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Nature. 2021 Jul;595(7867):438-443. doi: 10.1038/s41586-021-03674-1. Epub 2021 Jun 23.
3
Integrated analysis of multimodal single-cell data.多模态单细胞数据的综合分析。
Cell. 2021 Jun 24;184(13):3573-3587.e29. doi: 10.1016/j.cell.2021.04.048. Epub 2021 May 31.
4
Streptozotocin-Induced Diabetic Models in Mice and Rats.链脲佐菌素诱导的小鼠和大鼠糖尿病模型。
Curr Protoc. 2021 Apr;1(4):e78. doi: 10.1002/cpz1.78.
5
ArchR is a scalable software package for integrative single-cell chromatin accessibility analysis.ArchR 是一个可扩展的软件包,用于整合单细胞染色质可及性分析。
Nat Genet. 2021 Mar;53(3):403-411. doi: 10.1038/s41588-021-00790-6. Epub 2021 Feb 25.
6
TWIST1 and chromatin regulatory proteins interact to guide neural crest cell differentiation.TWIST1 和染色质调节蛋白相互作用指导神经嵴细胞分化。
Elife. 2021 Feb 8;10:e62873. doi: 10.7554/eLife.62873.
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Elife. 2020 Aug 17;9:e55124. doi: 10.7554/eLife.55124.
8
Cardiac Neural Crest Cells: Their Rhombomeric Specification, Migration, and Association with Heart and Great Vessel Anomalies.心脏神经嵴细胞:它们的神经节段特异性、迁移以及与心脏和大血管异常的关联。
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9
Maternal Obesity and Diabetes Mellitus as Risk Factors for Congenital Heart Disease in the Offspring.母体肥胖和糖尿病与后代先天性心脏病的相关性。
J Am Heart Assoc. 2020 Apr 21;9(8):e011541. doi: 10.1161/JAHA.119.011541. Epub 2020 Apr 20.
10
Heterodimerization of TFAP2 pioneer factors drives epigenomic remodeling during neural crest specification.TFAP2 先驱因子的异二聚化驱动神经嵴特化过程中的表观基因组重塑。
Genome Res. 2020 Jan;30(1):35-48. doi: 10.1101/gr.249680.119. Epub 2019 Dec 17.

单细胞多模态分析揭示了母体糖尿病致出生缺陷的表观基因组和转录组基础。

Single Cell Multimodal Analyses Reveal Epigenomic and Transcriptomic Basis for Birth Defects in Maternal Diabetes.

机构信息

Gladstone Institutes; San Francisco, CA, USA.

Roddenberry Center for Stem Cell Biology and Medicine at Gladstone; San Francisco, CA, USA.

出版信息

Nat Cardiovasc Res. 2023 Dec;2(12):1190-1203. doi: 10.1038/s44161-023-00367-y. Epub 2023 Nov 30.

DOI:10.1038/s44161-023-00367-y
PMID:39183978
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11343316/
Abstract

Maternal diabetes mellitus is among the most frequent environmental contributors to congenital birth defects, including heart defects and craniofacial anomalies, yet the cell types affected and mechanisms of disruption are largely unknown. Using multi-modal single cell analyses, here we show that maternal diabetes affects the epigenomic landscape of specific subsets of cardiac and craniofacial progenitors during embryogenesis. A previously unrecognized cardiac progenitor subpopulation expressing the homeodomain-containing protein ALX3 showed prominent chromatin accessibility changes and acquired a more posterior identity. Similarly, a subpopulation of neural crest-derived cells in the second pharyngeal arch, which contributes to craniofacial structures, displayed abnormalities in the epigenetic landscape and axial patterning defects. Chromatin accessibility changes in both populations were associated with increased retinoic acid signaling, known to establish anterior-posterior identity. This work highlights how an environmental insult can have highly selective epigenomic consequences on discrete cell types leading to developmental patterning defects.

摘要

母体糖尿病是导致先天性出生缺陷(包括心脏缺陷和颅面畸形)的最常见环境因素之一,但受影响的细胞类型和破坏机制在很大程度上尚不清楚。在这里,我们使用多模态单细胞分析,表明母体糖尿病会在胚胎发生过程中影响特定心脏和颅面祖细胞亚群的表观基因组景观。一个以前未被识别的表达含有同源域的蛋白质 ALX3 的心脏祖细胞亚群表现出明显的染色质可及性变化,并获得了更靠后的身份。同样,第二咽弓中神经嵴衍生细胞的一个亚群,其对颅面结构有贡献,在表观基因组景观和轴向模式缺陷方面也表现出异常。这两个群体的染色质可及性变化都与增加的视黄酸信号相关,视黄酸信号已知可建立前后身份。这项工作强调了环境损伤如何对离散的细胞类型产生高度选择性的表观基因组后果,从而导致发育模式缺陷。