Chromatin balances cell redox and energy homeostasis.

IF 4.2 2区 生物学 Q1 GENETICS & HEREDITY Epigenetics & Chromatin Pub Date : 2023-11-28 DOI:10.1186/s13072-023-00520-8
Tamaki Suganuma, Jerry L Workman
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引用次数: 0

Abstract

Chromatin plays a central role in the conversion of energy in cells: alteration of chromatin structure to make DNA accessible consumes energy, and compaction of chromatin preserves energy. Alteration of chromatin structure uses energy sources derived from carbon metabolism such as ATP and acetyl-CoA; conversely, chromatin compaction and epigenetic modification feedback to metabolism and energy homeostasis by controlling gene expression and storing metabolites. Coordination of these dual chromatin events must be flexibly modulated in response to environmental changes such as during development and exposure to stress. Aging also alters chromatin structure and the coordination of metabolism, chromatin dynamics, and other cell processes. Noncoding RNAs and other RNA species that associate directly with chromatin or with chromatin modifiers contribute to spatiotemporal control of transcription and energy conversion. The time required for generating the large amounts of RNAs and chromatin modifiers observed in super-enhancers may be critical for regulation of transcription and may be impacted by aging. Here, taking into account these factors, we review alterations of chromatin that are fundamental to cell responses to metabolic changes due to stress and aging to maintain redox and energy homeostasis. We discuss the relationship between spatiotemporal control of energy and chromatin function, as this emerging concept must be considered to understand how cell homeostasis is maintained.

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染色质平衡细胞氧化还原和能量稳态。
染色质在细胞能量转换中起着核心作用:染色质结构的改变使DNA可接近消耗能量,而染色质的压缩保存能量。染色质结构的改变使用来自碳代谢的能量来源,如ATP和乙酰辅酶a;相反,染色质压缩和表观遗传修饰通过控制基因表达和储存代谢物来反馈代谢和能量稳态。这些双染色质事件的协调必须灵活调节,以响应环境变化,如在发育和暴露于压力。衰老也会改变染色质结构和新陈代谢、染色质动力学和其他细胞过程的协调。非编码RNA和其他直接与染色质或染色质修饰因子相关的RNA物种有助于转录和能量转换的时空控制。在超级增强子中观察到产生大量rna和染色质修饰剂所需的时间可能对转录调控至关重要,并可能受到年龄的影响。在这里,考虑到这些因素,我们回顾了染色质的改变,这是细胞对应激和衰老引起的代谢变化的反应的基础,以维持氧化还原和能量稳态。我们讨论了能量的时空控制和染色质功能之间的关系,因为这个新兴的概念必须考虑到如何维持细胞稳态。
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来源期刊
Epigenetics & Chromatin
Epigenetics & Chromatin GENETICS & HEREDITY-
CiteScore
7.00
自引率
0.00%
发文量
35
审稿时长
1 months
期刊介绍: Epigenetics & Chromatin is a peer-reviewed, open access, online journal that publishes research, and reviews, providing novel insights into epigenetic inheritance and chromatin-based interactions. The journal aims to understand how gene and chromosomal elements are regulated and their activities maintained during processes such as cell division, differentiation and environmental alteration.
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