Department of Eye and Vision Science, Institute of Life Course and Medical Sciences, University of Liverpool, Liverpool L7 8TX, UK.
Department of Musculoskeletal Biology, Institute of Life Course and Medical Sciences, University of Liverpool, Liverpool L7 8TX, UK.
Int J Mol Sci. 2021 Dec 15;22(24):13457. doi: 10.3390/ijms222413457.
DNA methylation age (DNAm age) estimation is a powerful biomarker of human ageing. To date, epigenetic clocks have not been evaluated in age-related macular degeneration (AMD). Here, we perform genome-wide DNA methylation analyses in blood of AMD patients with a documented smoking history (14 AMD, 16 Normal), identifying loci of differential methylation (DML) with a relaxed -value criterion ( ≤ 10). We conduct DNAm age analyses using the Horvath-multi tissue, Hannum and Skin & Blood epigenetic clocks in both blood and retinal pigment epithelium (RPE). We perform Ingenuity Pathway Analysis Causal Network Analysis (IPA CNA) on the topmost significantly differentially methylated CpG probes in blood and RPE. Results show poor performance of epigenetic clocks in RPE. Epigenetic age acceleration (EAA) was not observed in AMD. However, we observe positive EAA in blood of smokers, and in smokers with AMD. DML analysis revealed hypomethylation at cg04953735 within ( = 6.51 × 10; Δβ = -11.95%). IPA CNA in the RPE also identified as the putative master regulator, predicted to be inhibited in AMD. In conclusion, this is the first study evaluating an association of epigenetic ageing in AMD. We posit a role for as a common master regulator of methylation changes in the RPE in AMD.
DNA 甲基化年龄(DNAm 年龄)估算是人类衰老的有力生物标志物。迄今为止,表观遗传时钟尚未在年龄相关性黄斑变性(AMD)中进行评估。在这里,我们对有吸烟史记录的 AMD 患者(14 名 AMD,16 名正常)的血液进行了全基因组 DNA 甲基化分析,使用宽松的 - 值标准(≤10)确定了差异甲基化(DML)的位置。我们使用 Horvath-多组织、Hannum 和皮肤和血液表观遗传时钟在血液和视网膜色素上皮(RPE)中进行 DNAm 年龄分析。我们对血液和 RPE 中差异甲基化最显著的 CpG 探针进行了 IPA 通路分析因果网络分析(IPA CNA)。结果表明,表观遗传时钟在 RPE 中的性能较差。在 AMD 中未观察到表观遗传年龄加速(EAA)。然而,我们观察到吸烟者和 AMD 吸烟者的血液中存在正的 EAA。DML 分析显示 cg04953735 内的低甲基化( = 6.51×10;Δβ=-11.95%)。RPE 中的 IPA CNA 还确定了作为潜在的主调节因子,预测在 AMD 中受到抑制。总之,这是第一项评估 AMD 中表观遗传衰老相关性的研究。我们假设 作为 AMD 中 RPE 中甲基化变化的共同主调节因子的作用。