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The mitochondrial transporter ABC-me (ABCB10), a downstream target of GATA-1, is essential for erythropoiesis in vivo

机译:线粒体转运蛋白ABC-me(ABCB10)是GATA-1的下游靶标,对于体内红细胞生成至关重要

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The mitochondrial transporter ATP binding cassette mitochondrial erythroid (ABC-me/ABCB10) is highly induced during erythroid differentiation by GATA-1 and its overexpression increases hemoglobin production rates in vitro. However, the role of ABC-me in erythropoiesis in vivo is unknown. Here we report for the first time that erythrocyte development in mice requires ABC-me. ABC-me -/- mice die at day 12.5 of gestation, showing nearly complete eradication of primitive erythropoiesis and lack of hemoglobinized cells at day 10.5. ABC-me -/- erythroid cells fail to differentiate because they exhibit a marked increase in apoptosis, both in vivo and ex vivo. Erythroid precursors are particularly sensitive to oxidative stress and ABC-me in the heart and its yeast ortholog multidrug resistance-like 1 have been shown to protect against oxidative stress. Thus, we hypothesized that increased apoptosis in ABC-me -/- erythroid precursors was caused by oxidative stress. Within this context, ABC-me deletion causes an increase in mitochondrial superoxide production and protein carbonylation in erythroid precursors. Furthermore, treatment of ABC-me -/- erythroid progenitors with the mitochondrial antioxidant MnTBAP (superoxide dismutase 2 mimetic) supports survival, ex vivo differentiation and increased hemoglobin production. Altogether, our findings demonstrate that ABC-me is essential for erythropoiesis in vivo.
机译:GATA-1在红系分化过程中高度诱导线粒体转运蛋白ATP结合盒线粒体红系(ABC-me / ABCB10),其过表达增加了体外血红蛋白的产生速率。但是,ABC-me在体内红细胞生成中的作用尚不清楚。在这里,我们首次报告小鼠中的红细胞发育需要ABC-me。 ABC-me-/-小鼠在妊娠的第12.5天死亡,显示在第10.5天几乎完全根除了原始的红细胞生成和缺乏血红蛋白的细胞。 ABC-me-/-红系细胞无法分化,因为它们在体内和离体时均显示出明显的凋亡增加。红类前体对氧化应激特别敏感,心脏中的ABC-me和它的类似酵母直系同源多药耐药性1可以抵抗氧化应激。因此,我们假设ABC-me-/-类胡萝卜素前体细胞凋亡的增加是由氧化应激引起的。在这种情况下,ABC-me缺失会导致红系前体中线粒体超氧化物的产生和蛋白质羰基化的增加。此外,用线粒体抗氧化剂MnTBAP(超氧化物歧化酶2模拟物)治疗ABC-me-/-类红细胞祖细胞可支持生存,离体分化和增加血红蛋白生成。总之,我们的发现表明ABC-me对于体内红细胞生成至关重要。

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