先天性膈疝
组蛋白
胚胎干细胞
细胞生物学
组蛋白乙酰转移酶
肺动脉高压
癌症研究
生物
生物信息学
医学
遗传学
内科学
基因
胎儿
怀孕
作者
Giangela Stokes,Zhuowei Li,Nicole Talaba,William Genthe,Maria B. Brix,Betty Pham,Mark D. Wienhold,Gracia Sandok,Rebecca Hernan,Julia Wynn,Haiyang Tang,Diana M. Tabima,Allison C. Rodgers,Timothy A. Hacker,Naomi C. Chesler,Pan Zhang,Rabi Murad,Jason X.‐J. Yuan,Yufeng Shen,Wendy K. Chung
标识
DOI:10.1126/scitranslmed.adc8930
摘要
A major barrier to the impact of genomic diagnosis in patients with congenital malformations is the lack of understanding regarding how sequence variants contribute to disease pathogenesis and whether this information could be used to generate patient-specific therapies. Congenital diaphragmatic hernia (CDH) is among the most common and severe of all structural malformations; however, its underlying mechanisms are unclear. We identified loss-of-function sequence variants in the epigenomic regulator geneSIN3Ain two patients with complex CDH. Tissue-specific deletion ofSin3ain mice resulted in defects in diaphragm development, lung hypoplasia, and pulmonary hypertension, the cardinal features of CDH and major causes of CDH-associated mortality. Loss of SIN3A in the lung mesenchyme resulted in reduced cellular differentiation, impaired cell proliferation, and increased DNA damage. Treatment of embryonicSin3amutant mice with anacardic acid, an inhibitor of histone acetyltransferase, reduced DNA damage, increased cell proliferation and differentiation, improved lung and pulmonary vascular development, and reduced pulmonary hypertension. These findings demonstrate that restoring the balance of histone acetylation can improve lung development in theSin3amouse model of CDH.
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