内分泌学
内科学
认知
生物
转录因子
下调和上调
海马结构
糖尿病
海马体
2型糖尿病
基因表达
酶
基因
化学
细胞凋亡
功能(生物学)
突变体
碳水化合物代谢
封锁
乳酸脱氢酶
病理生理学
新陈代谢
肽
胰岛素
生物化学
细胞生物学
刺激
认知功能衰退
神经保护
神经科学
医学
作者
Jingxi Xu,Xing Yang,Jingxue Cao,Yuqi Hao,Rongrong Nie,Qiongsui Zhong,Y Gao,Ya Hui,Liuyu Kuang,Yuanmei Zhong,Biwen Mo,Xiaoyun Zeng,Tianpeng Zheng
出处
期刊:Science Signaling
[American Association for the Advancement of Science]
日期:2026-04-14
卷期号:19 (933): eadx4313-eadx4313
标识
DOI:10.1126/scisignal.adx4313
摘要
The high glucose levels characteristic of diabetes can lead to increases in glucose metabolism through the process of glycolysis, resulting in greater production of lactate and in a monosaccharide-based posttranslational modification called O-GlcNAcylation. Here, we identified O-GlcNAcylation and lactate production as the molecular mechanisms underlying high glucose–induced cognitive impairment, a prevalent complication of diabetes. A prospective observational study revealed that elevated plasma concentrations of lactate were an independent risk factor for predicting mild cognitive impairment in patients with diabetes. High-glucose treatment of mouse hippocampal neurons increased the O-GlcNAcylation of the transcription factor Creb3, which stabilized the protein by preventing its ubiquitination. The increase in Creb3 subsequently up-regulated the expression of the downstream target gene Ldha , which encodes the enzyme lactate dehydrogenase. As a result, lactate production was increased during glycolysis, triggering neuronal apoptosis and cognitive dysfunction in mouse models of type 1 and 2 diabetes. Expression of a Creb3 mutant that could not be O-GlcNAcylated at Ser 325 or competitive blockade of the O-GlcNAcylation of Ser 325 in Creb3 with a short peptide alleviated these effects. This study elucidates a mechanistic link between high glucose–induced Creb3 O-GlcNAcylation and Ldha-mediated lactate production, offering a potential therapeutic strategy for managing diabetes-related cognitive dysfunction.
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