4.8 Review

High-Throughput Methods in the Discovery and Study of Biomaterials and Materiobiology

期刊

CHEMICAL REVIEWS
卷 121, 期 8, 页码 4561-4677

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemrev.0c00752

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资金

  1. National Natural Science Foundation of China [31900957]
  2. Shandong Provincial Natural Science Foundation [ZR2019QC007]
  3. China Postdoctoral Science Foundation [2019M652326]
  4. Innovation and technology program for the excellent youth scholars of higher education of Shandong province [2019KJE015]
  5. Key Laboratory of Tianjin Hyaluronic Acid Application Research Enterprise [KTRDHA-Y201902]
  6. Scientific Research Foundation of Qingdao University [DC1900009689]
  7. China Scholarship Council [201608310113, 201707720058, 201406630003]
  8. Wellcome Trust (Sir Henry Wellcome Postdoctoral Fellowship) [201457/Z/16/Z]
  9. European Union's Horizon 2020 Programme (H2020-MSCA-ITN-2015) [676338]
  10. Netherlands Organisation for Scientific Research Vidi grant [15604]
  11. Dutch Province of Limburg (LINK project)
  12. Gravitation Program 'Materials-Driven Regeneration' - Netherlands Organisation for Scientific Research [024.003.013]
  13. Dutch province of Limburg in LINK [FCL67723]
  14. VENI grant from the Dutch Science Foundation (NWO) [15075]
  15. Wellcome Trust [201457/Z/16/Z] Funding Source: Wellcome Trust

向作者/读者索取更多资源

The complex interaction of cells with biomaterials, known as materiobiology, is crucial for developing novel implants, biomedical devices, and tissue engineering scaffolds. High-throughput screening platforms are needed to identify optimal cell responses, accelerate the development of high-performance biomaterials, and explore complex microenvironments during healing, development, and homeostasis.
The complex interaction of cells with biomaterials (i.e., materiobiology) plays an increasingly pivotal role in the development of novel implants, biomedical devices, and tissue engineering scaffolds to treat diseases, aid in the restoration of bodily functions, construct healthy tissues, or regenerate diseased ones. However, the conventional approaches are incapable of screening the huge amount of potential material parameter combinations to identify the optimal cell responses and involve a combination of serendipity and many series of trial-and-error experiments. For advanced tissue engineering and regenerative medicine, highly efficient and complex bioanalysis platforms are expected to explore the complex interaction of cells with biomaterials using combinatorial approaches that offer desired complex microenvironments during healing, development, and homeostasis. In this review, we first introduce materiobiology and its high-throughput screening (HTS). Then we present an in-depth of the recent progress of 2D/3D HTS platforms (i.e., gradient and microarray) in the principle, preparation, screening for materiobiology, and combination with other advanced technologies. The Compendium for Biomaterial Transcriptomics and high content imaging, computational simulations, and their translation toward commercial and clinical uses are highlighted. In the final section, current challenges and future perspectives are discussed. High-throughput experimentation within the field of materiobiology enables the elucidation of the relationships between biomaterial properties and biological behavior and thereby serves as a potential tool for accelerating the development of high-performance biomaterials.

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