计算机科学
除颤
心力衰竭
无线
医学
心功能曲线
光遗传学
神经科学
心脏病学
心理学
电信
作者
Jokubas Ausra,Micah Madrid,Rose T. Yin,Jessica Hanna,Suzanne Arnott,Jaclyn A. Brennan,Roberto Peralta,David Clausen,Jakob A. Bakall,Igor R. Efimov,Philipp Gutruf
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-10-26
卷期号:8 (43)
被引量:35
标识
DOI:10.1126/sciadv.abq7469
摘要
Monitoring and control of cardiac function are critical for investigation of cardiovascular pathophysiology and developing life-saving therapies. However, chronic stimulation of the heart in freely moving small animal subjects, which offer a variety of genotypes and phenotypes, is currently difficult. Specifically, real-time control of cardiac function with high spatial and temporal resolution is currently not possible. Here, we introduce a wireless battery-free device with on-board computation for real-time cardiac control with multisite stimulation enabling optogenetic modulation of the entire rodent heart. Seamless integration of the biointerface with the heart is enabled by machine learning-guided design of ultrathin arrays. Long-term pacing, recording, and on-board computation are demonstrated in freely moving animals. This device class enables new heart failure models and offers a platform to test real-time therapeutic paradigms over chronic time scales by providing means to control cardiac function continuously over the lifetime of the subject.
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