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本文引用的文献

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Dissecting the diverse functions of the metastasis suppressor CD82/KAI1.解析转移抑制因子 CD82/KAI1 的多种功能。
FEBS Lett. 2011 Oct 20;585(20):3166-73. doi: 10.1016/j.febslet.2011.08.031. Epub 2011 Aug 27.
2
CD9 up-regulation on CD34+ cells with ingenol 3,20-dibenzoate does not improve homing in NSG mice.用 ingenol 3,20 - 二苯甲酸酯处理后,CD34 + 细胞上CD9的上调并不能改善在NSG小鼠中的归巢情况。
Blood. 2011 May 26;117(21):5774-6. doi: 10.1182/blood-2011-01-332031.
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The tetraspanin CD9 regulates migration, adhesion, and homing of human cord blood CD34+ hematopoietic stem and progenitor cells.四跨膜蛋白 CD9 调节人脐血 CD34+造血干祖细胞的迁移、黏附和归巢。
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Cancer stem cells: back to Darwin?肿瘤干细胞:重回达尔文?
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Tetraspanin-enriched microdomains: a functional unit in cell plasma membranes.富含四跨膜蛋白的微结构域:细胞质膜中的一个功能单元。
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Cancer stem cells and their niche.癌症干细胞及其微环境。
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Lateral organization of membrane proteins: tetraspanins spin their web.膜蛋白的侧向组织:四跨膜蛋白编织它们的网络。
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Intercellular transfer to signalling endosomes regulates an ex vivo bone marrow niche.细胞间向信号内体的转移调节体外骨髓微环境。
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Leukemic cells create bone marrow niches that disrupt the behavior of normal hematopoietic progenitor cells.白血病细胞会形成骨髓微环境,干扰正常造血祖细胞的行为。
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Stem cell concepts renew cancer research.干细胞概念革新癌症研究。
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骨髓归巢和人造血干/祖细胞的植入是由一个极化的膜域介导的。

Bone marrow homing and engraftment of human hematopoietic stem and progenitor cells is mediated by a polarized membrane domain.

机构信息

Hematology Branch, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, USA.

出版信息

Blood. 2012 Feb 23;119(8):1848-55. doi: 10.1182/blood-2011-08-371583. Epub 2012 Jan 6.

DOI:10.1182/blood-2011-08-371583
PMID:22228628
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3293639/
Abstract

Manipulation of hematopoietic stem/progenitor cells (HSPCs) ex vivo is of clinical importance for stem cell expansion and gene therapy applications. However, most cultured HSPCs are actively cycling, and show a homing and engraftment defect compared with the predominantly quiescent noncultured HSPCs. We previously showed that HSPCs make contact with osteoblasts in vitro via a polarized membrane domain enriched in adhesion molecules such as tetraspanins. Here we show that increased cell cycling during ex vivo culture of HSPCs resulted in disruption of this membrane domain, as evidenced by disruption of polarity of the tetraspanin CD82. Chemical disruption or antibody-mediated blocking of CD82 on noncultured HSPCs resulted in decreased stromal cell adhesion, homing, and engraftment in nonobese diabetic/severe combined immunodeficiency IL-2γ(null) (NSG) mice compared with HSPCs with an intact domain. Most leukemic blasts were actively cycling and correspondingly displayed a loss of domain polarity and decreased homing in NSG mice compared with normal HSPCs. We conclude that quiescent cells, unlike actively cycling cells, display a polarized membrane domain enriched in tetraspanins that mediates homing and engraftment, providing a mechanistic explanation for the homing/engraftment defect of cycling cells and a potential new therapeutic target to enhance engraftment.

摘要

体外操纵造血干细胞/祖细胞(HSPCs)对于干细胞扩增和基因治疗应用具有重要的临床意义。然而,大多数培养的 HSPCs 处于活跃的细胞周期中,与主要处于静止状态的未培养 HSPCs 相比,其归巢和植入缺陷。我们之前曾表明,HSPCs 通过富含粘附分子(如四跨膜蛋白)的极化膜域与成骨细胞体外接触。在这里,我们表明,HSPCs 在体外培养过程中细胞周期的增加导致了这种膜域的破坏,这可以通过四跨膜蛋白 CD82 的极性破坏来证明。与具有完整结构域的 HSPCs 相比,用化学方法破坏或抗体介导阻断非培养 HSPCs 上的 CD82,会导致基质细胞粘附、归巢和植入减少,非肥胖型糖尿病/严重联合免疫缺陷 IL-2γ(null)(NSG)小鼠。大多数白血病母细胞处于活跃的细胞周期,与正常 HSPCs 相比,它们在 NSG 小鼠中表现出结构域极性丧失和归巢减少。我们得出结论,与活跃的细胞周期相比,静止的细胞显示出富含四跨膜蛋白的极化膜域,介导归巢和植入,为细胞周期的归巢/植入缺陷提供了一种机制解释,也为增强植入提供了一个潜在的新治疗靶点。