Exploring cerebrospinal fluid metabolites, cognitive function, and brain atrophy: Insights from Mendelian randomization.

IF 1.6 4区 医学 Q2 MEDICINE, GENERAL & INTERNAL
Open Medicine Pub Date : 2025-08-04 eCollection Date: 2025-01-01 DOI:10.1515/med-2025-1237
Qian Liu, Ling-Bing Meng, Tian-Qi Qi, Ya-Qing Ma, Guo-Wei Liang
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引用次数: 0

Abstract

Disruption of cerebrospinal fluid (CSF) metabolites affects brain function and cognition, potentially altering the brain structure. To elucidate the causal relationships between CSF metabolites and the neurological outcomes, we conducted a two-sample Mendelian randomization analysis. Genome-wide association data from 689 individuals of European descent provided exposure levels for metabolites, analyzed alongside gene associations for cognitive performance (N  =  257,841), brain atrophy measures (cortical surface area and thickness; N  =  51,665), and hippocampal volume (N  =  33,536). Our analysis identified 30 metabolites exhibiting causal associations with brain atrophy and cognitive function: 20 linked to cognition and 10 to structural atrophy. Notably, butyrate correlated strongest with the cortical surface area, bilirubin with the cortical thickness, methionine sulfoxide with the hippocampal volume, threonate with cognitive performance, while oxidized Cys-gly, N6-succinyladenosine, and N-acetylglucosamine were linked to fluid intelligence, prospective memory, and reaction time, respectively. Pathway analyses revealed that butanoate and niacinamide/niacin ester metabolism are significantly associated with brain atrophy and cognitive performance. These findings position CSF metabolites as promising therapeutic targets for neurodegenerative diseases, providing a causal framework to prioritize interventions. Experimental studies building on this genetic evidence hold potential to accelerate the development of mechanism-driven therapies targeting metabolic pathways in neurodegeneration.

探索脑脊液代谢物、认知功能和脑萎缩:来自孟德尔随机化的见解。
脑脊液(CSF)代谢物的破坏影响脑功能和认知,可能改变脑结构。为了阐明脑脊液代谢物与神经预后之间的因果关系,我们进行了两样本孟德尔随机化分析。来自689名欧洲人后裔的全基因组关联数据提供了代谢物的暴露水平,并与认知能力(N = 257,841)、脑萎缩测量(皮质表面积和厚度;海马体积(N = 33,536)。我们的分析确定了30种代谢物与脑萎缩和认知功能有因果关系:20种与认知有关,10种与结构性萎缩有关。值得注意的是,丁酸盐与皮质表面积的相关性最强,胆红素与皮质厚度的相关性最强,蛋氨酸亚砜与海马体积的相关性最强,苏氨酸与认知能力的相关性最强,而氧化cysly、n6 -琥珀酸腺苷和n -乙酰氨基葡萄糖分别与流体智力、前瞻性记忆和反应时间的相关性最强。通路分析显示,丁酸盐和烟酰胺/烟酸酯代谢与脑萎缩和认知能力显著相关。这些发现将脑脊液代谢物定位为神经退行性疾病的有希望的治疗靶点,为优先干预提供了因果框架。基于这一遗传证据的实验研究有可能加速针对神经变性代谢途径的机制驱动疗法的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Open Medicine
Open Medicine Medicine-General Medicine
CiteScore
3.00
自引率
0.00%
发文量
153
审稿时长
20 weeks
期刊介绍: Open Medicine is an open access journal that provides users with free, instant, and continued access to all content worldwide. The primary goal of the journal has always been a focus on maintaining the high quality of its published content. Its mission is to facilitate the exchange of ideas between medical science researchers from different countries. Papers connected to all fields of medicine and public health are welcomed. Open Medicine accepts submissions of research articles, reviews, case reports, letters to editor and book reviews.
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