Department of Medicine (Hematology-Oncology), University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania, USA.
J Clin Invest. 2009 Dec;119(12):3519-29. doi: 10.1172/JCI40572.
Hematopoietic stem cell (HSC) homeostasis depends on the balance between self renewal and lineage commitment, but what regulates this decision is not well understood. Using loss-of-function approaches in mice, we found that glycogen synthase kinase-3 (Gsk3) plays a pivotal role in controlling the decision between self renewal and differentiation of HSCs. Disruption of Gsk3 in BM transiently expanded phenotypic HSCs in a betta-catenin-dependent manner, consistent with a role for Wnt signaling in HSC homeostasis. However, in assays of long-term HSC function, disruption of Gsk3 progressively depleted HSCs through activation of mammalian target of rapamycin (mTOR). This long-term HSC depletion was prevented by mTOR inhibition and exacerbated by betta-catenin knockout. Thus, GSK-3 regulated both Wnt and mTOR signaling in mouse HSCs, with these pathways promoting HSC self renewal and lineage commitment, respectively, such that inhibition of Gsk3 in the presence of rapamycin expanded the HSC pool in vivo. These findings identify unexpected functions for GSK-3 in mouse HSC homeostasis, suggest a therapeutic approach to expand HSCs in vivo using currently available medications that target GSK-3 and mTOR, and provide a compelling explanation for the clinically prevalent hematopoietic effects observed in individuals prescribed the GSK-3 inhibitor lithium.
造血干细胞(HSC)的自我更新和谱系分化取决于两者之间的平衡,但是目前尚不清楚是什么调控了这一决定。我们利用基因敲除的方法在小鼠体内进行研究,发现糖原合成酶激酶-3(Gsk3)在控制造血干细胞的自我更新和分化之间的决策中起着关键作用。在骨髓中敲除 Gsk3 会以β-catenin 依赖的方式短暂地扩增表型造血干细胞,这与 Wnt 信号通路在造血干细胞自我更新中的作用一致。然而,在长期造血干细胞功能的检测中,敲除 Gsk3 会通过激活哺乳动物雷帕霉素靶蛋白(mTOR)而逐渐耗尽造血干细胞。mTOR 的抑制可以预防这种长期的造血干细胞耗竭,而β-catenin 的敲除则会加剧这种情况。因此,GSK-3 在小鼠的造血干细胞中同时调控了 Wnt 和 mTOR 信号通路,这两条通路分别促进造血干细胞的自我更新和谱系分化,从而使 rapamycin 存在时抑制 Gsk3 会在体内扩增造血干细胞池。这些发现揭示了 GSK-3 在小鼠造血干细胞自我更新中的意想不到的作用,提示了一种利用目前靶向 GSK-3 和 mTOR 的药物在体内扩增造血干细胞的治疗方法,并为临床上观察到的锂盐抑制 GSK-3 个体的普遍造血作用提供了一个令人信服的解释。