Review: Mechanism of herbivores synergistically metabolizing toxic plants through liver and intestinal microbiota

IF 3.9 3区 环境科学与生态学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Comparative Biochemistry and Physiology C-toxicology & Pharmacology Pub Date : 2024-04-20 DOI:10.1016/j.cbpc.2024.109925
Yuchen Tan, Kang An, Junhu Su
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Abstract

Interspecific interactions are central to ecological research. Plants produce toxic plant secondary metabolites (PSMs) as a defense mechanism against herbivore overgrazing, prompting their gradual adaptation to toxic substances for tolerance or detoxification. P450 enzymes in herbivore livers bind to PSMs, whereas UDP-glucuronosyltransferase and glutathione S-transferase increase the hydrophobicity of the bound PSMs for detoxification. Intestinal microorganisms such as Bacteroidetes metabolize cellulase and other macromolecules to break down toxic components. However, detoxification is an overall response of the animal body, necessitating coordination among various organs to detoxify ingested PSMs. PSMs undergo detoxification metabolism through the liver and gut microbiota, evidenced by increased signaling processes of bile acids, inflammatory signaling molecules, and aromatic hydrocarbon receptors. In this context, we offer a succinct overview of how metabolites from the liver and gut microbiota of herbivores contribute to enhancing metabolic PSMs. We focused mainly on elucidating the molecular communication between the liver and gut microbiota involving endocrine, immune, and metabolic processes in detoxification. We have also discussed the potential for future alterations in the gut of herbivores to enhance the metabolic effects of the liver and boost the detoxification and metabolic abilities of PSMs.

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回顾:食草动物通过肝脏和肠道微生物群协同代谢有毒植物的机制
种间相互作用是生态学研究的核心。植物产生有毒的植物次生代谢物(PSMs)作为一种防御机制来抵御食草动物的过度掠食,促使它们逐渐适应有毒物质以达到耐受或解毒的目的。食草动物肝脏中的 P450 酶与 PSMs 结合,而 UDP-葡萄糖醛酸基转移酶和谷胱甘肽 S-转移酶则增加结合的 PSMs 的疏水性,以实现解毒。类杆菌等肠道微生物会代谢纤维素酶和其他大分子,以分解有毒成分。不过,解毒是动物机体的整体反应,需要各器官协调配合,才能对摄入的 PSMs 进行解毒。PSMs 通过肝脏和肠道微生物群进行解毒代谢,胆汁酸、炎症信号分子和芳香烃受体的信号转导过程增加就是证明。在此背景下,我们简要概述了来自食草动物肝脏和肠道微生物群的代谢物是如何促进 PSMs 代谢的。我们主要侧重于阐明肝脏和肠道微生物群之间的分子交流,其中涉及解毒过程中的内分泌、免疫和代谢过程。我们还讨论了未来改变食草动物肠道的潜力,以增强肝脏的代谢作用,提高 PSMs 的解毒和代谢能力。
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来源期刊
CiteScore
7.50
自引率
5.10%
发文量
206
审稿时长
30 days
期刊介绍: Part C: Toxicology and Pharmacology. This journal is concerned with chemical and drug action at different levels of organization, biotransformation of xenobiotics, mechanisms of toxicity, including reactive oxygen species and carcinogenesis, endocrine disruptors, natural products chemistry, and signal transduction with a molecular approach to these fields.
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