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愿原力与你同在:核凝聚物的功能超越转录控制:核凝聚物在生理和病理条件下的潜在非遗传功能。

May the force be with you: Nuclear condensates function beyond transcription control: Potential nongenetic functions of nuclear condensates in physiological and pathological conditions.

机构信息

Department of Cellular, Computational and Integrative Biology (CIBIO), University of Trento, Trento, Italy.

出版信息

Bioessays. 2023 Oct;45(10):e2300075. doi: 10.1002/bies.202300075. Epub 2023 Aug 2.

Abstract

Over the past decade, research has revealed biomolecular condensates' relevance in diverse cellular functions. Through a phase separation process, they concentrate macromolecules in subcompartments shaping the cellular organization and physiology. In the nucleus, biomolecular condensates assemble relevant biomolecules that orchestrate gene expression. We here hypothesize that chromatin condensates can also modulate the nongenetic functions of the genome, including the nuclear mechanical properties. The importance of chromatin condensates is supported by the genetic evidence indicating that mutations in their members are causative of a group of rare Mendelian diseases named chromatinopathies (CPs). Despite a broad spectrum of clinical features and the perturbations of the epigenetic machinery characterizing the CPs, recent findings highlighted negligible changes in gene expression. These data argue in favor of possible noncanonical functions of chromatin condensates in regulating the genome's spatial organization and, consequently, the nuclear mechanics. In this review, we discuss how condensates may impact nuclear mechanical properties, thus affecting the cellular response to mechanical cues and, eventually, cell fate and identity. Chromatin condensates organize macromolecules in the nucleus orchestrating the transcription regulation and mutations in their members are responsible for rare diseases named chromatinopathies. We argue that chromatin condensates, in concert with the nuclear lamina, may also govern the nuclear mechanical properties affecting the cellular response to external cues.

摘要

在过去的十年中,研究揭示了生物分子凝聚物在多种细胞功能中的相关性。通过相分离过程,它们将大分子浓缩在亚区室中,从而塑造了细胞的组织和生理学。在细胞核中,生物分子凝聚物聚集相关的生物分子,协调基因表达。我们在这里假设染色质凝聚物也可以调节基因组的非遗传功能,包括核的力学性质。染色质凝聚物的重要性得到了遗传证据的支持,表明其成员中的突变是一组名为染色质病(CPs)的罕见孟德尔疾病的原因。尽管 CP 具有广泛的临床特征和特征性的表观遗传机制扰动,但最近的发现强调了基因表达的变化可以忽略不计。这些数据支持染色质凝聚物在调节基因组空间组织方面可能具有非典型功能的观点,从而影响核的力学性质。在这篇综述中,我们讨论了凝聚物如何影响核的力学性质,从而影响细胞对机械线索的反应,最终影响细胞命运和身份。染色质凝聚物在细胞核中组织大分子,协调转录调控,其成员的突变导致了一种名为染色质病的罕见疾病。我们认为,染色质凝聚物与核纤层一起,也可能控制核的力学性质,从而影响细胞对外界线索的反应。

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