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MGST1, a GSH transferase/peroxidase essential for development and hematopoietic stem cell differentiation

机译:Mgst1,GSH转移酶/过氧化物酶对发育和造血干细胞分化是必不可少的

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We show for the first time that, in contrast to other glutathione transferases and peroxidases, deletion of microsomal glutathione transferase 1 (MGST1) in mice is embryonic lethal. To elucidate why, we used zebrafish development as a model system and found that knockdown of MGST1 produced impaired hematopoiesis. We show that MGST1 is expressed early during zebrafish development and plays an important role in hematopoiesis. High expression of MGST1 was detected in regions of active hematopoiesis and co-expressed with markers for hematopoietic stem cells. Further, morpholino-mediated knock-down of MGST1 led to a significant reduction of differentiated hematopoietic cells both from the myeloid and the lymphoid lineages. In fact, hemoglobin was virtually absent in the knock-down fish as revealed by diaminofluorene staining. The impact of MGST1 on hematopoiesis was also shown in hematopoietic stem/progenitor cells (HSPC) isolated from mice, where it was expressed at high levels. Upon promoting HSPC differentiation, lentiviral shRNA MGST1 knockdown significantly reduced differentiated, dedicated cells of the hematopoietic system. Further, MGST1 knockdown resulted in a significant lowering of mitochondrial metabolism and an induction of glycolytic enzymes, energetic states closely coupled to HSPC dynamics. Thus, the non-selenium, glutathione dependent redox regulatory enzyme MGST1 is crucial for embryonic development and for hematopoiesis in vertebrates.
机译:我们首次表明,与其他谷胱甘肽转移酶和过氧化物酶相反,小鼠中微粒体谷胱甘肽转移酶1(MGST1)的缺失是胚胎致死的。为了阐明为什么,我们将斑马鱼的开发用作模型系统,发现MGST1的敲低产生造血受损。我们表明MGST1在斑马鱼发育期间早期表达,并在造血中发挥着重要作用。在活性血缺陷的区域中检测到MgSt1的高表达,并用造血干细胞的标志物共表达。此外,MGST1的静脉内介导的倒闭导致来自髓样和淋巴谱系的分化造血细胞显着降低。事实上,血红蛋白几乎不存在于通过二氨基芴染色透露的敲击鱼中。 Mgst1对血液缺陷的影响也显示在从小鼠中分离的造血干/祖细胞(HSPC)中显示,其中在高水平表达。在促进HSPC分化后,慢病毒SHRNA MGST1敲低显着降低了造血系统的分化,专用细胞。此外,MGST1敲低导致线粒体代谢的显着降低和糖酵解酶的诱导,充满活力状态与HSPC动态密切相关的能量状态。因此,非硒,谷胱甘肽依赖性氧化还原调节酶Mgst1对胚胎发育和脊椎动物中的血缺陷至关重要。

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