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利用转录组学改善人心肌类器官设计。

Improving human cardiac organoid design using transcriptomics.

机构信息

Bioengineering Department, Clemson University, Clemson, SC, 29631, USA.

Molecular and Cellular Biology and Pathobiology Program, Medical University of South Carolina, Charleston, SC, 29425, USA.

出版信息

Sci Rep. 2024 Aug 30;14(1):20147. doi: 10.1038/s41598-024-61554-w.

Abstract

Cardiovascular disease (CVD) is the leading cause of death worldwide. To this end, human cardiac organoids (hCOs) have been developed for improved organotypic CVD modeling over conventional in vivo animal models. Utilizing human cells, hCOs hold great promise to bridge key gaps in CVD research pertaining to human-specific conditions. hCOs are multicellular 3D models which resemble heart structure and function. Varying hCOs fabrication techniques leads to functional and phenotypic differences. To investigate heterogeneity across hCO platforms, we performed a transcriptomic analysis utilizing bulk RNA-sequencing from four previously published unique hCO studies. We further compared selected hCOs to 2D and 3D hiPSC-derived cardiomyocytes (hiPSC-CMs), as well as fetal and adult human myocardium bulk RNA-sequencing samples. Upon investigation utilizing Principal Component Analysis, K-means clustering analysis of key genes, and further downstream analyses such as Gene Set Enrichment (GSEA), Gene Set Variation (GSVA), and GO term enrichment, we found that hCO fabrication method influences maturity and cellular heterogeneity across models. Thus, we propose that adjustment of fabrication method will result in an hCO with a defined maturity and transcriptomic profile to facilitate its specified applications, in turn maximizing its modeling potential.

摘要

心血管疾病 (CVD) 是全球范围内的主要死亡原因。为此,人们开发了人心肌类器官 (hCO),以改进传统体内动物模型的器官型 CVD 建模。利用人类细胞,hCO 有望弥合与人类特定条件相关的 CVD 研究中的关键差距。hCO 是类似于心脏结构和功能的多细胞 3D 模型。不同的 hCO 制造技术会导致功能和表型的差异。为了研究 hCO 平台之间的异质性,我们利用来自四个先前发表的独特 hCO 研究的批量 RNA-seq 进行了转录组分析。我们还将选定的 hCO 与 2D 和 3D 诱导多能干细胞衍生的心肌细胞 (hiPSC-CMs) 以及胎儿和成人人类心肌的批量 RNA-seq 样本进行了比较。利用主成分分析、关键基因的 K-means 聚类分析以及下游分析(如基因集富集分析 (GSEA)、基因集变异分析 (GSVA) 和 GO 术语富集)进行研究后,我们发现 hCO 制造方法会影响模型之间的成熟度和细胞异质性。因此,我们建议调整制造方法将产生具有明确定义的成熟度和转录组特征的 hCO,以促进其特定应用,从而最大限度地发挥其建模潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43a7/11362591/b0a13dff2204/41598_2024_61554_Fig1_HTML.jpg

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