小鼠心脏类器官内部结构复杂性的定量成像分析小鼠胚胎心脏的比较

IF 1.3 4区 生物学 Q4 CELL BIOLOGY
Genes to Cells Pub Date : 2025-10-19 DOI:10.1111/gtc.70055
Rin Kaneko, Fumitoshi Ishino, Jiyoung Lee
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引用次数: 0

摘要

我们已经建立了小鼠心脏类器官(mHOs),其特点是存在心房和心室样结构,模仿整个胚胎心脏。然而,它们的成熟程度并不一致,对它们的小梁状态知之甚少。鉴于小梁在心脏形态发生中的重要作用,我们开发了一种将成像分析与机器学习模型相结合的新方法,以及时量化mHOs形成的内部复杂性。我们利用这种方法筛选改良的培养条件,并确定以丙戊酸作为Notch激活剂、骨形态发生蛋白10和神经调节蛋白1作为Notch下游因子(一种骨小梁调节信号)促进mHO成熟的最佳处理方法。所建立的以小鼠胎心为实验对象的方法适合于比较mHOs和小鼠胎心的内部复杂性。改良的培养条件改善了mHOs的成熟均匀性和内部结构。因此,该方法可应用于有小梁问题的心脏疾病和其他方法开发的HOs。此外,在这些修饰条件下产生的mHOs可能是研究心脏发育分子机制的有效工具,包括与这些因素相关的小梁信号通路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quantitative Imaging Analysis of Internal Structural Complexity in Mouse Heart Organoids; Comparison to Mouse Embryonic Hearts

Quantitative Imaging Analysis of Internal Structural Complexity in Mouse Heart Organoids; Comparison to Mouse Embryonic Hearts

We have established mouse heart organoids (mHOs) that are characterized by the presence of atrium- and ventricle-like structures that mimic entire embryonic hearts. However, maturation was not uniform, and little is known about their trabeculation status. Given the essential role of the trabeculae in cardiac morphogenesis, a new method that combines imaging analysis with a machine learning model was developed for quantifying the internal complexity in developing mHOs in a timely manner. We applied this method to screen for modified culture conditions and identified optimal treatment with valproic acid as a Notch activator and both bone morphogenetic protein 10 and Neuregulin 1 as downstream factors of Notch (a trabeculation-regulating signal) to promote mHO maturation. The established method using mouse fetal hearts as tests was suitable for comparing the internal complexity of both mHOs and mouse fetal hearts. The modified culture conditions improved the maturation uniformity as well as the internal structure of mHOs. Thus, this method can be applied to cardiac disorders with trabeculation problems and HOs developed by other methods. In addition, mHOs generated under these modified conditions may be an effective tool for studying the molecular mechanisms of heart development, including the signaling pathway of trabeculation related to these factors.

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来源期刊
Genes to Cells
Genes to Cells 生物-细胞生物学
CiteScore
3.40
自引率
0.00%
发文量
71
审稿时长
3 months
期刊介绍: Genes to Cells provides an international forum for the publication of papers describing important aspects of molecular and cellular biology. The journal aims to present papers that provide conceptual advance in the relevant field. Particular emphasis will be placed on work aimed at understanding the basic mechanisms underlying biological events.
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