间歇性禁食改变了转录因子的昼夜转录组图谱。

IF 3.5 2区 生物学 Q3 CELL BIOLOGY
Molecular and Cellular Biochemistry Pub Date : 2025-01-01 Epub Date: 2024-03-25 DOI:10.1007/s11010-024-04928-y
Min Fu, Siyu Lu, Lijun Gong, Yiming Zhou, Fang Wei, Zhigui Duan, Rong Xiang, Frank J Gonzalez, Guolin Li
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引用次数: 0

摘要

间歇性禁食仍是一种安全有效的策略,可改善各种与年龄有关的疾病,但其具体机制尚未完全明了。考虑到转录因子(TFs)决定着对环境信号的反应,在此,我们对采用五种不同喂养方案的小鼠的四个代谢组织的600个样本进行了昼夜表达谱分析,以提供生物空间、时间和喂养方案中的TFs图谱。结果显示,1218 种 TFs 在进食小鼠体内呈现出组织特异性和时间表达谱,其中 974 种 TFs 至少在一种组织中显示出显著的振荡。间歇性禁食引发了超过 90% 的 TFs(1234 种 TFs 中的 1161 种)在体内某处发生振荡,并重新分配了它们的组织特异性表达。单轮禁食通常会促进TF的表达,尤其是在骨骼肌和脂肪组织中,而间歇性禁食则主要抑制TF的表达。间歇性禁食下调了衰老途径,上调了抑制哺乳动物雷帕霉素靶标(mTOR)的途径。间歇性禁食改变了TFs的昼夜转录组图谱,而mTOR抑制可能协调了间歇性禁食引起的健康改善。该图集为了解TFs和间歇性禁食如何促进昼夜节律振荡并带来特定的健康益处提供了参考和资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Intermittent fasting shifts the diurnal transcriptome atlas of transcription factors.

Intermittent fasting shifts the diurnal transcriptome atlas of transcription factors.

Intermittent fasting remains a safe and effective strategy to ameliorate various age-related diseases, but its specific mechanisms are not fully understood. Considering that transcription factors (TFs) determine the response to environmental signals, here, we profiled the diurnal expression of 600 samples across four metabolic tissues sampled every 4 over 24 h from mice placed on five different feeding regimens to provide an atlas of TFs in biological space, time, and feeding regimen. Results showed that 1218 TFs exhibited tissue-specific and temporal expression profiles in ad libitum mice, of which 974 displayed significant oscillations at least in one tissue. Intermittent fasting triggered more than 90% (1161 in 1234) of TFs to oscillate somewhere in the body and repartitioned their tissue-specific expression. A single round of fasting generally promoted TF expression, especially in skeletal muscle and adipose tissues, while intermittent fasting mainly suppressed TF expression. Intermittent fasting down-regulated aging pathway and upregulated the pathway responsible for the inhibition of mammalian target of rapamycin (mTOR). Intermittent fasting shifts the diurnal transcriptome atlas of TFs, and mTOR inhibition may orchestrate intermittent fasting-induced health improvements. This atlas offers a reference and resource to understand how TFs and intermittent fasting may contribute to diurnal rhythm oscillation and bring about specific health benefits.

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来源期刊
Molecular and Cellular Biochemistry
Molecular and Cellular Biochemistry 生物-细胞生物学
CiteScore
8.30
自引率
2.30%
发文量
293
审稿时长
1.7 months
期刊介绍: Molecular and Cellular Biochemistry: An International Journal for Chemical Biology in Health and Disease publishes original research papers and short communications in all areas of the biochemical sciences, emphasizing novel findings relevant to the biochemical basis of cellular function and disease processes, as well as the mechanics of action of hormones and chemical agents. Coverage includes membrane transport, receptor mechanism, immune response, secretory processes, and cytoskeletal function, as well as biochemical structure-function relationships in the cell. In addition to the reports of original research, the journal publishes state of the art reviews. Specific subjects covered by Molecular and Cellular Biochemistry include cellular metabolism, cellular pathophysiology, enzymology, ion transport, lipid biochemistry, membrane biochemistry, molecular biology, nuclear structure and function, and protein chemistry.
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