistry. “It’s very tough, especially in a lab like ours. We don’t have those kind of fancy washing machines.” When Kadimisetty was running ELISA one day, he mentioned, “I wish doing ELISA was as simple as pipetting.” That offhand comment was the impetus for what followed: a design for a 3D-printed adapter for commonly used pipettes that could run an ELISA test right in the pipette tip, without the need for a traditional ELISA plate and the expensive equipment that goes with it.
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