Shrivastav Anuraag, Varma Shailly, Lawman Zoe, Yang Shao H, Ritchie Shawn A, Bonham Keith, Singh Sukh M, Saxena Anurag, Sharma Rajendra K
Department of Pathology, College of Medicine, University of Saskatchewan, Canada.
J Immunol. 2008 Jan 15;180(2):1019-28. doi: 10.4049/jimmunol.180.2.1019.
N-myristoyltransferase (NMT) exists in two isoforms, NMT1 and NMT2, that catalyze myristoylation of various proteins crucial in signal transduction, cellular transformation, and oncogenesis. We have recently demonstrated that NMT1 is essential for the early development of mouse embryo. In this report, we have demonstrated that an invariant consequence of NMT1 knock out is defective myelopoesis. Suppressed macrophage colony forming units were observed in M-CSF-stimulated bone marrow cells from heterozygous (+/-) Nmt1-deficient mice. Homozygous (-/-) Nmt1-deficient mouse embryonic stem cells resulted in drastic reduction of macrophages when stimulated to differentiate by M-CSF. Furthermore, to understand the requirement of NMT1 in the monocytic differentiation we investigated the role of NMT, pp60c-Src (NMT substrate) and heat shock cognate protein 70 (inhibitor of NMT), during PMA-induced differentiation of U937 cells. Src kinase activity and protein expression increased during the differentiation process along with regulation of NMT activity by hsc70. NMT1 knock down in PMA treated U937 cells showed defective monocytic differentiation. We report in this study novel observation that regulated total NMT activity and NMT1 is essential for proper monocytic differentiation of the mouse bone marrow cells.
N-肉豆蔻酰转移酶(NMT)以两种同工型存在,即NMT1和NMT2,它们催化多种在信号转导、细胞转化和肿瘤发生中起关键作用的蛋白质的肉豆蔻酰化。我们最近证明,NMT1对小鼠胚胎的早期发育至关重要。在本报告中,我们证明了NMT1基因敲除的一个不变后果是骨髓生成缺陷。在来自杂合子(+/-)Nmt1缺陷小鼠的M-CSF刺激的骨髓细胞中观察到巨噬细胞集落形成单位受到抑制。当用M-CSF刺激分化时,纯合子(-/-)Nmt1缺陷小鼠胚胎干细胞导致巨噬细胞数量急剧减少。此外,为了了解NMT1在单核细胞分化中的需求,我们研究了NMT、pp60c-Src(NMT底物)和热休克同源蛋白70(NMT抑制剂)在PMA诱导的U937细胞分化过程中的作用。Src激酶活性和蛋白表达在分化过程中增加,同时hsc70对NMT活性进行调节。在PMA处理的U937细胞中敲低NMT1显示单核细胞分化缺陷。我们在本研究中报告了新的观察结果,即调节总NMT活性和NMT1对小鼠骨髓细胞的正常单核细胞分化至关重要。