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Binding of a Smad4/Ets-1 complex to a novel intragenic regulatory element in exon12 of FPGS underlies decreased gene expression and antifolate resistance in leukemia

机译:Smad4 / Ets-1复合物与FPGS外显子12中的新型基因内调控元件的结合是降低白血病基因表达和抗叶酸能力的基础

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摘要

Polyglutamylation of antifolates catalyzed by folylpoly-γ-glutamate synthetase (FPGS) is essential for their intracellular retention and cytotoxic activity. Hence, loss of FPGS expression and/or function results in lack of antifolate polyglutamylation and drug resistance. Members of the TGF-β/Smad signaling pathway are negative regulators of hematopoiesis and deregulation of this pathway is considered a major contributor to leukemogenesis. Here we show that FPGS gene expression is inversely correlated with the binding of a Smad4/Ets-1 complex to exon12 of FPGS in both acute lymphoblastic leukemia cells and acute myeloid leukemia blast specimens. We demonstrate that antifolate resistant leukemia cells harbor a heterozygous point mutation in exon12 of FPGS which disrupts FPGS activity by abolishing ATP binding, and alters the binding pattern of transcription factors to the genomic region of exon12. This in turn results in the near complete silencing of the wild type allele leading to a 97% loss of FPGS activity. We show that exon12 is a novel intragenic transcriptional regulator, endowed with the ability to drive transcription in vitro, and is occupied by transcription factors and chromatin remodeling agents (e.g. Smad4/Ets-1, HP-1 and Brg1) in vivo. These findings bear important implications for the rational overcoming of antifolate resistance in leukemia.
机译:叶酰聚-γ-谷氨酸合成酶(FPGS)催化的抗叶酸药物的聚谷氨酰化对于其细胞内保留和细胞毒性活性至关重要。因此,FPGS表达和/或功能的丧失导致抗叶酸多谷氨酰化和耐药性的缺乏。 TGF-β/ Smad信号转导途径的成员是造血功能的负调节剂,该途径的失调被认为是促白细胞生成的主要因素。在这里,我们显示FPGS基因表达与Smad4 / Ets-1复合物与FPGS外显子12在急性淋巴细胞白血病细胞和急性髓样白血病胚标本中的结合成反比。我们证明,抗叶酸性白血病细胞在FPGS的exon12中具有一个杂合点突变,该突变通过取消ATP结合来破坏FPGS的活性,并改变了转录因子对exon12基因组区域的结合模式。反过来,这导致野生型等位基因几乎完全沉默,从而导致FPGS活性降低97%。我们显示exon12是一种新型的基因内转录调节因子,具有在体外驱动转录的能力,并且在体内被转录因子和染色质重塑剂(例如Smad4 / Ets-1,HP-1和Brg1)占据。这些发现对白血病抗叶酸耐药性的合理克服具有重要意义。

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