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Microfluidics in cardiovascular disease research: state of the art and future outlook

期刊

MICROSYSTEMS & NANOENGINEERING
卷 7, 期 1, 页码 -

出版社

SPRINGERNATURE
DOI: 10.1038/s41378-021-00245-2

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资金

  1. National Science Foundation of China [22008130, 51806123]
  2. China Postdoctoral Science Foundation [2020M682124]
  3. Natural Science Foundation of Tianjin [18JCYBJC42000]
  4. Research Fund of TEDA International Cardiovascular Hospital [2018-TD-001]
  5. Qingdao Postdoctoral Researchers Applied Research Project Foundation [RZ2000001426]
  6. Scientific Research Foundation for Youth Scholars from Qingdao University [DC1900014265]

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Microfluidics has been extensively used as a versatile strategy for achieving a comprehensive understanding of cardiovascular diseases, including investigating pathogenetic mechanisms, developing accurate diagnostic methods, and establishing therapeutic treatments.
Due to extremely severe morbidity and mortality worldwide, it is worth achieving a more in-depth and comprehensive understanding of cardiovascular diseases. Tremendous effort has been made to replicate the cardiovascular system and investigate the pathogenesis, diagnosis and treatment of cardiovascular diseases. Microfluidics can be used as a versatile primary strategy to achieve a holistic picture of cardiovascular disease. Here, a brief review of the application of microfluidics in comprehensive cardiovascular disease research is presented, with specific discussions of the characteristics of microfluidics for investigating cardiovascular diseases integrally, including the study of pathogenetic mechanisms, the development of accurate diagnostic methods and the establishment of therapeutic treatments. Investigations of critical pathogenetic mechanisms for typical cardiovascular diseases by microfluidic-based organ-on-a-chip are categorized and reviewed, followed by a detailed summary of microfluidic-based accurate diagnostic methods. Microfluidic-assisted cardiovascular drug evaluation and screening as well as the fabrication of novel delivery vehicles are also reviewed. Finally, the challenges with and outlook on further advancing the use of microfluidics technology in cardiovascular disease research are highlighted and discussed.

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