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生态学杂志 ›› 2026, Vol. 45 ›› Issue (6): 1900-1911.doi: 10.13292/j.1000-4890.202606.005

• 研究报告 • 上一篇    下一篇

基于转录组学解析长期禁食对雌性日本鹌鹑能量代谢的影响

郑祎,章晨晨,陈嘉琪,陈杉杉,林怡,项涵,刘金文,柳劲松,李铭*


  

  1. (温州大学生命与环境科学学院, 浙江温州 325035)

  • 出版日期:2026-06-10 发布日期:2026-12-01

Transcriptomics-based analysis of the effects of longterm fasting on energy metabolism in female Japanese quail (Coturnix japonica).

ZHENG Yi, ZHANG Chenchen, CHEN Jiaqi, CHEN Shanshan, LIN Yi, XIANG Han, LIU Jinwen, LIU Jinsong, LI Ming*   

  1. (College of Life and Environmental Sciences, Wenzhou University, Wenzhou 325035, Zhejiang, China).

  • Online:2026-06-10 Published:2026-12-01

摘要: 食物摄入不足时通常会降低动物的能量消耗水平从而延长存活时间,然而该反应的分子机制尚不完全清楚。本研究设置4个组别:对照组(禁食0天)、禁食Ⅰ期组(禁食1天)、禁食II期组(禁食4天)和禁食Ⅲ期组(禁食6~11天),对受试动物——雌性日本鹌鹑在不同禁食阶段的基础代谢相关指标和肝脏转录组学进行检测,探究长期禁食对雌性日本鹌鹑能量代谢的影响。结果表明:禁食显著降低雌性日本鹌鹑的体重、禁食以后雌性日本鹌鹑的单日体重损失率呈现快-慢-快的“U”型规律;禁食以后无论是个体水平基础代谢率(basal metabolic rate, BMR)还是单位体重BMR均表现为Ⅱ期组显著低于对照;禁食显著降低了雌性日本鹌鹑血清中的葡萄糖水平,显著升高了血清中的尿酸水平,但对血清中的甘油三酯水平没有显著影响。KEGG富集分析的结果显示:与对照组相比,禁食Ⅰ期组显著上调的通路(13条)以三大营养物质分解代谢为主,如碳水化合物分解代谢通路(7条)、脂质分解代谢通路(2条)和蛋白质分解代谢通路(3条);禁食Ⅱ期组显著上调的通路(8条)则聚焦于蛋白质/氨基酸代谢(5条),包括蛋白质降解通路(1条)和生糖氨基酸代谢通路(3条);而禁食Ⅲ期组主要有“自噬-动物”等13条通路显著上调。这些结果表明,长期禁食可诱导雌性日本鹌鹑能量代谢的显著降低。长期禁食对鸟类的三大营养物质代谢有显著影响:禁食以后糖类和脂类的分解代谢显著增强,蛋白质在Ⅰ期和Ⅱ期两个阶段分解代谢和合成代谢均显著增强,Ⅲ期以分解为主。此外,无论是与对照、Ⅰ期还是Ⅱ期相比较,Ⅲ期阶段的“自噬-动物”通路均显著上调,说明在持续的饥饿压力下,机体通过增强自噬的方式增加以蛋白质为主的代谢底物的循环利用,从而来抵抗外源性营养摄入缺失的威胁。本研究的发现为揭示鸟类在长期禁食条件下能量代谢的下调提供了分子通路层面的证据,同时也证实了自噬在维持机体能量平衡和稳态中的关键作用。


关键词: 雌性日本鹌鹑, 禁食, 转录组, 自噬, 基础代谢率

Abstract: When food intake is insufficient, the energy expenditure in animals is typically reduced to prolong survival. However, the molecular mechanisms regulating such response are not fully understood. To address this gap, we evaluated the basal metabolic indicators and conducted transcriptomic analyses to investigate the effects of prolonged fasting on energy metabolism in female Japanese quails. There were a control group (no fasting) and three fasted groups, namely fasting group Ⅰ, fasting group Ⅱ, and fasting group Ⅲ, which were fasted for 1, 4, and 6-11 days, respectively. The results showed that fasting significantly reduced body mass of the birds. The rate of daily body mass loss exhibited a U-shaped pattern-Symbol~Binitially rapid, then slowing, followed by an increase. Both the basal metabolic rate (BMR) at the whole-animal level and the mass-specific BMR were significantly lower in fasting group Ⅱ compared with the control group. Fasting significantly reduced serum glucose levels, did not affect serum triglyceride levels, and significantly increased serum uric acid levels. KEGG enrichment analysis provided insights into the pathways involved in the response to insufficient food intake. The analysis revealed significant upregulation of 13 pathways in fasting group I compared with the control group. These 13 pathways were primarily involved in the catabolism of the three macronutrients: carbohydrate (7 pathways), lipid (2 pathways), and protein (3 pathways). Similarly, in fasting group Ⅱ, eight pathways were upregulated, five of which were related to protein/amino acid metabolism, including one protein degradation pathway and three glucogenic amino acid metabolism pathways. As for fasting group Ⅲ, 13 pathways were significantly upregulated, including the ‘autophagy-animal’ pathway. These findings suggest that prolonged fasting induces a marked reduction in energy metabolism in female Japanese quails. Fasting alters the metabolism of all three major nutrient classes. Carbohydrate and lipid catabolism were significantly enhanced, while protein metabolism shows increased catabolic and anabolic activity during Phases I and Ⅱ, with catabolism predominating in Phase Ⅲ. In addition, compared with the control, Phase Ⅰ, and Phase Ⅱ, the ‘autophagy-animal’ pathway was significantly upregulated in Phase Ⅲ, suggesting that birds under sustained energy stress enhanced autophagy to recycle protein-derived substrates and compensated for the reduced nutrient intake. In conclusion, this study provides molecular-level evidence that long-term fasting downregulates energy metabolism in birds and highlights the critical role of autophagy in maintaining energy balance and physiological homeostasis.


Key words: female Japanese quail, fasting, transcriptome, autophagy, basal metabolic rate