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Weiss, Paul

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Weiss

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Weiss, Paul

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Now showing 1 - 2 of 2
  • Publication

    Emerging Trends in Micro- and Nanoscale Technologies in Medicine: From Basic Discoveries to Translation

    (American Chemical Society (ACS), 2017) Alvarez, Mario M.; Aizenberg, Joanna; Analoui, Mostafa; Andrews, Anne M.; Bisker, Gili; Boyden, Edward S.; Kamm, Roger D.; Karp, Jeffrey; Mooney, David; Oklu, Rahmi; Peer, Dan; Stolzoff, Michelle; Strano, Michael S.; Trujillo-de Santiago, Grissel; Webster, Thomas J.; Weiss, Paul; Khademhosseini, Ali

    We discuss the state of the art and innovative micro- and nano- scale technologies that are finding niches and opening up new opportunities in medicine, particularly in diagnostic and therapeutic applications. We take the design of point-of-care applications and the capture of circulating tumor cells as illustrative examples of the integration of micro- and nanotechnologies into solutions of diagnostic challenges. We describe several novel nanotechnologies that enable imaging cellular structures and molecular events. In therapeutics, we describe the utilization of micro- and nanotechnologies in applications including drug delivery, tissue engineering, and pharmaceutical development/testing. In addition, we discuss relevant challenges that micro- and nanotechnologies face in achieving cost-effective and widespread clinical implementation as well as forecasted applications of micro- and nanotechnologies in medicine.

  • Publication

    Interplay between materials and microfluidics

    (Springer Nature, 2017) Hou, Xu; Zhang, Yu Shrike; Santiago, Grissel Trujillo-de; Alvarez, Mario Moisés; Ribas, João; Jonas, Steven J.; Weiss, Paul; Andrews, Anne M.; Aizenberg, Joanna; Khademhosseini, Ali

    Developments in the field of microfluidics have triggered technological revolutions in many disciplines, including chemical synthesis, electronics, diagnostics, single-cell analysis, micro- and nanofabrication, and pharmaceutics. In many of these areas, rapid growth is driven by the increasing synergy between fundamental materials development and new microfluidic capabilities. In this Review, we critically evaluate both how recent advances in materials fabrication have expanded the frontiers of microfluidic platforms and how the improved microfluidic capabilities are, in turn, furthering materials design. We discuss how various inorganic and organic materials enable the fabrication of systems with advanced mechanical, optical, chemical, electrical and biointerfacial properties — in particular, when these materials are combined into new hybrids and modular configurations. The increasing sophistication of microfluidic techniques has also expanded the range of resources available for the fabrication of new materials, including particles and fibres with specific functionalities, 3D (bio)printed composites and organoids. Together, these advances lead to complex, multifunctional systems, which have many interesting potential applications, especially in the biomedical and bioengineering domains. Future exploration of the interactions between materials science and microfluidics will continue to enrich the diversity of applications across engineering as well as the physical and biomedical sciences.