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In Vivo Stem Cell Selection in Neonatal Allo-Transplants

In Vivo Stem Cell Selection in Neonatal Allo-Transplants
新生儿同种异体移植中的体内干细胞选择
批准号:
6985014
负责人:
KARIN L GAENSLER
金额:
$18.94万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-20 至 2007-08-31

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中文摘要
翻译
描述(由申请人提供):我们在本申请中的总体目标是开发一种非清髓性同种异体移植方法,该方法需要最少或不需要移植后免疫抑制。这种方法独特地结合了新生儿期的造血干细胞(HSC)移植、用于在体内扩增基因工程耐药供者HSC的阳性选择策略以及在发生不良事件时消除这些细胞的阴性选择策略。新生儿模型被选择用于这一方法,因为T细胞个体发育在这个阶段是不完整的,而且成人的免疫耐受可能比移植更容易实现。我们的阳性选择策略包括慢病毒介导的带有P140K-MGMT(甲基鸟嘌呤-甲基转移酶)的HSCs转导,P140K-MGMT是一种变异的DMA烷基转移酶,可以抵抗内源性MGMT抑制剂(如BG)和氯乙基化试剂(如BCNU),允许在体内进行阳性选择和在干细胞水平上浓缩供体细胞。将首先在同基因移植模型中确定在新生儿移植后浓缩P140K-MGMT转导的供体HSCs以及诱导对转基因编码的新抗原的免疫耐受的关键参数(目标1)。这一新生儿移植/体内阳性选择策略将被应用于一种新的半异基因非清髓模型,该模型模仿人类白细胞抗原半相合供体移植(AIM 2),使我们能够研究供体嵌合体水平的提高,再加上在宿主免疫系统发育不成熟的阶段进行移植,是否会诱导对移植物同种异体抗原的耐受。我们还将测试胎肝来源的HSCs作为脐带血的替代品,以确定供体细胞个体发育阶段是否影响移植物抗宿主病(GVHD)涉及的细胞免疫反应,并检查在体内选择过程中连续使用BCNU周期是否可能提供足以限制甚至消除GVHD的免疫抑制。最后,将P140K-MGMT连接到单纯疱疹病毒胸苷激酶(HSV TK)自杀基因的正/阴性选择载体,将用于评估更昔洛韦治疗是否可以通过选择性消除增殖的供体细胞来限制GVHD。这种负选择策略还可能取消体内强制浓缩和扩增后转导供体细胞的自主克隆性增殖,这是一个重要的潜在安全问题。
英文摘要
DESCRIPTION (provided by applicant): Our overall objectives in this application are to develop a non-myeloablative allogeneic transplantation approach that requires minimal or no post-transplant immunosuppression. This approach uniquely combines hematopoietic stem cell (HSC) transplantation during the neonatal period, a positive selection strategy for in vivo amplification of genetically engineered drug-resistant donor HSC, and a negative selection strategy to eliminate these cells should an adverse event occur. The neonatal model was chosen for this approach because T cell ontogeny is incomplete at this stage and immune tolerance may be more readily achieved than with transplantation in adults. Our positive selection strategy involves lentivirus-mediated transduction of HSCs with P140K-MGMT (methylguanine-methyltransferase), a variant DMA alkyltransferase that confers resistance to endogenous MGMT inhibitors such as benzylguanine (BG) and to chloroethylating agents such as BCNU, allowing positive selection in vivo and donor cell enrichment at the stem cell level. Critical parameters for enrichment of P140K-MGMT-transduced donor HSCs after neonatal transplantation, and for induction of immunotolerance to transgene-encoded neoantigens, will first be established in a syngeneic transplant model (Aim 1). This neonatal transplantation/ in vivo positive selection strategy will then be applied to a novel semi-allogeneic non-myeloablative model that mimics HLA-haploidentical donor transplantation (Aim 2), allowing us to investigate whether enhanced levels of donor chimerism, coupled with transplantation at a stage when the host immune system is developmentally immature, will induce tolerance to graft allo-antigens. We will also test fetal liver-derived HSCs as surrogates for cord blood to determine whether the stage of donor cell ontogeny affects cellular immune responses involved in graft vs. host disease (GVHD), and examine whether the use of successive cycles of BCNU during the in vivo selection process might provide immunosuppression sufficient to limit or even abrogate GVHD. Finally, positive/negative selection vectors, in which P140K-MGMT is linked to the Herpes simplex virus thymidine kinase (HSV TK) suicide gene, will be used to assess whether ganciclovir treatment can limit GVHD by selective elimination of proliferating donor cells. This negative selection strategy may also abrogate autonomous clonal proliferation of transduced donor cells after forced enrichment and expansion in vivo, an important potential safety issue.
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