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生物强化细菌:富硒微生物在提高动物硒吸收中的作用——综述

Biofortified Bacteria: The Role of Selenium-Enriched Microorganisms in Enhancing Animal Selenium Uptake-A Review.

作者信息

Muhammad Aliyu Ibrahim, Dalia Abd Alla Mohamed, Hemly Nur Izzah Mohd, Zainudin Nurafiqah Najwa, Samsudin Anjas Asmara

机构信息

Department of Animal Science, Faculty of Agriculture, Universiti Putra Malaysia, Serdang, Malaysia.

Department of Animal Science, Faculty of Agriculture, Federal University, Dutse, Jigawa State, Nigeria.

出版信息

J Anim Physiol Anim Nutr (Berl). 2025 Jul 17. doi: 10.1111/jpn.70001.

Abstract

Selenium (Se) is an essential micronutrient involved in numerous physiological processes, including antioxidant defence, immune regulation and reproductive health. While inorganic Se sources have traditionally been used to supplement animal diets, organic forms such as selenomethionine (SeMet) and selenocysteine (SeCys) are increasingly preferred due to their superior bioavailability, retention and biological efficacy. This review explores the emerging potential of Se-enriched microorganisms, particularly bacteria, as a novel and sustainable strategy for organic Se supplementation in livestock (poultry and ruminant) nutrition. Recent advances in genetic engineering and synthetic biology have enabled the development of engineered bacterial strains capable of enhancing Se uptake, transformation and accumulation. These microbial platforms can biosynthesise a wide range of bioavailable Se compounds, including SeMet, SeCys, Se-(methyl)selenocysteine and nano-Se, which are more efficiently incorporated into animal tissues. Engineered bacteria can also be tailored through modular genetic circuits, Se-responsive biosensors and controlled biotransformation pathways to produce high-value Se species for diverse applications in animal agriculture, biomedicine and environmental remediation. However, key challenges remain, including optimizing strain selection, fermentation processes, biosafety, regulatory compliance and demonstrating efficacy through long-term feeding trials under varied conditions. Addressing these challenges is essential for translating laboratory success into practical and scalable applications. A concerted research effort is needed to explore the untapped potential of Se-enriched bacteria, refine production platforms and evaluate their impact on animal performance, immune function, product quality and environmental Se management. With interdisciplinary collaboration and technological innovation, Se-enriched bacteria could play a transformative role in advancing precision nutrition, improving animal and human health and mitigating global Se deficiencies more safely and sustainably.

摘要

硒(Se)是一种必需的微量营养素,参与众多生理过程,包括抗氧化防御、免疫调节和生殖健康。虽然传统上使用无机硒源来补充动物日粮,但由于其具有更高的生物利用度、保留率和生物学功效,诸如硒代蛋氨酸(SeMet)和硒代半胱氨酸(SeCys)等有机形式越来越受到青睐。本综述探讨了富硒微生物,特别是细菌,作为家畜(家禽和反刍动物)营养中有机硒补充的一种新型可持续策略的新潜力。基因工程和合成生物学的最新进展使得能够开发出能够增强硒吸收、转化和积累的工程菌株。这些微生物平台可以生物合成多种生物可利用的硒化合物,包括SeMet、SeCys、Se-(甲基)硒代半胱氨酸和纳米硒,它们能更有效地整合到动物组织中。工程细菌还可以通过模块化遗传电路、硒响应生物传感器和可控生物转化途径进行定制,以生产高价值的硒物种,用于动物农业、生物医学和环境修复等多种应用。然而,关键挑战仍然存在,包括优化菌株选择、发酵过程、生物安全性、法规合规性以及通过在不同条件下进行长期喂养试验来证明其功效。应对这些挑战对于将实验室成果转化为实际的可扩展应用至关重要。需要共同开展研究工作,以探索富硒细菌的未开发潜力,完善生产平台,并评估它们对动物性能、免疫功能、产品质量和环境硒管理的影响。通过跨学科合作和技术创新,富硒细菌可以在推进精准营养、改善动物和人类健康以及更安全、可持续地缓解全球硒缺乏方面发挥变革性作用。

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