FORCETRACKER: A versatile tool for standardized assessment of tissue contractile properties in 3D Heart-on-Chip platforms.

IF 2.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
PLoS ONE Pub Date : 2025-02-13 eCollection Date: 2025-01-01 DOI:10.1371/journal.pone.0314985
José M Rivera-Arbeláez, Milica Dostanić, Laura M Windt, Jeroen M Stein, Carla Cofiño-Fabres, Tom Boonen, Maury Wiendels, Albert van den Berg, Loes I Segerink, Christine L Mummery, Pasqualina M Sarro, Berend J van Meer, Marcelo C Ribeiro, Massimo Mastrangeli, Robert Passier
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引用次数: 0

Abstract

Engineered heart tissues (EHTs) have shown great potential in recapitulating tissue organization, functions, and cell-cell interactions of the human heart in vitro. Currently, multiple EHT platforms are used by both industry and academia for different applications, such as drug discovery, disease modelling, and fundamental research. The tissues' contractile force, one of the main hallmarks of tissue function and maturation level of cardiomyocytes, can be read out from EHT platforms by optically tracking the movement of elastic pillars induced by the contractile tissues. However, existing optical tracking algorithms which focus on calculating the contractile force are customized and platform-specific, often not available to the broad research community, and thus hamper head-to-head comparison of the model output. Therefore, there is the need for robust, standardized and platform-independent software for tissues' force assessment. To meet this need, we developed ForceTracker: a standalone and computationally efficient software for analyzing contractile properties of tissues in different EHT platforms. The software uses a shape-detection algorithm to single out and track the movement of pillars' tips for the most common shapes of EHT platforms. In this way, we can obtain information about tissues' contractile performance. ForceTracker is coded in Python and uses a multi-threading approach for time-efficient analysis of large data sets in multiple formats. The software efficiency to analyze circular and rectangular pillar shapes is successfully tested by analyzing different format videos from two EHT platforms, developed by different research groups. We demonstrate robust and reproducible performance of the software in the analysis of tissues over time and in various conditions. ForceTracker's detection and tracking shows low sensitivity to common incidental defects, such as alteration of tissue shape or air bubbles. Detection accuracy is determined via comparison with manual measurements using the software ImageJ. We developed ForceTracker as a tool for standardized analysis of contractile performance in EHT platforms to facilitate research on disease modeling and drug discovery in academia and industry.

FORCETRACKER:一个多功能的工具,用于在3D心脏芯片平台上标准化评估组织收缩特性。
工程心脏组织(EHTs)在体外重现人类心脏的组织结构、功能和细胞间相互作用方面显示出巨大的潜力。目前,多个EHT平台被工业界和学术界用于不同的应用,如药物发现、疾病建模和基础研究。组织的收缩力是组织功能和心肌细胞成熟水平的主要标志之一,通过光学跟踪收缩组织诱导的弹性柱的运动,可以从EHT平台上读出组织的收缩力。然而,现有的专注于计算收缩力的光学跟踪算法是定制的和平台特定的,通常不适用于广泛的研究界,因此阻碍了模型输出的正面比较。因此,需要一个强大的、标准化的、独立于平台的组织力评估软件。为了满足这一需求,我们开发了ForceTracker:一个独立的、计算效率高的软件,用于分析不同EHT平台中组织的收缩特性。该软件使用形状检测算法来挑选和跟踪EHT平台最常见形状的支柱尖端的运动。通过这种方式,我们可以获得有关组织收缩性能的信息。ForceTracker是用Python编写的,并使用多线程方法对多种格式的大型数据集进行高效的分析。通过分析由不同研究组开发的两个EHT平台的不同格式视频,成功地测试了分析圆形和矩形柱形状的软件效率。我们展示了随着时间和各种条件下组织分析软件的稳健和可重复性能。ForceTracker的检测和跟踪对常见的偶然缺陷(如组织形状或气泡的改变)的灵敏度较低。通过与使用ImageJ软件进行人工测量的比较来确定检测精度。我们开发了ForceTracker作为EHT平台中收缩性能的标准化分析工具,以促进学术界和工业界对疾病建模和药物发现的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
PLoS ONE
PLoS ONE 生物-生物学
CiteScore
6.20
自引率
5.40%
发文量
14242
审稿时长
3.7 months
期刊介绍: PLOS ONE is an international, peer-reviewed, open-access, online publication. PLOS ONE welcomes reports on primary research from any scientific discipline. It provides: * Open-access—freely accessible online, authors retain copyright * Fast publication times * Peer review by expert, practicing researchers * Post-publication tools to indicate quality and impact * Community-based dialogue on articles * Worldwide media coverage
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