@article{4d9a75447f8b40ad8c011776362acdc5,
title = "Buoyancy-Driven Gradients for Biomaterial Fabrication and Tissue Engineering",
abstract = "The controlled fabrication of gradient materials is becoming increasingly important as the next generation of tissue engineering seeks to produce inhomogeneous constructs with physiological complexity. Current strategies for fabricating gradient materials can require highly specialized materials or equipment and cannot be generally applied to the wide range of systems used for tissue engineering. Here, the fundamental physical principle of buoyancy is exploited as a generalized approach for generating materials bearing well-defined compositional, mechanical, or biochemical gradients. Gradient formation is demonstrated across a range of different materials (e.g., polymers and hydrogels) and cargos (e.g., liposomes, nanoparticles, extracellular vesicles, macromolecules, and small molecules). As well as providing versatility, this buoyancy-driven gradient approach also offers speed (<1 min) and simplicity (a single injection) using standard laboratory apparatus. Moreover, this technique is readily applied to a major target in complex tissue engineering: the osteochondral interface. A bone morphogenetic protein 2 gradient, presented across a gelatin methacryloyl hydrogel laden with human mesenchymal stem cells, is used to locally stimulate osteogenesis and mineralization in order to produce integrated osteochondral tissue constructs. The versatility and accessibility of this fabrication platform should ensure widespread applicability and provide opportunities to generate other gradient materials or interfacial tissues.",
keywords = "biomaterials, buoyancy, gradients, osteochondral, tissue engineering",
author = "Chunching Li and Liliang Ouyang and Pence, {Isaac J.} and Moore, {Axel C.} and Yiyang Lin and Winter, {Charles W.} and Armstrong, {James P.K.} and Stevens, {Molly M.}",
note = "Funding Information: C.L. was supported by a Top University Strategic Alliance Ph.D. Scholarship from Taiwan. L.O. acknowledges support from the Engineering and Physical Sciences Research Council (EPSRC) Programme Grant “Engineering growth factor microenvironments—a new therapeutic paradigm for regenerative medicine” (EP/P001114/1). I.J.P. and A.C.M. acknowledge support from the Whitaker International Program, Institute of International Education, USA. C.W.W. Funding Information: C.L. was supported by a Top University Strategic Alliance Ph.D. Scholarship from Taiwan. L.O. acknowledges support from the Engineering and Physical Sciences Research Council (EPSRC) Programme Grant ?Engineering growth factor microenvironments?a new therapeutic paradigm for regenerative medicine? (EP/P001114/1). I.J.P. and A.C.M. acknowledge support from the Whitaker International Program, Institute of International Education, USA. C.W.W. acknowledges support from the Biotechnology and Biological Sciences Research Council Doctoral Training Partnership (BB/N503952/1). J.P.K.A. acknowledges support from the Arthritis Research U.K. Foundation (21138) and the Medical Research Council (MRC) (MR/S00551X/1). M.M.S. and Y.L. acknowledge support from the European Research Council Seventh Framework Programme Consolidator grant ?Naturale CG? (616417). M.M.S. acknowledges support from the grant from the UK Regenerative Medicine Platform ?Acellular/Smart Materials?3D Architecture? (MR/R015651/1) and the Wellcome Trust Senior Investigator Award (098411/Z/12/Z). We thank the Facility for Imaging by Light Microscopy (FILM) at Imperial College London, and acknowledge the assistance provided by Dr. Vincent Leonardo in producing the fluorescent cell line used to generate extracellular vesicles, Dr. Yunqing Zhu for advice in polymer experiments, and Dr. John Goertz for assistance with graphic design in Figures and. Raw data are available online at https://doi.org/10.5281/zenodo.2578001. C.L. conceived the project and carried out the majority of experimental work; C.L. and L.O. performed the tissue engineering experiments; I.J.P. performed all Raman spectroscopy experiments; A.C.M. performed all mechanical characterization; Y.L. and L.O. assisted on the material modification and synthesis; C.W.W. assisted with extracellular vesicle production; J.P.K.A. and M.M.S. supervised the work; and C.L., J.P.K.A., and L.O. wrote the paper with contributions from all authors. Funding Information: acknowledges support from the Biotechnology and Biological Sciences Research Council Doctoral Training Partnership (BB/N503952/1). J.P.K.A. acknowledges support from the Arthritis Research U.K. Foundation (21138) and the Medical Research Council (MRC) (MR/ S00551X/1). M.M.S. and Y.L. acknowledge support from the European Research Council Seventh Framework Programme Consolidator grant “Naturale CG” (616417). M.M.S. acknowledges support from the grant from the UK Regenerative Medicine Platform “Acellular/Smart Materials—3D Architecture” (MR/R015651/1) and the Wellcome Trust Senior Investigator Award (098411/Z/12/Z). We thank the Facility for Imaging by Light Microscopy (FILM) at Imperial College London, and acknowledge the assistance provided by Dr. Vincent Leonardo in producing the fluorescent cell line used to generate extracellular vesicles, Dr. Yunqing Zhu for advice in polymer experiments, and Dr. John Goertz for assistance with graphic design in Figures 1 and 3. Raw data are available online at https://doi.org/10.5281/zenodo.2578001. C.L. conceived the project and carried out the majority of experimental work; C.L. and L.O. performed the tissue engineering experiments; I.J.P. performed all Raman spectroscopy experiments; A.C.M. performed all mechanical characterization; Y.L. and L.O. assisted on the material modification and synthesis; C.W.W. assisted with extracellular vesicle production; J.P.K.A. and M.M.S. supervised the work; and C.L., J.P.K.A., and L.O. wrote the paper with contributions from all authors. Publisher Copyright: {\textcopyright} 2019 The Authors. Published by WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim",
year = "2019",
month = apr,
day = "25",
doi = "10.1002/adma.201900291",
language = "English (US)",
volume = "31",
journal = "Advanced Materials",
issn = "0935-9648",
publisher = "Wiley-VCH Verlag",
number = "17",
}