硒蛋白介导的氧化还原调控塑造造血干细胞和成熟谱系的细胞命运。

IF 21 1区 医学 Q1 HEMATOLOGY
Blood Pub Date : 2025-03-13 DOI:10.1182/blood.2024025402
Yumi Aoyama, Hiromi Yamazaki, Koutarou Nishimura, Masaki Nomura, Tsukasa Shigehiro, Takafumi Suzuki, Weijia Zang, Yota Tatara, Hiromi Ito, Yasutaka Hayashi, Yui Koike, Miki Fukumoto, Atsushi Tanaka, Yifan Zhang, Wataru Saika, Chihiro Hasegawa, Shuya Kasai, Yingyi Kong, Yohei Minakuchi, Ken Itoh, Masayuki Yamamoto, Shinya Toyokuni, Atsushi Toyoda, Tomokatsu Ikawa, Akifumi Takaori-Kondo, Daichi Inoue
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引用次数: 0

摘要

细胞氧化还原平衡的维持对细胞生存和体内平衡至关重要,并随着年龄的增长而被破坏。硒蛋白,包括必需的抗氧化酶,提出了关于其参与造血老化和潜在可逆性的有趣问题。我们观察到衰老人类造血干细胞(hsc)中关键抗氧化硒蛋白的mRNA下调,以及先前发现的老年造血中脂质过氧化增加,因此我们采用tRNASec基因(Trsp)敲除(KO)小鼠模型来模拟硒蛋白合成的中断。这揭示了硒蛋白在保存HSC干细胞和b谱系成熟中的保护作用,尽管对髓细胞的影响可以忽略不计。值得注意的是,Trsp KO表现出B淋巴细胞减少和hsc自我更新能力降低,再现了衰老表型的某些方面,以及hsc和前B细胞中衰老相关基因的上调。虽然Trsp KO激活了抗氧化反应转录因子NRF2,但我们描绘了一种由脂质过氧化驱动的谱系依赖表型,这种表型随着年龄的增长而加剧,但通过维生素e等铁死亡抑制剂可以改善。有趣的是,髓系基因在Trsp KO小鼠的前b细胞中异位表达,并且KO pro-B/前b细胞在移植模型中显示出向功能性CD11b+部分分化的潜力。这表明硒蛋白合成的中断诱导了b -髓细胞转换的潜力。考虑到KO模型与衰老野生型小鼠的相似之处,包括铁衰竭易感、HSC自我更新和b谱系成熟受损以及特征性谱系切换,我们的研究结果强调了硒蛋白介导的氧化还原调节在维持造血平衡中的关键作用,并提示硒蛋白对衰老相关改变的预防潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Selenoprotein-mediated redox regulation shapes the cell fate of HSCs and mature lineages.

Abstract: The maintenance of cellular redox balance is crucial for cell survival and homeostasis and is disrupted with aging. Selenoproteins, comprising essential antioxidant enzymes, raise intriguing questions about their involvement in hematopoietic aging and potential reversibility. Motivated by our observation of messenger RNA downregulation of key antioxidant selenoproteins in aged human hematopoietic stem cells (HSCs) and previous findings of increased lipid peroxidation in aged hematopoiesis, we used selenocysteine transfer RNA (tRNASec) gene (Trsp) knockout (KO) mouse model to simulate disrupted selenoprotein synthesis. This revealed insights into the protective roles of selenoproteins in preserving HSC stemness and B-lineage maturation, despite negligible effects on myeloid cells. Notably, Trsp KO exhibited B lymphocytopenia and reduced HSCs' self-renewal capacity, recapitulating certain aspects of aged phenotypes, along with the upregulation of aging-related genes in both HSCs and pre-B cells. Although Trsp KO activated an antioxidant response transcription factor NRF2, we delineated a lineage-dependent phenotype driven by lipid peroxidation, which was exacerbated with aging yet ameliorated by ferroptosis inhibitors such as vitamin E. Interestingly, the myeloid genes were ectopically expressed in pre-B cells of Trsp KO mice, and KO pro-B/pre-B cells displayed differentiation potential toward functional CD11b+ fraction in the transplant model, suggesting that disrupted selenoprotein synthesis induces the potential of B-to-myeloid switch. Given the similarities between the KO model and aged wild-type mice, including ferroptosis vulnerability, impaired HSC self-renewal and B-lineage maturation, and characteristic lineage switch, our findings underscore the critical role of selenoprotein-mediated redox regulation in maintaining balanced hematopoiesis and suggest the preventive potential of selenoproteins against aging-related alterations.

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来源期刊
Blood
Blood 医学-血液学
CiteScore
23.60
自引率
3.90%
发文量
955
审稿时长
1 months
期刊介绍: Blood, the official journal of the American Society of Hematology, published online and in print, provides an international forum for the publication of original articles describing basic laboratory, translational, and clinical investigations in hematology. Primary research articles will be published under the following scientific categories: Clinical Trials and Observations; Gene Therapy; Hematopoiesis and Stem Cells; Immunobiology and Immunotherapy scope; Myeloid Neoplasia; Lymphoid Neoplasia; Phagocytes, Granulocytes and Myelopoiesis; Platelets and Thrombopoiesis; Red Cells, Iron and Erythropoiesis; Thrombosis and Hemostasis; Transfusion Medicine; Transplantation; and Vascular Biology. Papers can be listed under more than one category as appropriate.
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