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解码的钙网织蛋白缺陷胚胎干细胞转录组解决潜在的心脏表型。

Decoded calreticulin-deficient embryonic stem cell transcriptome resolves latent cardiophenotype.

机构信息

Marriott Heart Disease Research Program, Division of Cardiovascular Diseases, Departments of Medicine, Molecular Pharmacology and Experimental Therapeutics, and Medical Genetics, Mayo Clinic, Rochester, Minnesota 55905, USA.

出版信息

Stem Cells. 2010 Jul;28(7):1281-91. doi: 10.1002/stem.447.

Abstract

Genomic perturbations that challenge normal signaling at the pluripotent stage may trigger unforeseen ontogenic aberrancies. Anticipatory systems biology identification of transcriptome landscapes that underlie latent phenotypes would offer molecular diagnosis before the onset of symptoms. The purpose of this study was to assess the impact of calreticulin-deficient embryonic stem cell transcriptomes on molecular functions and physiological systems. Bioinformatic surveillance of calreticulin-null stem cells, a monogenic insult model, diagnosed a disruption in transcriptome dynamics, which re-prioritized essential cellular functions. Calreticulin-calibrated signaling axes were uncovered, and network-wide cartography of undifferentiated stem cell transcripts suggested cardiac manifestations. Calreticulin-deficient stem cell-derived cardiac cells verified disorganized sarcomerogenesis, mitochondrial paucity, and cytoarchitectural aberrations to validate calreticulin-dependent network forecasts. Furthermore, magnetic resonance imaging and histopathology detected a ventricular septal defect, revealing organogenic manifestation of calreticulin deletion. Thus, bioinformatic deciphering of a primordial calreticulin-deficient transcriptome decoded at the pluripotent stem cell stage a reconfigured multifunctional molecular registry to anticipate predifferentiation susceptibility toward abnormal cardiophenotype.

摘要

基因组的扰动会挑战多能状态下的正常信号,从而可能引发不可预见的个体发育异常。转录组景观的预测系统生物学识别可以在症状出现之前提供分子诊断。本研究的目的是评估钙网蛋白缺陷型胚胎干细胞转录组对分子功能和生理系统的影响。对钙网蛋白缺失的干细胞进行生物信息学监测,作为一种单基因损伤模型,诊断出转录组动力学的破坏,这重新确定了重要的细胞功能。揭示了钙网蛋白校准的信号轴,以及未分化干细胞转录本的全网络绘图提示了心脏表现。钙网蛋白缺陷型干细胞衍生的心肌细胞验证了肌节发生的紊乱、线粒体匮乏和细胞结构异常,从而验证了钙网蛋白依赖的网络预测。此外,磁共振成像和组织病理学检测到室间隔缺损,揭示了钙网蛋白缺失的器官发生表现。因此,原始钙网蛋白缺陷型转录组的生物信息学解码在多能干细胞阶段解码了一个重新配置的多功能分子图谱,以预测向异常心脏表型的预分化易感性。

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