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What might be possible in the decades—or years—ahead in 3D bioprinting?
August 12, 2016
By: Cell Press
Now that 3D printing has made it easier to generate custom-made prosthetics, bioengineers are looking ahead at manufacturing actual cellular material. Such technology could be the basis for personalized biomedical devices; tissue-engineered skin, cartilage, and bone; or even working bladders. In a Trends in Biotechnology special issue on biofabrication, publishing August 17, researchers review and consider the progress made in 3D bioprinting and what might be possible in the decades—or years—ahead. 1. Made-to-Order Organs-on-a-Chip “Organs-on-a-chip”—3D microengineered systems that mimic the structure and function of human tissue—are a strong contender in the race to deliver inexpensive and efficient personalized medicine. Lung, gut, and pancreatic tissue have already been grown from human stem cells on the chips, which allow researchers to study physiological differences in these cells between patients as well as screen for drugs. Manufacturing challenges exist to quickly expand the use of the technology, but 3D printing could reduce the labor and costs necessary to build, seed, and meet the demand for chips. “The intersection of 3D printing for microfluidic fabrication and bioprinting 3D tissues shows great promise in the direction of single-step organ-on-a-chip engineering and can allow greater flexibility and throughput in the research process,” says Savas Tasoglu (@SavasTasoglu), assistant professor at the University of Connecticut, who works on developing new applications of 3D printing in microfluidics and organs-on-a-chip. “In future studies, more advanced 3D bioprinters that can print a range of viscous materials may be utilized to print and fabricate both the microfluidic platform and patterned complex tissues inside the device simultaneously. Such closed integrated systems will greatly simplify the fabrication of organ-on-a-chip models and enable faster iterations of organ-on-a-chip designs.” (More information available here and here)
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