4.8 Article

BIOMEDICINE Multivascular networks and functional intravascular topologies within biocompatible hydrogels

期刊

SCIENCE
卷 364, 期 6439, 页码 458-+

出版社

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/science.aav9750

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资金

  1. Robert J. Kleberg, Jr. and Helen C. Kleberg Foundation
  2. U.S. National Science Foundation (NSF) [1728239]
  3. NSF [1450681]
  4. U.S. National Heart, Lung, and Blood Institute (NHLBI) of the National Institutes of Health (NIH) via F31 NRSA Fellowship [HL134295]
  5. NIH Director's New Innovator Award (NHLBI) [DP2HL137188]
  6. John H. Tietze Foundation
  7. NIH National Institute of Biomedical Imaging and Bioengineering (NIBIB) Cardiovascular Training Grant [T32EB001650]
  8. NIH National Institute of General Medical Sciences (NIGMS) Molecular Medicine Training Grant [T32GM095421]
  9. Office of the Director of the National Institutes of Health Early Independence Award [DP5OD019876]
  10. Gulf Coast Consortia on the NSF IGERT: Neuroengineering from Cells to Systems [1250104]
  11. Directorate For Engineering
  12. Div Of Civil, Mechanical, & Manufact Inn [1728239] Funding Source: National Science Foundation

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Solid organs transport fluids through distinct vascular networks that are biophysically and biochemically entangled, creating complex three-dimensional (3D) transport regimes that have remained difficult to produce and study. We establish intravascular andmultivascular design freedoms with photopolymerizable hydrogels by using food dye additives as biocompatible yet potent photoabsorbers for projection stereolithography. We demonstrate monolithic transparent hydrogels, produced in minutes, comprising efficient intravascular 3D fluid mixers and functional bicuspid valves. We further elaborate entangled vascular networks from space-filling mathematical topologies and explore the oxygenation and flow of human red blood cells during tidal ventilation and distension of a proximate airway. In addition, we deploy structured biodegradable hydrogel carriers in a rodent model of chronic liver injury to highlight the potential translational utility of this materials innovation.

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