哺乳动物系统中植物源 miRNA 的跨领域调控

Linpu Yang, Han Feng
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摘要

MicroRNAs (miRNAs)是一种小的非编码RNA分子,广泛分布于各种生物体中,是基因表达的关键调控因子。值得注意的是,植物源性mirna已被证明在哺乳动物系统中具有独特的生物活性和一定的稳定性,从而促进了它们跨界调节基因表达的能力。虽然有大量证据支持植物源性mirna对哺乳动物细胞的调节,但仍有几个问题没有得到解答。具体而言,对植物mirna的稳定性和转运机制及其在哺乳动物中基因表达的跨界调控的全面研究仍有待完成。本文综述了植物mirna在哺乳动物组织和循环中的来源、加工和功能机制,并强调了植物mirna对哺乳动物消化和循环系统的抵抗力。此外,我们还介绍了四种众所周知的植物mirna,它们在哺乳动物系统中的功能和机制已被广泛研究。通过深入研究这些方面,我们的目标是提供对这个有趣领域的基本理解,并阐明植物mirna与哺乳动物生物学之间复杂的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cross‐kingdom regulation by plant‐derived miRNAs in mammalian systems
MicroRNAs (miRNAs) are small noncoding RNA molecules ubiquitously distributed across diverse organisms, serving as pivotal regulators of genetic expression. Notably, plant‐derived miRNAs have been demonstrated to have unique bioactivity and certain stability in mammalian systems, thereby facilitating their capacity for cross‐kingdom modulation of gene expression. While there is substantial evidence supporting the regulation of mammalian cells by plant‐derived miRNAs, several questions remain unanswered. Specifically, a comprehensive investigation of the mechanisms underlying the stability and transport of plant miRNAs and their cross‐kingdom regulation of gene expression in mammals remains to be done. In this review, we summarized the origin, processing, and functional mechanisms of plant miRNAs in mammalian tissues and circulation, emphasizing their greater resistance to mammalian digestion and circulation systems compared to animal miRNAs. Additionally, we introduce four well‐known plant miRNAs that have been extensively studied for their functions and mechanisms in mammalian systems. By delving into these aspects, we aim to offer a fundamental understanding of this intriguing field and shed light on the complex interactions between plant miRNAs and mammalian biology.
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