精氨酸
野猪
精子
精子发生
内分泌学
内科学
生物
氧化应激
内质网
男科
热应力
精液
附睾
氨基酸
化学
未折叠蛋白反应
精液质量
新陈代谢
作者
Xiao Lin,Kun Wu,Jingchang Ren,Yan Lin,Bin Feng,Lianqiang Che,Zhengfeng Fang,Shengyu Xu,Lun Hua,Guangmang Liu,Xiaojun Jiang,Jian Li,De Wu,Yan Lin
出处
期刊:Animals
[Multidisciplinary Digital Publishing Institute]
日期:2026-08-27
卷期号:16 (17): 2682-2682
摘要
Heat stress compromises male reproductive function in livestock and other mammals. Arginine is a conditionally essential amino acid involved in metabolic regulation; however, its protective effects on the male reproductive system under heat stress remain unclear. Using a heat-stressed Rongchang boar model, this study aimed to explore the possible mechanism of dietary arginine supplementation on sperm quality and testicular function. Twenty-four Rongchang boars were assigned to three treatments: thermoneutral control (CON), heat-stressed control (HS), or heat-stressed treatment supplemented with 0.8% dietary arginine (HA). Results showed that heat stress reduced feed intake, body weight, sperm viability, sperm concentration, and sperm motion parameters (p < 0.05), accompanied by testicular histological damage. However, arginine supplementation improved sperm viability and straight-line velocity (p < 0.05), with partial preservation of testicular morphology. Furthermore, single-cell RNA sequencing revealed heat stress-associated changes in germ-cell composition and enrichment of autophagy-related pathways. Transmission electron microscopy and qRT-PCR showed endoplasmic reticulum swelling, autophagic vesicle accumulation, and increased expression of GABARAPL1, ULK1, BECN1, and CALM3 in heat-stressed testes (p < 0.05); these alterations were attenuated by arginine supplementation, as indicated by reduced ULK1 and BECN1 expression (p < 0.05). Metabolomic and targeted analyses indicated improved circulating arginine availability and reshaped testicular arginine-related amino acid/polyamine metabolism after arginine supplementation (p < 0.05). Overall, dietary arginine supplementation alleviated heat stress-induced testicular dysfunction, which was accompanied by alterations in arginine-related metabolic regulation and autophagy-associated cellular stress responses.
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