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S28A 突变的组蛋白 H3 的异位表达调节果蝇的寿命、抗逆性和心脏功能。

Ectopic expression of S28A-mutated Histone H3 modulates longevity, stress resistance and cardiac function in Drosophila.

作者信息

Joos J P, Saadatmand A R, Schnabel C, Viktorinová I, Brand T, Kramer M, Nattel S, Dobrev D, Tomancak P, Backs J, Kleinbongard P, Heusch G, Lorenz K, Koch E, Weber S, El-Armouche A

机构信息

Department of Pharmacology and Toxicology, Medical Faculty, Technische Universität Dresden, Fetscherstraße 74, Dresden, 01307, Germany.

Department of Molecular Cardiology and Epigenetics, University of Heidelberg, Heidelberg, Germany.

出版信息

Sci Rep. 2018 Feb 13;8(1):2940. doi: 10.1038/s41598-018-21372-3.

Abstract

Histone H3 serine 28 (H3S28) phosphorylation and de-repression of polycomb repressive complex (PRC)-mediated gene regulation is linked to stress conditions in mitotic and post-mitotic cells. To better understand the role of H3S28 phosphorylation in vivo, we studied a Drosophila strain with ectopic expression of constitutively-activated H3S28A, which prevents PRC2 binding at H3S28, thus mimicking H3S28 phosphorylation. H3S28A mutants showed prolonged life span and improved resistance against starvation and paraquat-induced oxidative stress. Morphological and functional analysis of heart tubes revealed smaller luminal areas and thicker walls accompanied by moderately improved cardiac function after acute stress induction. Whole-exome deep gene-sequencing from isolated heart tubes revealed phenotype-corresponding changes in longevity-promoting and myotropic genes. We also found changes in genes controlling mitochondrial biogenesis and respiration. Analysis of mitochondrial respiration from whole flies revealed improved efficacy of ATP production with reduced electron transport-chain activity. Finally, we analyzed posttranslational modification of H3S28 in an experimental heart failure model and observed increased H3S28 phosphorylation levels in HF hearts. Our data establish a critical role of H3S28 phosphorylation in vivo for life span, stress resistance, cardiac and mitochondrial function in Drosophila. These findings may pave the way for H3S28 phosphorylation as a putative target to treat stress-related disorders such as heart failure.

摘要

组蛋白H3丝氨酸28(H3S28)磷酸化以及多梳抑制复合物(PRC)介导的基因调控的去抑制与有丝分裂和有丝分裂后细胞中的应激条件相关。为了更好地理解H3S28磷酸化在体内的作用,我们研究了一种异位表达组成型激活的H3S28A的果蝇品系,该品系可阻止PRC2在H3S28处结合,从而模拟H3S28磷酸化。H3S28A突变体表现出寿命延长以及对饥饿和百草枯诱导的氧化应激的抵抗力增强。心脏管的形态学和功能分析显示,急性应激诱导后,管腔面积变小,管壁增厚,同时心脏功能有适度改善。从分离的心脏管进行的全外显子深度基因测序揭示了与寿命延长和促肌性基因相关的表型变化。我们还发现了控制线粒体生物发生和呼吸的基因的变化。对整个果蝇的线粒体呼吸分析显示,ATP产生效率提高,电子传递链活性降低。最后,我们在实验性心力衰竭模型中分析了H3S28的翻译后修饰,观察到HF心脏中H3S28磷酸化水平升高。我们的数据证实了H3S28磷酸化在果蝇体内对寿命、应激抵抗力、心脏和线粒体功能的关键作用。这些发现可能为将H3S28磷酸化作为治疗心力衰竭等应激相关疾病的潜在靶点铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e15a/5811592/53fac64a1c58/41598_2018_21372_Fig1_HTML.jpg

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