Methylome analysis of FTLD patients with TDP-43 pathology identifies epigenetic signatures specific to pathological subtypes

额颞叶变性 DNA甲基化 表观遗传学 生物 差异甲基化区 甲基化 CpG站点 C9orf72 遗传学 病理 基因 失智症 医学 疾病 基因表达 痴呆 三核苷酸重复扩增 等位基因
作者
Cristina T. Vicente,Tejasvi Niranjan,Elise Coopman,Júlia Faura,Sara Alidadiani,Claudia Schrauwen,Billie J. Matchett,Bavo Heeman,Marleen Van den Broeck,Wouter De Coster,Thuy Nguyen,Julie S. Lau,Saurabh Baheti,Tim De Pooter,Peter De Rijk,Mojca Stražišar,Matt Baker,Mariely DeJesus‐Hernandez,NiCole A. Finch,Cyril Pottier
出处
期刊:Molecular Neurodegeneration [BioMed Central]
卷期号:20 (1): 80-80 被引量:1
标识
DOI:10.1186/s13024-025-00869-2
摘要

BACKGROUND: In the last decade, the importance of DNA methylation in the functioning of the central nervous system has been highlighted through associations between methylation changes and differential expression of key genes involved in aging and neurodegenerative diseases. In frontotemporal lobar degeneration (FTLD), aberrant methylation has been reported in causal disease genes including GRN and C9orf72; however, the genome-wide contribution of epigenetic changes to the development of FTLD remains largely unexplored. METHODS: We performed reduced representation bisulfite sequencing of matched pairs of post-mortem tissue from frontal cortex (FCX) and cerebellum (CER) from pathologically confirmed FTLD patients with TDP-43 pathology (FTLD-TDP) further divided into five subtypes and including both sporadic and genetic forms (N = 25 pairs per group), and neuropathologically normal controls (N = 42 pairs). Case-control differential methylation analyses were performed, both at the individual CpG level, and in regions of grouped CpGs (differentially methylated regions; DMRs), either including all genomic locations or only gene promoters. Gene Ontology (GO) analyses were then performed using all differentially methylated genes in each group of sporadic patients. Finally, additional datasets were queried to prioritize candidate genes for follow-up. RESULTS: Using the largest FTLD-TDP DNA methylation dataset generated to date, we identified thousands of differentially methylated CpGs (FCX = 6,520; CER = 7,134) and several hundred DMRs in FTLD-TDP brains (FCX = 134; CER = 219). Of these, less than 10% are shared between pathological subgroups. Combining additional datasets, we identified, validated and replicated hypomethylation of CAMTA1 in TDP-A potentially also impacting additional genes in the locus. GO analysis further implicated DNA methylation in myelination and developmental processes, as well as important disease-relevant mechanisms with subtype specificity such as protein phosphorylation and DNA damage repair in TDP-A, cholesterol biosynthesis in TDP-B, and protein localization in TDP-C. CONCLUSIONS: We identify methylation changes in all FTLD-TDP patient groups and show that most changes are unique to a specific pathological FTLD-TDP subtype, suggesting that these subtypes not only have distinct transcriptomic and genetic signatures, but are also epigenetically distinct. Our study constitutes an invaluable resource to the community and highlights the need for further studies to profile additional epigenetic layers within each FTLD-TDP pathological subtype.
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