Hong Seong-Eui, Heo Hyoung-Sam, Kim Dae Hyun, Kim Min-Sun, Kim Chul Hong, Lee Jaewon, Yoo Mi-Ae, Yu Byung Pal, Leeuwenburgh Christiaan, Chung Hae Young
Department of Life Science, Gwangju Institute of Science and Technology, Gwangju, Republic of Korea.
Age (Dordr). 2010 Mar;32(1):15-30. doi: 10.1007/s11357-009-9106-3. Epub 2009 Jul 10.
Although systems biology is a perfect framework for investigating system-level declines during aging, only a few reports have focused on a comprehensive understanding of system-level changes in the context of aging systems. The present study aimed to understand the most sensitive biological systems affected during aging and to reveal the systems underlying the crosstalk between aging and the ability of calorie restriction (CR) to effectively slow-down aging. We collected and analyzed 478 aging- and 586 CR-related mouse genes. For the given genes, the biological systems that are significantly related to aging and CR were examined according to three aspects. First, a global characterization by Gene Ontology (GO) was performed, where we found that the transcriptome (a set of genes) for both aging and CR were strongly related in the immune response, lipid metabolism, and cell adhesion functions. Second, the transcriptional modularity found in aging and CR was evaluated by identifying possible functional modules, sets of genes that show consistent expression patterns. Our analyses using the given functional modules, revealed systemic interactions among various biological processes, as exemplified by the negative relation shown between lipid metabolism and the immune response at the system level. Third, transcriptional regulatory systems were predicted for both the aging and CR transcriptomes. Here, we suggest a systems biology framework to further understand the most important systems as they age.
尽管系统生物学是研究衰老过程中系统水平衰退的理想框架,但只有少数报告关注于在衰老系统背景下对系统水平变化的全面理解。本研究旨在了解衰老过程中受影响最敏感的生物系统,并揭示衰老与卡路里限制(CR)有效延缓衰老能力之间相互作用的潜在系统。我们收集并分析了478个与衰老相关和586个与CR相关的小鼠基因。对于给定的基因,从三个方面研究了与衰老和CR显著相关的生物系统。首先,通过基因本体论(GO)进行全局表征,我们发现衰老和CR的转录组(一组基因)在免疫反应、脂质代谢和细胞粘附功能方面密切相关。其次,通过识别可能的功能模块(显示一致表达模式的基因集)来评估衰老和CR中发现的转录模块性。我们使用给定的功能模块进行分析,揭示了各种生物过程之间的系统相互作用,例如脂质代谢与系统水平免疫反应之间的负相关关系。第三,对衰老和CR转录组的转录调控系统进行了预测。在此,我们提出一个系统生物学框架,以进一步了解随着年龄增长最重要的系统。