罗伯茨综合征:乙酰化内聚蛋白缺失导致核仁功能障碍。

Rare diseases (Austin, Tex.) Pub Date : 2014-01-21 eCollection Date: 2014-01-01 DOI:10.4161/rdis.27743
Baoshan Xu, Shuai Lu, Jennifer L Gerton
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引用次数: 22

摘要

所有生物都必须经历遗传信息复制的循环,然后在两个新细胞中分裂这些拷贝。这种循环过程,在细菌细胞和人类细胞中都一样,需要一种称为黏结蛋白的蛋白质复合物。内聚蛋白是染色体的结构维持复合体。细菌只有这种复合体的一种形式,酵母有几种SMC复合体,而人类至少有十几种内聚蛋白复合体。因此,SMC复合物的古老结构和功能在进化过程中得到了保存和特化。这些复合物在基因组的复制、修复、组织和分离中发挥作用。编码内聚蛋白及其调控因子的基因突变与发育障碍如罗伯茨综合征、科尼利亚·德·兰格综合征和癌症有关。本文就内聚蛋白的乙酰化对其功能的影响作一综述。在Roberts综合征中,缺乏内聚蛋白乙酰化导致核仁缺陷和翻译抑制。了解SMC复合体的基本功能对于揭示与SMC功能缺陷相关的人类疾病的分子病因学至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Roberts syndrome: A deficit in acetylated cohesin leads to nucleolar dysfunction.

Roberts syndrome: A deficit in acetylated cohesin leads to nucleolar dysfunction.

Roberts syndrome: A deficit in acetylated cohesin leads to nucleolar dysfunction.

Roberts syndrome: A deficit in acetylated cohesin leads to nucleolar dysfunction.

All living organisms must go through cycles of replicating their genetic information and then dividing the copies between two new cells. This cyclical process, in cells from bacteria and human alike, requires a protein complex known as cohesin. Cohesin is a structural maintenance of chromosomes (SMC) complex. While bacteria have one form of this complex, yeast have several SMC complexes, and humans have at least a dozen cohesin complexes alone. Therefore the ancient structure and function of SMC complexes has been both conserved and specialized over the course of evolution. These complexes play roles in replication, repair, organization, and segregation of the genome. Mutations in the genes that encode cohesin and its regulatory factors are associated with developmental disorders such as Roberts syndrome, Cornelia de Lange syndrome, and cancer. In this review, we focus on how acetylation of cohesin contributes to its function. In Roberts syndrome, the lack of cohesin acetylation contributes to nucleolar defects and translational inhibition. An understanding of basic SMC complex function will be essential to unraveling the molecular etiology of human diseases associated with defective SMC function.

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