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用于调节心肌细胞功能的集成光遗传学和生物电子平台。

An Integrated Optogenetic and Bioelectronic Platform for Regulating Cardiomyocyte Function.

作者信息

Bolonduro Olurotimi A, Chen Zijing, Lai Yan-Ru, Cote Megan, Rao Akshita A, Liu Haitao, Tzanakakis Emmanuel S, Timko Brian P

机构信息

Department of Biomedical Engineering, Tufts University.

Department of Chemical and Biological Engineering, Tufts University.

出版信息

bioRxiv. 2023 Dec 15:2023.12.15.571704. doi: 10.1101/2023.12.15.571704.

Abstract

We report an integrated optogenetic and bioelectronic platform for stable and long-term modulation and monitoring of cardiomyocyte function in vitro. Optogenetic inputs were achieved through expression of a photoactivatable adenylyl cyclase (bPAC), that when activated by blue light caused a dose-dependent and time-limited increase in autonomous cardiomyocyte beat rate. Bioelectronic readouts were achieved through an integrated planar multi-electrode array (MEA) that provided real-time readouts of electrophysiological activity from 32 spatially-distinct locations. Irradiation at 27 μW/mm resulted in a ca. 14% increase in beat rate within 20-25 minutes, which remained stable for at least 2 hours. The beating rate could be cycled through repeated "on" and "off' states, and its magnitude was a monotonic function of irradiation intensity. Our integrated platform opens new avenues in bioelectronic medicine, including closed-loop feedback systems, with potential applications for cardiac regulation including arrhythmia diagnosis and intervention.

摘要

我们报告了一种集成的光遗传学和生物电子平台,用于在体外稳定且长期地调节和监测心肌细胞功能。通过表达光激活腺苷酸环化酶(bPAC)实现光遗传学输入,蓝光激活该酶时会导致自主心肌细胞搏动率呈剂量依赖性且限时增加。通过集成的平面多电极阵列(MEA)实现生物电子读数,该阵列可从32个空间上不同的位置提供电生理活动的实时读数。以27 μW/mm的强度照射会在20 - 25分钟内使搏动率增加约14%,且至少在2小时内保持稳定。搏动率可通过重复的“开”和“关”状态循环,其幅度是照射强度的单调函数。我们的集成平台为生物电子医学开辟了新途径,包括闭环反馈系统,在心脏调节方面具有潜在应用,如心律失常诊断和干预。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30ab/10760153/ed9dd75f029f/nihpp-2023.12.15.571704v1-f0001.jpg

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