包括的な心臓モニタリングのために心臓組織とともに成長できるバイオエレクトロニック・メッシュを作成(UMass Amherst Engineers Create Bioelectronic Mesh Capable of Growing with Cardiac Tissues for Comprehensive Heart Monitoring)

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2024-03-21 マサチューセッツ大学アマースト校

アマースト校のエンジニアチームは、Nature Communications誌で発表した研究で、心臓の動きと電気信号を同時に測定できるバイオ電子メッシュシステムを開発しました。このデバイスは、心臓の発達過程中の機械的および電気的機能の変化を観察することができ、心臓疾患や一般的な薬物療法の副作用の研究に革新的な手段を提供します。

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グラフェン集積メッシュエレクトロニクスが心臓微小組織におけるマルチモーダルな興奮-収縮ダイナミクスを追跡するための多機能性を獲得 Graphene-integrated mesh electronics with converged multifunctionality for tracking multimodal excitation-contraction dynamics in cardiac microtissues

Hongyan Gao,Zhien Wang,Feiyu Yang,Xiaoyu Wang,Siqi Wang,Quan Zhang,Xiaomeng Liu,Yubing Sun,Jing Kong & Jun Yaoa
Nature Communications  Published:14 March 2024
DOI:https://doi.org/10.1038/s41467-024-46636-7

figure 1

Abstract

Cardiac microtissues provide a promising platform for disease modeling and developmental studies, which require the close monitoring of the multimodal excitation-contraction dynamics. However, no existing assessing tool can track these multimodal dynamics across the live tissue. We develop a tissue-like mesh bioelectronic system to track these multimodal dynamics. The mesh system has tissue-level softness and cell-level dimensions to enable stable embedment in the tissue. It is integrated with an array of graphene sensors, which uniquely converges both bioelectrical and biomechanical sensing functionalities in one device. The system achieves stable tracking of the excitation-contraction dynamics across the tissue and throughout the developmental process, offering comprehensive assessments for tissue maturation, drug effects, and disease modeling. It holds the promise to provide more accurate quantification of the functional, developmental, and pathophysiological states in cardiac tissues, creating an instrumental tool for improving tissue engineering and studies.

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