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免疫营养:通过氧化还原平衡用氨基酸促进鱼类肠道黏膜免疫反应。

Immunonutrition: facilitating mucosal immune response in teleost intestine with amino acids through oxidant-antioxidant balance.

机构信息

Comparative Immunogenetics Laboratory Department of Veterinary Pathobiology, Texas A&M University, College Station, TX, United States.

Amino Acid Laboratory, Department of Animal Science, Texas A&M University, College Station, TX, United States.

出版信息

Front Immunol. 2023 Sep 29;14:1241615. doi: 10.3389/fimmu.2023.1241615. eCollection 2023.

Abstract

Comparative animal models generate fundamental scientific knowledge of immune responses. However, these studies typically are conducted in mammals because of their biochemical and physiological similarity to humans. Presently, there has been an interest in using teleost fish models to study intestinal immunology, particularly intestinal mucosa immune response. Instead of targeting the pathogen itself, a preferred approach for managing fish health is through nutrient supplementation, as it is noninvasive and less labor intensive than vaccine administrations while still modulating immune properties. Amino acids (AAs) regulate metabolic processes, oxidant-antioxidant balance, and physiological requirements to improve immune response. Thus, nutritionists can develop sustainable aquafeeds through AA supplementation to promote specific immune responses, including the intestinal mucosa immune system. We propose the use of dietary supplementation with functional AAs to improve immune response by discussing teleost fish immunology within the intestine and explore how oxidative burst is used as an immune defense mechanism. We evaluate immune components and immune responses in the intestine that use oxidant-antioxidant balance through potential selection of AAs and their metabolites to improve mucosal immune capacity and gut integrity. AAs are effective modulators of teleost gut immunity through oxidant-antioxidant balance. To incorporate nutrition as an immunoregulatory means in teleost, we must obtain more tools including genomic, proteomic, nutrition, immunology, and macrobiotic and metabonomic analyses, so that future studies can provide a more holistic understanding of the mucosal immune system in fish.

摘要

比较动物模型产生了免疫反应的基本科学知识。然而,由于与人类在生化和生理上的相似性,这些研究通常在哺乳动物中进行。目前,人们对使用硬骨鱼模型来研究肠道免疫学,特别是肠道黏膜免疫反应产生了兴趣。与针对病原体本身的方法不同,通过营养补充来管理鱼类健康是一种首选方法,因为它是非侵入性的,比疫苗接种劳动强度小,同时仍然可以调节免疫特性。氨基酸(AAs)调节代谢过程、氧化还原平衡和生理需求,以改善免疫反应。因此,营养学家可以通过 AA 补充来开发可持续的水产饲料,以促进特定的免疫反应,包括肠道黏膜免疫系统。我们提出使用膳食补充功能性 AA 来改善免疫反应,讨论硬骨鱼肠道内的免疫学,并探讨氧化爆发如何作为一种免疫防御机制。我们评估了通过潜在选择 AA 及其代谢物来改善黏膜免疫能力和肠道完整性的肠道中的免疫成分和免疫反应,以实现氧化还原平衡。AA 通过氧化还原平衡有效调节硬骨鱼肠道免疫。为了将营养作为硬骨鱼的免疫调节手段,我们必须获得更多的工具,包括基因组、蛋白质组、营养、免疫学、宏观生物学和代谢组学分析,以便未来的研究能够更全面地了解鱼类的黏膜免疫系统。

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