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使用小分子修饰剂对内生真菌中沉默生物合成基因簇进行表观遗传激活

Epigenetic Activation of Silent Biosynthetic Gene Clusters in Endophytic Fungi Using Small Molecular Modifiers.

作者信息

Pillay Lynise C, Nekati Lucpah, Makhwitine Phuti J, Ndlovu Sizwe I

机构信息

Discipline of Medical Microbiology, School of Laboratory Medicine and Medical Sciences, College of Health Sciences, University of KwaZulu-Natal, Durban, South Africa.

出版信息

Front Microbiol. 2022 Feb 14;13:815008. doi: 10.3389/fmicb.2022.815008. eCollection 2022.

Abstract

The discovery of silent biosynthetic gene clusters (BGCs) in fungi provides unlimited prospects to harness the secondary metabolites encoded by gene clusters for various applications, including pharmaceuticals. Amplifying these prospects is the new interest in exploring fungi living in the extremes, such as those associated with plants (fungal endophytes). Fungal species in endosymbiosis relationship with plants are recognized as the future factories of clinically relevant agents since discovering that they can produce similar metabolites as their plant host. The endophytes produce these compounds in natural environments as a defense mechanism against pathogens that infect the plant host or as a strategy for mitigating competitors. The signaling cascades leading to the expression of silent biosynthetic gene clusters in the natural environment remain unknown. Lack of knowledge on regulatory circuits of biosynthetic gene clusters limits the ability to exploit them in the laboratory. They are often silent and require tailor-designed strategies for activation. Epigenetic modification using small molecular compounds that alter the chromatin network, leading to the changes in secondary metabolites profile, has achieved considerable success. This review aims to comprehensively analyze the secondary metabolite profiles expressed after treatment with various epigenetic modifiers. We first describe the regulatory circuits governing the expression of secondary metabolites in fungi. Following this, we provide a detailed review of the small molecular modifiers, their mechanism(s) of action, and the diverse chemistries resulting from epigenetic modification. We further show that genetic deletion or epigenetic inhibition of histone deacetylases does not always lead to the overexpression or induction of silent secondary metabolites. Instead, the response is more complex and often leads to differential expression of secondary metabolites. Finally, we propose using this strategy as an initial screening tool to dereplicate promising fungal species.

摘要

真菌中沉默生物合成基因簇(BGCs)的发现为利用基因簇编码的次级代谢产物用于包括制药在内的各种应用提供了无限前景。对探索生活在极端环境中的真菌(如与植物相关的真菌,即真菌内生菌)的新兴趣进一步拓展了这些前景。自从发现与植物处于共生关系的真菌物种能够产生与其植物宿主相似的代谢产物后,它们就被视为临床相关药物的未来工厂。内生菌在自然环境中产生这些化合物,作为抵御感染植物宿主的病原体的防御机制,或者作为减轻竞争者压力的策略。在自然环境中导致沉默生物合成基因簇表达的信号级联反应仍然未知。对生物合成基因簇调控回路的缺乏了解限制了在实验室中对它们的利用能力。它们通常是沉默的,需要量身定制的激活策略。使用小分子化合物进行表观遗传修饰,改变染色质网络,导致次级代谢产物谱的变化,已经取得了相当大的成功。本综述旨在全面分析用各种表观遗传修饰剂处理后表达的次级代谢产物谱。我们首先描述真菌中次级代谢产物表达的调控回路。在此之后,我们详细综述小分子修饰剂、它们的作用机制以及表观遗传修饰产生的多样化学结构。我们进一步表明,组蛋白脱乙酰酶的基因缺失或表观遗传抑制并不总是导致沉默次级代谢产物的过表达或诱导。相反,反应更为复杂,往往导致次级代谢产物的差异表达。最后,我们建议将该策略用作初步筛选工具,以去除有前景的真菌物种中的重复项。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b3a/8882859/188b42aae29b/fmicb-13-815008-g001.jpg

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