4.6 Article

Integrated Au-Nanoroded Biosensing and Regulating Platform for Photothermal Therapy of Bradyarrhythmia

Journal

RESEARCH
Volume 2022, Issue -, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.34133/2022/9854342

Keywords

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Funding

  1. National Natural Science Foundation of China [82061148011, 62171483, 621042640]
  2. Guangdong Basic and Applied Basic Research Foundation [2020A1515010665, 2020A1515110424, 2020A1515111210, 2021A1515011609]
  3. Department of Science and Technology of Guangdong Province Project [2020B1212060030]
  4. Science and Technology Program of Guangzhou [202102010231]
  5. Funds of the Guangdong Provincial Key Laboratory of Ophthalmology and Visual Science [2020B1212060033]
  6. Open Project of Chinese Academy of Sciences [SKT2006]

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This study developed an integrated Au-nanoroded biosensing and regulating platform for investigating the photothermal therapy of cardiac bradyarrhythmia. The platform allows real-time monitoring of the electrophysiological state of cardiomyocytes and restoration of normal rhythm. Compared to conventional strategies, the photothermal strategy is more effective and convenient.
Bradyarrhythmia is a kind of cardiovascular disease caused by dysregulation of cardiomyocytes, which seriously threatens human life. Currently, treatment strategies of bradyarrhythmia mainly include drug therapy, surgery, or implantable cardioverter defibrillators, but these strategies are limited by drug side effect, surgical trauma, and instability of implanted devices. Here, we developed an integrated Au-nanoroded biosensing and regulating platform to investigate the photothermal therapy of cardiac bradyarrhythmia in vitro. Au-nanoroded electrode array can simultaneously accumulate energy from the photothermal regulation and monitor the electrophsiological state to restore normal rhythm of cardiomyocytes in real time. To treat the cardiomyocytes cultured on Au-nanoroded device by near-infrared (NIR) laser irradiation, cardiomyocytes return to normal for long term after irradiation of suitable NIR energy and maintenance. Compared with the conventional strategies, the photothermal strategy is more effective and convenient to regulate the cardiomyocytes. Furthermore, mRNA sequencing shows that the differential expression genes in cardiomyocytes are significantly increased after photothermal strategy, which are involved in the regulation of the heart rate, cardiac conduction, and ion transport. This work establishes a promising integrated biosensing and regulating platform for photothermal therapy of bradyarrhythmia in vitro and provides reliable evidence of photothermal regulation on cardiomyocytes for cardiological clinical studies.

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