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极端扰乱异染色质是加速造血衰老所必需的。

Extreme disruption of heterochromatin is required for accelerated hematopoietic aging.

机构信息

The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia; and.

Department of Medical Biology, The University of Melbourne, Parkville, VIC, Australia.

出版信息

Blood. 2020 Jun 4;135(23):2049-2058. doi: 10.1182/blood.2019002990.

DOI:10.1182/blood.2019002990
PMID:32305044
Abstract

Loss of heterochromatin has been proposed as a universal mechanism of aging across different species and cell types. However, a comprehensive analysis of hematopoietic changes caused by heterochromatin loss is lacking. Moreover, there is conflict in the literature around the role of the major heterochromatic histone methyltransferase Suv39h1 in the aging process. Here, we use individual and dual deletion of Suv39h1 and Suv39h2 enzymes to examine the causal role of heterochromatin loss in hematopoietic cell development. Loss of neither Suv39h1 nor Suv39h2 individually had any effect on hematopoietic stem cell function or the development of mature lymphoid or myeloid lineages. However, deletion of both enzymes resulted in characteristic changes associated with aging such as reduced hematopoietic stem cell function, thymic involution and decreased lymphoid output with a skewing toward myeloid development, and increased memory T cells at the expense of naive T cells. These cellular changes were accompanied by molecular changes consistent with aging, including alterations in nuclear shape and increased nucleolar size. Together, our results indicate that the hematopoietic system has a remarkable tolerance for major disruptions in chromatin structure and reveal a role for Suv39h2 in depositing sufficient H3K9me3 to protect the entire hematopoietic system from changes associated with premature aging.

摘要

异染色质的丢失被认为是不同物种和细胞类型衰老的普遍机制。然而,缺乏对异染色质丢失引起的造血变化的综合分析。此外,在主要异染色质组蛋白甲基转移酶 Suv39h1 在衰老过程中的作用方面,文献中存在冲突。在这里,我们使用 Suv39h1 和 Suv39h2 酶的个体和双重缺失来检查异染色质丢失在造血细胞发育中的因果作用。单独缺失 Suv39h1 或 Suv39h2 都不会对造血干细胞功能或成熟淋巴样或髓样谱系的发育产生任何影响。然而,两种酶的缺失导致与衰老相关的特征性变化,例如造血干细胞功能降低、胸腺萎缩以及淋巴样输出减少而偏向于髓样发育,以及记忆 T 细胞增加而幼稚 T 细胞减少。这些细胞变化伴随着与衰老一致的分子变化,包括核形状的改变和核仁大小的增加。总之,我们的结果表明,造血系统对染色质结构的主要破坏具有显著的耐受性,并揭示了 Suv39h2 在沉积足够的 H3K9me3 以保护整个造血系统免受与过早衰老相关的变化方面的作用。

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Extreme disruption of heterochromatin is required for accelerated hematopoietic aging.极端扰乱异染色质是加速造血衰老所必需的。
Blood. 2020 Jun 4;135(23):2049-2058. doi: 10.1182/blood.2019002990.
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