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Zdhhc13 依赖性 Drp1 S-棕榈酰化作用影响大脑生物能量学、焦虑、协调和运动技能。

Zdhhc13-dependent Drp1 S-palmitoylation impacts brain bioenergetics, anxiety, coordination and motor skills.

机构信息

Department of Molecular Biosciences, School of Veterinary Medicine, University of California Davis, Davis, CA, 95616, USA.

Department of Epigenetics and Molecular Carcinogenesis, The University of Texas MD Anderson Cancer Center, Smithville, and The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX, 77030, USA.

出版信息

Sci Rep. 2017 Oct 16;7(1):12796. doi: 10.1038/s41598-017-12889-0.

Abstract

Protein S-palmitoylation is a reversible post-translational modification mediated by palmitoyl acyltransferase enzymes, a group of Zn-finger DHHC-domain-containing proteins (ZDHHC). Here, for the first time, we show that Zdhhc13 plays a key role in anxiety-related behaviors and motor function, as well as brain bioenergetics, in a mouse model (luc) carrying a spontaneous Zdhhc13 recessive mutation. At 3 m of age, mutant mice displayed increased sensorimotor gating, anxiety, hypoactivity, and decreased motor coordination, compared to littermate controls. Loss of Zdhhc13 in cortex and cerebellum from 3- and 24 m old hetero- and homozygous male mutant mice resulted in lower levels of Drp1 S-palmitoylation accompanied by altered mitochondrial dynamics, increased glycolysis, glutaminolysis and lactic acidosis, and neurotransmitter imbalances. Employing in vivo and in vitro models, we identified that Zdhhc13-dependent Drp1 S-palmitoylation, which acting alone or in concert, enables the normal occurrence of the fission-fusion process. In vitro and in vivo direct Zdhhc13-Drp1 protein interaction was observed, confirming Drp1 as a substrate of Zdhhc13. Abnormal fission-fusion processes result in disrupted mitochondria morphology and distribution affecting not only mitochondrial ATP output but neurotransmission and integrity of synaptic structures in the brain, setting the basis for the behavioral abnormalities described in the Zdhhc13-deficient mice.

摘要

蛋白质 S-棕榈酰化是一种由棕榈酰转移酶酶介导的可逆翻译后修饰,棕榈酰转移酶酶是一组含有 Zn 指 DHHC 结构域的蛋白质(ZDHHC)。在这里,我们首次表明,Zdhhc13 在携带自发 Zdhhc13 隐性突变的小鼠模型(luc)中,在与焦虑相关的行为和运动功能以及大脑生物能量学中发挥关键作用。在 3 个月大时,与同窝对照相比,突变小鼠表现出更高的感觉运动门控、焦虑、活动减少和运动协调能力下降。从 3 至 24 个月大的杂合和纯合雄性突变小鼠的大脑皮层和小脑中丢失 Zdhhc13 导致 Drp1 S-棕榈酰化水平降低,同时伴有线粒体动力学改变、糖酵解、谷氨酰胺分解和乳酸酸中毒增加以及神经递质失衡。通过体内和体外模型,我们确定了 Zdhhc13 依赖性 Drp1 S-棕榈酰化,其单独或协同作用,使裂变融合过程正常发生。观察到体外和体内 Zdhhc13-Drp1 蛋白相互作用,证实 Drp1 是 Zdhhc13 的底物。异常的裂变融合过程导致线粒体形态和分布的破坏,不仅影响线粒体 ATP 的产生,还影响大脑中的神经传递和突触结构的完整性,为 Zdhhc13 缺陷型小鼠中描述的行为异常奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/076d/5643561/58dfeed895de/41598_2017_12889_Fig1_HTML.jpg

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