4.6 Article

Real-time optical manipulation of cardiac conduction in intact hearts

期刊

JOURNAL OF PHYSIOLOGY-LONDON
卷 596, 期 17, 页码 3841-3858

出版社

WILEY
DOI: 10.1113/JP276283

关键词

Optogenetics; Optical mapping; Digital Micromirror Device; Cardiac electrophysiology

资金

  1. European Union Horizon 2020 research and innovation program under Laserlab-Europe [654148]
  2. National Institutes of Health [R01 EB001963]
  3. Italian Ministry for Education, University and Research in the framework of the Flagship Project NANOMAX
  4. Italian Ministry of Health [WFR GR-2011-02350583]
  5. Telethon-Italy [GGP13162]
  6. Ente Cassa di Risparmio di Firenze
  7. FAS-Salute ToRSADE project
  8. Human Frontiers Science Program Organization

向作者/读者索取更多资源

Optogenetics has provided new insights in cardiovascular research, leading to new methods for cardiac pacing, resynchronization therapy and cardioversion. Although these interventions have clearly demonstrated the feasibility of cardiac manipulation, current optical stimulation strategies do not take into account cardiac wave dynamics in real time. Here, we developed an all-optical platform complemented by integrated, newly developed software to monitor and control electrical activity in intact mouse hearts. The system combined a wide-field mesoscope with a digital projector for optogenetic activation. Cardiac functionality could be manipulated either in free-run mode with submillisecond temporal resolution or in a closed-loop fashion: a tailored hardware and software platform allowed real-time intervention capable of reacting within 2ms. The methodology was applied to restore normal electrical activity after atrioventricular block, by triggering the ventricle in response to optically mapped atrial activity with appropriate timing. Real-time intraventricular manipulation of the propagating electrical wavefront was also demonstrated, opening the prospect for real-time resynchronization therapy and cardiac defibrillation. Furthermore, the closed-loop approach was applied to simulate a re-entrant circuit across the ventricle demonstrating the capability of our system to manipulate heart conduction with high versatility even in arrhythmogenic conditions. The development of this innovative optical methodology provides the first proof-of-concept that a real-time optically based stimulation can control cardiac rhythm in normal and abnormal conditions, promising a new approach for the investigation of the (patho)physiology of the heart.

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