内源性转化生长因子-β1 (tgf -β1)在造血干细胞中的瞬时抑制加速了移植并提高了多系再生效率

S. Bartelmez, C. Storey, P. Iversen, F. Ruscetti
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引用次数: 2

摘要

可通过调节细胞表面分子如CD26和CXCR4.1,2来提高造血干细胞移植的效率,这在供体细胞数量有限的情况下是很重要的,如成人脐带血干细胞移植,由于CD34+细胞数量有限,可能会产生更多分化后代,导致高发病率和移植缓慢通过体外扩增原始HSC来增加可移植细胞总数的方法在临床上并不有用。5,6本研究采用最小离体操作,通过短暂抑制内源性tgf - β1在HSC中的表达来增强HSC的植入而不扩增。我们之前报道过tgf - β1在体外直接和可逆地抑制小鼠LTR-HSC和造血祖细胞的初始细胞分裂。tgf - β1已被证明是骨髓壁龛中LTR-HSC静止(G0)的主要调节因子tgf - β1受体条件敲除的成年小鼠在体内表现出基本正常的造血功能然而,在体外通过TGFβ中和抗体从G0静止状态释放的HSC/祖细胞可改善逆转录病毒基因转移。此外,抑制Smad信号(tgf - β1信号的细胞内调节因子)可促进体内HSC的自我更新在这里,我们从谱系阴性的骨髓细胞中研究了高富集的小鼠LTRHSC,然后通过FACS顺序选择低保留的荧光活性染料Höechst 33342 (Hö)(结合DNA的A-T碱基对)和罗丹明123 (Rh)(结合主要活化的线粒体膜)。染料的低保留率是由于高流出率和低目标结合。我们之前的研究表明,选择lin-, Hö low (~G0),14 c-kit+7,15的细胞可以识别LTRHSC和短期再填充(STR-HSC)。基于Rh荧光的进一步选择步骤可分辨低Rh的LTR-HSC和高Rh的STR-HSC。与STR-HSC相比,LTR-HSC主要处于静止状态9,并且由于自身复制的高概率而具有独特的长期再生能力,同时产生大量的STRHSC16。未经处理的LTR-HSC在移植后早期短期再生能力较差,但随着时间的推移,在体内产生具有有效短期再生能力的子细胞。我们证明了LTR-HSC体内内源性tgf - β1的短暂抑制
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transient Inhibition of Endogenous Transforming Growth Factor-β1 (Tgfβ1) in Hematopoietic Stem Cells Accelerates Engraftment and Enhances Multi-Lineage Repopulating Efficiency
HSC transplantation efficiency can be improved by modulating cell surface molecules such as CD26 and CXCR4.1,2 This is important in cases where donor cell numbers are limiting, as in cord blood stem cell transplantation in adults where high morbidity and slow engraftment occur3 due to limiting numbers of CD34+ cells and possibly more differentiate progeny.4 The approach involving ex vivo expansion of primitive HSC to increase the total transplantable cell number has not been clinically useful.5,6 Here, we took the approach of enhancing HSC engraftment without expansion by transiently inhibiting endogenous TGFβ1 expression in HSC using minimal ex vivo manipulation. We previously reported that TGFβ1 directly and reversibly inhibits the initial cell divisions of murine LTR-HSC as well hematopoietic progenitor cells in vitro.7,8 TGFβ1 has been shown to be a primary regulator of LTR-HSC quiescence (G0) in bone marrow niches.9 Adult mice with a conditional knock-out of the TGFβ1 receptor exhibited essentially normal in vivo hematopoiesis.10 However, HSC/progenitor cells released from G0 quiescence in vitro by TGFβ neutralizing antibodies resulted in improved retroviral gene transfer.11,12 Furthermore, inhibiting Smad signaling, the intracellular regulators of TGFβ1 signaling, promoted HSC self-renewal in vivo.13 Here we studied highly enriched murine LTRHSC from lineagenegative bone marrow cells followed by FACS sequential selection of low retention of the fluorescent, viable dyes Höechst 33342 (Hö) (binding A-T base pairs of DNA) and Rhodamine 123 (Rh) (binding predominately activated mitochondria membranes). Low retention of the dyes is due to both high efflux rates and low target binding. Our previous studies showed that selecting cells that are lin-, Hö low (~G0),14 c-kit+7,15 identifies both LTRHSC and short -term repopulating (STR-HSC). A further selection step based on Rh fluorescence resolves the LTR-HSC (low Rh) and STR-HSC (high Rh). LTR-HSC are predominantly quiescent9 compared to STR-HSC, and are unique in their long-term repopulating ability due a high probability of selfreplication while at the same time generating large numbers of STRHSC16 Untreated LTR-HSC have poor short-term repopulating ability early after transplant, however over time in vivo give rise to daughter cells that possess efficient short-term repopulating ability. We show that transient inhibition of endogenous TGFβ1 in LTR-HSC ex vivo
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