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Beyond the walls of the nucleus: the role of histones in cellular signaling and innate immunity

机译:超越细胞核壁:组蛋白在细胞信号传导和先天免疫中的作用

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Although they are one of the oldest family of proteins known (first described in 1884 by Kossel), histones continue to surprise researchers with their ever expanding roles in biology. In the past 25 years, the view of core histone octamers as a simple spool around which DNA in the nucleus is wound and linker histones as mere fasteners clipping it all together has transformed into the realization that histones play a vital role in transcriptional regulation. Through post-translational modifications, histones control the accessibility of transcription factors and a host of other proteins to multiple, conceivably thousands of, genes at once. While researchers have spent decades deciphering the role of histones in the overall structure of chromatin, it might surprise some to find that an entirely separate faction of scientists have focused on the role of histones beyond the confines of the nuclear envelope. In the past decade, there has been an accumulation of observations that suggest that histones can be found at the mitochondrion during the onset of apoptotic signaling and even at the cell surface, acting as a receptor for bacterial and viral proteins. More provocatively, immunologists are becoming convinced that they can also be found in the lumen of several tissues, acting as antimicrobial agents—critical components of an ancient innate immune system. Perhaps nowhere is this observation as dramatic as in the ability of neutrophils to entrap bacterial pathogens by casting out "nets" of DNA and histones that not only act as a physical barrier, but also display bactericidal activity. As our views regarding the role of histones inside and outside the cell evolve, some have begun to develop therapies that either utilize or target histones in the fight against cancer, microbial infection, and autoimmune disease. It is our goal here to begin the process of merging the dichotomous lives of histones both within and without the nuclear membrane.
机译:尽管它们是已知的最古老的蛋白质家族之一(由Kossel于1884年首次描述),但组蛋白在生物学中的作用不断扩大,继续使研究人员感到惊讶。在过去的25年中,将核心组蛋白八聚体视为一个简单的线轴,围绕该结构缠绕着细胞核中的DNA,而将连接器组蛋白视为仅将其夹在一起的紧固件,这已经转变为人们认识到,组蛋白在转录调控中起着至关重要的作用。通过翻译后修饰,组蛋白可控制转录因子和许多其他蛋白质一次访问多个(可能是数千个)基因的可及性。尽管研究人员花了数十年的时间来研究组蛋白在染色质整体结构中的作用,但发现一个完全独立的科学家派系已经关注了组蛋白在核膜范围之外的作用,这可能会让某些人感到惊讶。在过去的十年中,已经有大量的观察结果表明,组蛋白可以在细胞凋亡信号传导过程中甚至在细胞表面的线粒体中发现,可以作为细菌和病毒蛋白的受体。更加具有挑衅性的是,免疫学家开始相信,它们也可以在多种组织的内腔中发现,它们起着抗菌剂的作用,而抗菌剂是古代先天免疫系统的关键组成部分。在嗜中性粒细胞通过释放不仅充当物理屏障而且还显示杀菌活性的DNA和组蛋白的“网”而捕获细菌病原体的能力中,这种观察可能没有什么比之更为引人注目了。随着我们对组蛋白在细胞内外的作用的看法不断发展,一些人已开始开发在抗癌,微生物感染和自身免疫性疾病中使用或靶向组蛋白的疗法。我们的目标是在此过程中开始合并组蛋白在核膜之内和之外的二分生命。

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