puma诱导的细胞凋亡驱动端粒酶缺陷小鼠骨髓衰竭和基因组不稳定。

IF 15.4 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Christian Molnar, Jovana Rajak, Julia Miriam Weiss, Irene Gonzalez-Menendez, Geoffroy Andrieux, Franziska Schreiber, Eva-Maria Kornemann, Lena Wendeburg, Gudrun Göhring, Brigitte Strahm, Fabian Beier, Doris Steinemann, Melanie Börries, Martina Rudelius, Leticia Quintanilla-Martinez, Charlotte M Niemeyer, Marena R Niewisch, Verena Labi, Sheila Bohler, Miriam Erlacher
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引用次数: 0

摘要

骨髓衰竭是人类端粒生物学紊乱的严重并发症,使个体易患继发性白血病。对这一过程的深入了解可以提供重要的临床益处。利用端粒酶(mTerc) RNA成分缺失的临床前小鼠模型,我们证明骨髓衰竭是由过度凋亡引起的,主要由促凋亡的p53靶点PUMA介导。Puma基因消融可减轻血液学表型,降低致死性骨髓衰竭的风险,同时保持基因组稳定性。从机制上讲,PUMA缺乏降低了造血细胞对致命压力源的敏感性,包括极短的端粒。因此,造血祖细胞代偿性周转的减少减缓了群体水平上的端粒缩短,延缓了干细胞衰竭,减少了体细胞突变的获得,最终阻止了肿瘤转化。在端粒生物学紊乱患者的骨髓中也观察到p53和PUMA的表达升高。虽然细胞凋亡抵抗传统上与恶性转化有关,但我们的研究结果提供了证据,表明选择性抑制puma介导的细胞凋亡可能是预防或延缓这类患者白血病转化的可行治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

PUMA-induced apoptosis drives bone marrow failure and genomic instability in telomerase-deficient mice.

PUMA-induced apoptosis drives bone marrow failure and genomic instability in telomerase-deficient mice.

Bone marrow failure is a severe complication of human telomere biology disorders and predisposes individuals to secondary leukemia. A deeper understanding of this process could offer significant clinical benefits. Using a preclinical mouse model deficient in the RNA component of the telomerase (mTerc), we demonstrate that bone marrow failure results from excessive apoptosis, predominantly mediated by the pro-apoptotic p53 target PUMA. Genetic ablation of Puma alleviates hematological phenotypes and reduces the risk of lethal bone marrow failure while preserving genomic stability. Mechanistically, PUMA deficiency decreases the sensitivity of hematopoietic cells to lethal stressors, including critically short telomeres. As a consequence, reduced compensatory turnover of hematopoietic progenitors slows down telomere shortening at the population level, delays stem cell exhaustion, and diminishes the acquisition of somatic mutations - ultimately preventing neoplastic transformation. Elevated expression of both p53 and PUMA is also observed in the bone marrow from patients with telomere biology disorders. While apoptosis resistance is traditionally associated with malignant transformation, our findings provide evidence that selective inhibition of PUMA-mediated apoptosis may represent a viable therapeutic strategy to prevent or delay leukemic transformation in this patient population.

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来源期刊
Cell Death and Differentiation
Cell Death and Differentiation 生物-生化与分子生物学
CiteScore
24.70
自引率
1.60%
发文量
181
审稿时长
3 months
期刊介绍: Mission, vision and values of Cell Death & Differentiation: To devote itself to scientific excellence in the field of cell biology, molecular biology, and biochemistry of cell death and disease. To provide a unified forum for scientists and clinical researchers It is committed to the rapid publication of high quality original papers relating to these subjects, together with topical, usually solicited, reviews, meeting reports, editorial correspondence and occasional commentaries on controversial and scientifically informative issues.
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