Ethylmalonic acid impairs bioenergetics by disturbing succinate and glutamate oxidation and induces mitochondrial permeability transition pore opening in rat cerebellum

IF 4.2 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Neurochemistry Pub Date : 2021-04-10 DOI:10.1111/jnc.15363
Leonardo de Moura Alvorcem, Renata Britto, Cristiane Cecatto, Ana Cristina Roginski, Francieli Rohden, Juliete Nathali Scholl, Fátima C. R. Guma, Fabrício Figueiró, Alexandre Umpierrez Amaral, Geancarlo Zanatta, Bianca Seminotti, Moacir Wajner, Guilhian Leipnitz
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引用次数: 2

Abstract

Tissue accumulation and high urinary excretion of ethylmalonic acid (EMA) are found in ethylmalonic encephalopathy (EE), an inherited disorder associated with cerebral and cerebellar atrophy whose pathogenesis is poorly established. The in vitro and in vivo effects of EMA on bioenergetics and redox homeostasis were investigated in rat cerebellum. For the in vitro studies, cerebellum preparations were exposed to EMA, whereas intracerebellar injection of EMA was used for the in vivo evaluation. EMA reduced state 3 and uncoupled respiration in vitro in succinate-, glutamate-, and malate-supported mitochondria, whereas decreased state 4 respiration was observed using glutamate and malate. Furthermore, mitochondria permeabilization and succinate supplementation diminished the decrease in state 3 with succinate. EMA also inhibited the activity of KGDH, an enzyme necessary for glutamate oxidation, in a mixed manner and augmented mitochondrial efflux of α-ketoglutarate. ATP levels were markedly reduced by EMA, reflecting a severe bioenergetic disruption. Docking simulations also indicated interactions between EMA and KGDH and a competition with glutamate and succinate for their mitochondrial transporters. In vitro findings also showed that EMA decreased mitochondrial membrane potential and Ca2+ retention capacity, and induced swelling in the presence of Ca2+, which were prevented by cyclosporine A and ADP and ruthenium red, indicating mitochondrial permeability transition (MPT). Moreover, EMA, at high concentrations, mildly increased ROS levels and altered antioxidant defenses in vitro and in vivo. Our data indicate that EMA-induced impairment of glutamate and succinate oxidation and MPT may contribute to the pathogenesis of the cerebellum abnormalities in EE.

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乙基丙二酸通过扰乱琥珀酸和谷氨酸氧化而损害生物能量,并诱导线粒体通透性过渡孔打开
乙基丙二酸(EMA)在乙基丙二酸脑病(EE)中发现组织积存和高尿排泄,这是一种与大脑和小脑萎缩相关的遗传性疾病,其发病机制尚不清楚。研究了EMA对大鼠小脑生物能量学和氧化还原稳态的体内外影响。在体外研究中,小脑制剂暴露于EMA,而小脑内注射EMA用于体内评估。在体外,在琥珀酸盐、谷氨酸盐和苹果酸盐支持的线粒体中,EMA降低了状态3和解耦呼吸,而在谷氨酸盐和苹果酸盐支持的线粒体中,观察到状态4呼吸降低。此外,线粒体通透性和琥珀酸盐的补充减少了琥珀酸盐对状态3的降低。EMA还以混合方式抑制谷氨酸氧化所必需的酶KGDH的活性,并增加α-酮戊二酸的线粒体外排。EMA显著降低了ATP水平,反映了严重的生物能破坏。对接模拟还表明,EMA和KGDH之间存在相互作用,并与谷氨酸和琥珀酸盐竞争其线粒体转运体。体外实验结果还显示,EMA降低了线粒体膜电位和Ca2+保留能力,并在Ca2+存在下引起肿胀,而环孢素A、ADP和钌红可以阻止这种现象,表明线粒体通透性转变(MPT)。此外,高浓度的EMA在体外和体内轻度增加ROS水平和改变抗氧化防御。我们的数据表明,ema诱导的谷氨酸和琥珀酸氧化和MPT损伤可能是EE小脑异常的发病机制之一。
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来源期刊
Journal of Neurochemistry
Journal of Neurochemistry 医学-神经科学
CiteScore
9.30
自引率
2.10%
发文量
181
审稿时长
2.2 months
期刊介绍: Journal of Neurochemistry focuses on molecular, cellular and biochemical aspects of the nervous system, the pathogenesis of neurological disorders and the development of disease specific biomarkers. It is devoted to the prompt publication of original findings of the highest scientific priority and value that provide novel mechanistic insights, represent a clear advance over previous studies and have the potential to generate exciting future research.
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