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比较基因组学揭示了E2A-PBX1急性淋巴细胞白血病的多步骤发病机制。

Comparative genomics reveals multistep pathogenesis of E2A-PBX1 acute lymphoblastic leukemia.

作者信息

Duque-Afonso Jesús, Feng Jue, Scherer Florian, Lin Chiou-Hong, Wong Stephen H K, Wang Zhong, Iwasaki Masayuki, Cleary Michael L

出版信息

J Clin Invest. 2015 Sep;125(9):3667-80. doi: 10.1172/JCI81158. Epub 2015 Aug 24.

Abstract

Acute lymphoblastic leukemia (ALL) is the most common childhood cancer; however, its genetic diversity limits investigation into the molecular pathogenesis of disease and development of therapeutic strategies. Here, we engineered mice that conditionally express the E2A-PBX1 fusion oncogene, which results from chromosomal translocation t(1;19) and is present in 5% to 7% of pediatric ALL cases. The incidence of leukemia in these mice varied from 5% to 50%, dependent on the Cre-driving promoter (Cd19, Mb1, or Mx1) used to induce E2A-PBX1 expression. Two distinct but highly similar subtypes of B cell precursor ALLs that differed by their pre-B cell receptor (pre-BCR) status were induced and displayed maturation arrest at the pro-B/large pre-B II stages of differentiation, similar to human E2A-PBX1 ALL. Somatic activation of E2A-PBX1 in B cell progenitors enhanced self-renewal and led to acquisition of multiple secondary genomic aberrations, including prominent spontaneous loss of Pax5. In preleukemic mice, conditional Pax5 deletion cooperated with E2A-PBX1 to expand progenitor B cell subpopulations, increasing penetrance and shortening leukemia latency. Recurrent secondary activating mutations were detected in key signaling pathways, most notably JAK/STAT, that leukemia cells require for proliferation. These data support conditional E2A-PBX1 mice as a model of human ALL and suggest targeting pre-BCR signaling and JAK kinases as potential therapeutic strategies.

摘要

急性淋巴细胞白血病(ALL)是儿童期最常见的癌症;然而,其基因多样性限制了对疾病分子发病机制的研究以及治疗策略的开发。在此,我们构建了条件性表达E2A-PBX1融合致癌基因的小鼠,该基因由染色体易位t(1;19)产生,存在于5%至7%的儿童ALL病例中。这些小鼠白血病的发病率在5%至50%之间,取决于用于诱导E2A-PBX1表达的Cre驱动启动子(Cd19、Mb1或Mx1)。诱导出了两种不同但高度相似的B细胞前体ALL亚型,它们在pre-B细胞受体(pre-BCR)状态上有所不同,并在分化的前B/大前B II阶段出现成熟停滞,类似于人类E2A-PBX1 ALL。B细胞祖细胞中E2A-PBX1的体细胞激活增强了自我更新,并导致获得多个继发性基因组畸变,包括Pax5的显著自发缺失。在白血病前期小鼠中,条件性Pax5缺失与E2A-PBX1协同作用,扩大祖B细胞亚群,增加发病率并缩短白血病潜伏期。在关键信号通路中检测到复发性继发性激活突变,最显著的是白血病细胞增殖所需的JAK/STAT通路。这些数据支持将条件性E2A-PBX1小鼠作为人类ALL模型,并表明靶向pre-BCR信号通路和JAK激酶作为潜在的治疗策略。

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