Suppr超能文献

羟脯氨酸的代谢、营养和氧化还原信号

Metabolism, Nutrition, and Redox Signaling of Hydroxyproline.

机构信息

1 State Key Laboratory of Animal Nutrition, China Agricultural University , Beijing, China .

2 Hubei Collaborative Innovation Center for Animal Nutrition and Feed Safety, Hubei Key Laboratory of Animal Nutrition and Feed Science, Wuhan Polytechnic University , Wuhan, China .

出版信息

Antioxid Redox Signal. 2019 Feb 1;30(4):674-682. doi: 10.1089/ars.2017.7338. Epub 2017 Oct 30.

Abstract

SIGNIFICANCE

Hydroxyproline is a structurally and physiologically important imino acid in animals. It is provided from diets and endogenous synthesis, and its conversion into glycine enhances the production of glutathione, DNA, heme, and protein. Furthermore, oxidation of hydroxyproline by hydroxyproline oxidase (OH-POX) plays an important role in cell antioxidative reactions, survival, and homeostasis. Understanding the mechanisms whereby hydroxyproline participates in metabolism and cell signaling can improve the nutrition and health of animals and humans. Recent Advances: Hydroxyproline is highly abundant in milk and is utilized for renal synthesis of glycine to support neonatal growth, development, and survival. The oxidation of hydroxyproline by mitochondrial OH-POX generates reactive oxygen species (ROS). Enhanced ROS production contributes to the regulation of oxidative defense, apoptosis, angiogenesis, tumorigenesis, hypoxic responses, and cell survival in animals.

CRITICAL ISSUES

Although dietary hydroxyproline enters the portal circulation, its utilization by the portal-drained viscera is unknown. Pathways for hydroxyproline metabolism and their regulation at the molecular, cellular, and whole-body levels remain to be defined. Furthermore, the mechanisms responsible for hydroxyproline-derived ROS and related metabolites to induce cell survival or apoptosis are unknown.

FUTURE DIRECTIONS

Interorgan metabolism of hydroxyproline (including synthesis, catabolism, and flux) in animals must be quantified using isotope technologies. Efforts should also be directed toward studying dietary, hormonal, and epigenetic regulation of OH-POX expression at transcriptional and translational levels. Another emerging research need is to understand the roles of cellular redox and signaling networks involving both ROS and Δ-pyrroline-3-hydroxy-5-carboxylate in nutrition, health, and disease.

摘要

意义

羟脯氨酸是动物体内结构和生理上重要的亚氨基酸。它可以从饮食和内源性合成中获得,其转化为甘氨酸可以增强谷胱甘肽、DNA、血红素和蛋白质的生成。此外,羟脯氨酸氧化酶(OH-POX)氧化羟脯氨酸在细胞抗氧化反应、存活和体内平衡中起着重要作用。了解羟脯氨酸参与代谢和细胞信号转导的机制可以改善动物和人类的营养和健康。

最新进展

羟脯氨酸在牛奶中含量丰富,可用于肾脏合成甘氨酸,以支持新生儿的生长、发育和存活。线粒体 OH-POX 氧化羟脯氨酸会产生活性氧(ROS)。增强的 ROS 生成有助于调节氧化防御、细胞凋亡、血管生成、肿瘤发生、缺氧反应和动物细胞存活。

关键问题

尽管饮食中的羟脯氨酸进入门静脉循环,但尚不清楚其被门脉引流内脏利用的情况。羟脯氨酸代谢的途径及其在分子、细胞和全身水平的调节仍有待确定。此外,羟脯氨酸衍生的 ROS 和相关代谢物诱导细胞存活或凋亡的机制尚不清楚。

未来方向

必须使用同位素技术定量研究动物体内羟脯氨酸的器官间代谢(包括合成、分解代谢和通量)。还应努力研究 OH-POX 表达在转录和翻译水平上的饮食、激素和表观遗传调控。另一个新出现的研究需求是了解涉及 ROS 和 Δ-吡咯啉-3-羟-5-羧酸的细胞氧化还原和信号转导网络在营养、健康和疾病中的作用。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验