Analyses of widely targeted metabolic profiling reveal enhanced energy metabolism in well-developed testicular tissue of Hu sheep.

IF 1.9 2区 农林科学 Q2 AGRICULTURE, DAIRY & ANIMAL SCIENCE
Rongyu Yao, Peidi Zhao, Haiyu Ma, Wanhong Li, Xiuxiu Weng, Fadi Li, Xiangpeng Yue
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Abstract

Energy supply is crucial for testicular development. Nevertheless, the specific alterations in the energy metabolic pathways that affect testicular development have not been extensively investigated. This study aimed to investigate the variations in metabolites and alterations in energy metabolic pathways in the testes of Hu sheep with different developmental status at 6 months of age. Twelve rams with similar body weights but distinct testis developmental status were selected among 345 Hu sheep based on testis size and histomorphology results, and they were divided into the well-developed (L group, n = 6) and developmentally delayed group (S group, n = 6). A total of 660 metabolites were identified via widely targeted metabolic analysis. Among 148 differentially expressed metabolites, 78 were up-regulated and 70 were downregulated in the L group compared with the S group. Functional enrichment analysis indicated that a significant proportion of the identified differential metabolites was implicated in energy metabolism-related pathways. Moreover, the L group exhibited significantly higher expression levels of genes involved in glycolysis (GLTU8 and LDH), TCA (PDHA2, CS and IDH3G), gluconeogenesis (PCK1), pentose phosphate (G6PD), and fatty acid degradation (GK, ACSL1, FABP3, CPT1 and CTP2). The activity enzymes such as citrate synthase, pyruvate dehydrogenase, and lactate dehydrogenase also increased in the L group. In summary, this observation implied that the augmentation of energy metabolic pathways plays a crucial role in facilitating testicular development. The upregulation of energy metabolic pathways collectively facilitates the testicular development in Hu sheep.

广泛靶向代谢谱分析显示,在发育良好的湖羊睾丸组织中,能量代谢增强。
能量供应对睾丸发育至关重要。然而,影响睾丸发育的能量代谢途径的具体改变尚未得到广泛研究。本研究旨在探讨6月龄不同发育状态湖羊睾丸代谢产物及能量代谢途径的变化。根据睾丸大小和组织形态学结果,在345只湖羊中选择体重相近但睾丸发育状况不同的公羊12只,分为发育良好组(L组,n = 6)和发育迟缓组(S组,n = 6),通过广泛针对性的代谢分析,鉴定出660种代谢物。148种差异表达代谢物中,与S组相比,L组上调78种,下调70种。功能富集分析表明,鉴定的差异代谢物中有很大一部分涉及能量代谢相关途径。此外,L组糖酵解(GLTU8和LDH)、TCA (PDHA2、CS和IDH3G)、糖异生(PCK1)、戊糖磷酸(G6PD)和脂肪酸降解(GK、ACSL1、FABP3、CPT1和CTP2)相关基因的表达水平显著高于对照组。L组柠檬酸合成酶、丙酮酸脱氢酶和乳酸脱氢酶活性均有所升高。总之,这一观察结果表明,能量代谢途径的增加在促进睾丸发育中起着至关重要的作用。能量代谢途径的上调共同促进了湖羊睾丸的发育。
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来源期刊
Domestic animal endocrinology
Domestic animal endocrinology 农林科学-奶制品与动物科学
CiteScore
5.50
自引率
4.80%
发文量
58
审稿时长
31 days
期刊介绍: Domestic Animal Endocrinology publishes scientific papers dealing with the study of the endocrine physiology of domestic animal species. Those manuscripts utilizing other species as models for clinical or production problems associated with domestic animals are also welcome. Topics covered include: Classical and reproductive endocrinology- Clinical and applied endocrinology- Regulation of hormone secretion- Hormone action- Molecular biology- Cytokines- Growth factors
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