Institute for Genome Stability in Ageing and Disease, Medical Faculty, University of Cologne, Cologne, Germany.
Cologne Excellence Cluster for Cellular Stress Responses in Ageing-Associated Diseases (CECAD), Center for Molecular Medicine Cologne (CMMC), University of Cologne, Cologne, Germany.
Aging Cell. 2021 Mar;20(3):e13320. doi: 10.1111/acel.13320. Epub 2021 Mar 3.
Aging clocks dissociate biological from chronological age. The estimation of biological age is important for identifying gerontogenes and assessing environmental, nutritional, or therapeutic impacts on the aging process. Recently, methylation markers were shown to allow estimation of biological age based on age-dependent somatic epigenetic alterations. However, DNA methylation is absent in some species such as Caenorhabditis elegans and it remains unclear whether and how the epigenetic clocks affect gene expression. Aging clocks based on transcriptomes have suffered from considerable variation in the data and relatively low accuracy. Here, we devised an approach that uses temporal scaling and binarization of C. elegans transcriptomes to define a gene set that predicts biological age with an accuracy that is close to the theoretical limit. Our model accurately predicts the longevity effects of diverse strains, treatments, and conditions. The involved genes support a role of specific transcription factors as well as innate immunity and neuronal signaling in the regulation of the aging process. We show that this binarized transcriptomic aging (BiT age) clock can also be applied to human age prediction with high accuracy. The BiT age clock could therefore find wide application in genetic, nutritional, environmental, and therapeutic interventions in the aging process.
衰老时钟将生物学年龄与实际年龄区分开来。估计生物学年龄对于识别衰老基因以及评估环境、营养或治疗对衰老过程的影响非常重要。最近,研究表明,基于年龄相关的体细胞表观遗传改变,可以通过甲基化标记来估计生物学年龄。然而,一些物种(如秀丽隐杆线虫)中不存在 DNA 甲基化,并且尚不清楚表观遗传时钟是否以及如何影响基因表达。基于转录组的衰老时钟存在数据差异较大和准确性相对较低的问题。在这里,我们设计了一种方法,该方法使用秀丽隐杆线虫转录组的时间缩放和二值化来定义一个基因集,该基因集可以以接近理论极限的准确性预测生物学年龄。我们的模型可以准确预测不同菌株、处理和条件的寿命效应。所涉及的基因支持特定转录因子以及先天免疫和神经元信号在衰老过程中的调节作用。我们表明,这种二值化转录组衰老(BiT age)时钟也可以高精度地应用于人类年龄预测。因此,BiT age 时钟可以广泛应用于衰老过程中的遗传、营养、环境和治疗干预。