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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Prolonged self-renewal activity unmasks telomerase control of telomere homeostasis and function of mouse hematopoietic stem cells.
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Prolonged self-renewal activity unmasks telomerase control of telomere homeostasis and function of mouse hematopoietic stem cells.

机译:长时间的自我更新活动揭示了端粒酶对端粒稳态和小鼠造血干细胞功能的控制。

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摘要

Strategies for expanding hematopoietic stem cells (HSCs) could have significant utility for transplantation-based therapies. However, deleterious consequences of such manipulations remain unknown. Here we examined the impact of HSC self-renewal divisions in vitro and in vivo on their subsequent regenerative and continuing ability to sustain blood cell production in the absence of telomerase. HSC expansion in vitro was obtained using a NUP98-HOXA10hd transduction strategy and, in vivo, using a serial transplant protocol. We observed ~ 10kb telomere loss in leukocytes produced in secondary mice transplanted with HSCs regenerated in primary recipients of NUP98-HOXA10hd-transduced and in vitro-expanded Tert(-/-) HSCs 6 months before. The second generation leukocytes also showed elevated expression of gammaH2AX (relative to control) indicative of greater accumulating DNA damage. In contrast, significant telomere shortening was not detected in leukocytes produced from freshly isolated, serially transplanted wild-type (WT) or Tert(-/-) HSCs, suggesting that HSC replication posttransplant is not limited by telomere shortening in the mouse. These findings document a role of telomerase in telomere homeostasis, and in preserving HSC functional integrity on prolonged self-renewal stimulation.
机译:扩大造血干细胞(HSCs)的策略对于基于移植的疗法可能具有重要的用途。但是,这种操纵的有害后果仍然未知。在这里,我们研究了HSC自我更新分裂在体外和体内的影响,对它们随后的再生和持续能力(在没有端粒酶的情况下)维持血细胞生产的影响。使用NUP98-HOXA10hd转导策略获得体外HSC扩增,体内使用串行移植方案获得。我们观察到6个月前,在NUP98-HOXA10hd转导和体外扩增的Tert(-/-)HSC的主要受体中再生了HSC的二次小鼠移植后,产生的白细胞中约有10kb端粒丢失。第二代白细胞还显示出gammaH2AX的表达升高(相对于对照),表明累积的DNA损伤更大。相比之下,在新鲜分离的,连续移植的野生型(WT)或Tert(-/-)HSC产生的白细胞中未检测到明显的端粒缩短,这表明移植后HSC复制不受小鼠端粒缩短的限制。这些发现证明了端粒酶在端粒稳态和长期自我更新刺激中保持HSC功能完整性中的作用。

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