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Upregulation of Cdh1 signaling in the hippocampus attenuates brain damage after transient global cerebral ischemia in rats.海马中 Cdh1 信号的上调可减轻大鼠短暂全脑缺血后的脑损伤。
Neurochem Int. 2018 Jan;112:166-178. doi: 10.1016/j.neuint.2017.07.005. Epub 2017 Jul 12.
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Synaptic Activity Drives a Genomic Program That Promotes a Neuronal Warburg Effect.突触活动驱动一个促进神经元瓦伯格效应的基因组程序。
J Biol Chem. 2017 Mar 31;292(13):5183-5194. doi: 10.1074/jbc.M116.761106. Epub 2017 Feb 14.
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Imaging brain aerobic glycolysis as a marker of synaptic plasticity.将脑有氧糖酵解成像作为突触可塑性的标志物。
Proc Natl Acad Sci U S A. 2016 Jun 28;113(26):7015-6. doi: 10.1073/pnas.1607423113. Epub 2016 Jun 17.
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Downregulation of Cdh1 signalling in spinal dorsal horn contributes to the maintenance of mechanical allodynia after nerve injury in rats.脊髓背角中Cdh1信号的下调有助于大鼠神经损伤后机械性异常性疼痛的维持。
Mol Pain. 2016 May 16;12. doi: 10.1177/1744806916647376. Print 2016.
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Aerobic glycolysis during brain activation: adrenergic regulation and influence of norepinephrine on astrocytic metabolism.大脑激活过程中的有氧糖酵解:肾上腺素能调节及去甲肾上腺素对星形胶质细胞代谢的影响。
J Neurochem. 2016 Jul;138(1):14-52. doi: 10.1111/jnc.13630. Epub 2016 Jun 10.
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Geissoschizine methyl ether protects oxidative stress-mediated cytotoxicity in neurons through the 'Neuronal Warburg Effect'.盖苏西嗪甲醚通过“神经元瓦伯格效应”保护神经元免受氧化应激介导的细胞毒性。
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PFKFB3-mediated glycolysis is involved in reactive astrocyte proliferation after oxygen-glucose deprivation/reperfusion and is regulated by Cdh1.磷酸果糖激酶-2/果糖-2,6-二磷酸酶3(PFKFB3)介导的糖酵解参与氧糖剥夺/复灌注后反应性星形胶质细胞的增殖,并受细胞分裂周期蛋白1(Cdh1)调控。
Neurochem Int. 2015 Dec;91:26-33. doi: 10.1016/j.neuint.2015.10.006. Epub 2015 Oct 21.
8
Alleviating neuropathic pain mechanical allodynia by increasing Cdh1 in the anterior cingulate cortex.通过增加前扣带回皮质中的Cdh1来减轻神经性疼痛机械性异常性疼痛。
Mol Pain. 2015 Sep 12;11:56. doi: 10.1186/s12990-015-0058-6.
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TIGAR regulates glycolysis in ischemic kidney proximal tubules.TIGAR调节缺血性肾近端小管中的糖酵解。
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10
Techniques to monitor glycolysis.监测糖酵解的技术。
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APC-Cdh1 通过调节糖酵解和磷酸戊糖途径调控氧糖剥夺复灌后神经元凋亡。

APC-Cdh1 Regulates Neuronal Apoptosis Through Modulating Glycolysis and Pentose-Phosphate Pathway After Oxygen-Glucose Deprivation and Reperfusion.

机构信息

Department of Anesthesiology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, 1095 Jiefang Avenue, Wuhan, 430030, China.

出版信息

Cell Mol Neurobiol. 2019 Jan;39(1):123-135. doi: 10.1007/s10571-018-0638-x. Epub 2018 Nov 20.

DOI:10.1007/s10571-018-0638-x
PMID:30460429
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11469847/
Abstract

Anaphase-promoting complex (APC) with its coactivator Cdh1 is required to maintain the postmitotic state of neurons via degradation of Cyclin B1, which aims to prevent aberrant cell cycle entry that causes neuronal apoptosis. Interestingly, evidence is accumulating that apart from the cell cycle, APC-Cdh1 also involves in neuronal metabolism via modulating the glycolysis promoting enzyme, 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase-3 (PFKFB3). Here, we showed that under oxygen-glucose deprivation and reperfusion (OGD/R), APC-Cdh1 was decreased in primary cortical neurons. Likewise, the neurons exhibited enhanced glycolysis when oxygen supply was reestablished during reperfusion, which was termed as the "neuronal Warburg effect." In particular, the reperfused neurons showed elevated PFKFB3 expression in addition to a reduction in glucose 6-phosphate dehydrogenase (G6PD). Such changes directed neuronal glucose metabolism from pentose-phosphate pathway (PPP) to aerobic glycolysis compared to the normal neurons, resulting in increased ROS production and apoptosis during reperfusion. Pretreatment of neurons with Cdh1 expressing lentivirus before OGD could reverse this metabolic shift and attenuated ROS-induced apoptosis. However, the metabolism regulation and neuroprotection by Cdh1 under OGD/R condition could be blocked when co-transfecting neurons with Ken box-mut-PFKFB3 (which is APC-Cdh1 insensitive). Based on these data, we suggest that the Warburg effect may contribute to apoptotic mechanisms in neurons under OGD/R insult, and targeting Cdh1 may be a potential therapeutic strategy as both glucose metabolic regulator and apoptosis suppressor of neurons in brain injuries.

摘要

后期促进复合物(APC)与其共激活因子 Cdh1 通过降解细胞周期蛋白 B1 来维持神经元的有丝分裂后状态,这旨在防止导致神经元凋亡的异常细胞周期进入。有趣的是,有证据表明,除了细胞周期外,APC-Cdh1 还通过调节促进糖酵解的酶 6-磷酸果糖-2-激酶/果糖-2,6-二磷酸酶-3(PFKFB3)来参与神经元代谢。在这里,我们发现在氧葡萄糖剥夺和再灌注(OGD/R)下,原代皮质神经元中的 APC-Cdh1 减少。同样,当再灌注期间重新建立氧气供应时,神经元表现出增强的糖酵解,这被称为“神经元沃伯格效应”。特别是,再灌注神经元除了葡萄糖 6-磷酸脱氢酶(G6PD)减少外,还表现出 PFKFB3 表达升高。与正常神经元相比,这些变化将神经元的葡萄糖代谢从戊糖磷酸途径(PPP)引导到有氧糖酵解,导致再灌注期间 ROS 产生和凋亡增加。在 OGD 之前用表达 Cdh1 的慢病毒预处理神经元可以逆转这种代谢转变并减轻 ROS 诱导的凋亡。然而,当用 Ken 盒突变 PFKFB3(对 APC-Cdh1 不敏感)共转染神经元时,Cdh1 在 OGD/R 条件下的代谢调节和神经保护作用可以被阻断。基于这些数据,我们认为沃伯格效应可能有助于 OGD/R 损伤下神经元的凋亡机制,而靶向 Cdh1 可能是一种潜在的治疗策略,作为大脑损伤中神经元的葡萄糖代谢调节剂和凋亡抑制剂。