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真菌叶内生菌与其长寿宿主的比较代谢组学研究:探索宿主 - 微生物相互作用化学多样性的模型

Comparative metabolomic study of fungal foliar endophytes and their long-lived host : a model for exploring the chemodiversity of host-microbe interactions.

作者信息

Pellissier Leonie, Gaudry Arnaud, Vilette Salomé, Lecoultre Nicole, Rutz Adriano, Allard Pierre-Marie, Marcourt Laurence, Ferreira Queiroz Emerson, Chave Jérôme, Eparvier Véronique, Stien Didier, Gindro Katia, Wolfender Jean-Luc

机构信息

School of Pharmaceutical Sciences, University of Geneva, Centre Médical Universitaire (CMU), Geneva, Switzerland.

Institute of Pharmaceutical Sciences of Western Switzerland, University of Geneva, Centre Médical Universitaire (CMU), Geneva, Switzerland.

出版信息

Front Plant Sci. 2023 Dec 19;14:1278745. doi: 10.3389/fpls.2023.1278745. eCollection 2023.

Abstract

INTRODUCTION

In contrast to the dynamics observed in plant/pathogen interactions, endophytic fungi have the capacity to establish enduring associations within their hosts, leading to the development of a mutually beneficial relationship that relies on specialized chemical interactions. Research indicates that the presence of endophytic fungi has the ability to significantly modify the chemical makeup of the host organism. Our hypothesis proposes the existence of a reciprocal exchange of chemical signals between plants and fungi, facilitated by specialized chemical processes that could potentially manifest within the tissues of the host. This research aimed to precisely quantify the portion of the cumulative fungal endophytic community's metabolome detectable within host leaves, and tentatively evaluate its relevance to the host-endophyte interplay. The understory palm Astrocaryum sciophilum (Miq.) Pulle was used as a interesting host plant because of its notable resilience and prolonged life cycle, in a tropical ecosystem.

METHOD

Using advanced metabolome characterization, including UHPLC-HRMS/MS and molecular networking, the study explored enriched metabolomes of both host leaves and 15 endophytic fungi. The intention was to capture a metabolomic "snapshot" of both host and endophytic community, to achieve a thorough and detailed analysis.

RESULTS AND DISCUSSION

This approach yielded an extended MS-based molecular network, integrating diverse metadata for identifying host- and endophyte-derived metabolites. The exploration of such data (>24000 features in positive ionization mode) enabled effective metabolome comparison, yielding insights into cultivable endophyte chemodiversity and occurrence of common metabolites between the holobiont and its fungal communities. Surprisingly, a minor subset of features overlapped between host leaf and fungal samples despite significant plant metabolome enrichment. This indicated that fungal metabolic signatures produced in vitro remain sparingly detectable in the leaf. Several classes of primary metabolites were possibly shared. Specific fungal metabolites and/or compounds of their chemical classes were only occasionally discernible in the leaf, highlighting endophytes partial contribution to the overall holobiont metabolome. To our knowledge, the metabolomic study of a plant host and its microbiome has rarely been performed in such a comprehensive manner. The general analytical strategy proposed in this paper seems well-adapted for any study in the field of microbial- or microbiome-related MS and can be applied to most host-microbe interactions.

摘要

引言

与植物/病原体相互作用中观察到的动态变化不同,内生真菌有能力在其宿主内建立持久的关联,从而形成一种依赖于特殊化学相互作用的互利关系。研究表明,内生真菌的存在能够显著改变宿主生物体的化学组成。我们的假设提出,植物和真菌之间存在化学信号的相互交换,这是由可能在宿主组织内表现出来的特殊化学过程促成的。本研究旨在精确量化宿主叶片中可检测到的累积真菌内生群落代谢组的部分,并初步评估其与宿主 - 内生菌相互作用的相关性。下层棕榈Astrocaryum sciophilum (Miq.) Pulle因其在热带生态系统中显著的恢复力和较长的生命周期,被用作有趣的宿主植物。

方法

该研究使用先进的代谢组表征方法,包括超高效液相色谱 - 高分辨率质谱/质谱和分子网络分析,探索宿主叶片和15种内生真菌的富集代谢组。目的是获取宿主和内生群落的代谢组“快照”,以进行全面而详细的分析。

结果与讨论

这种方法产生了一个基于质谱的扩展分子网络,整合了各种元数据以识别宿主和内生菌衍生的代谢物。对这些数据(正离子模式下>24000个特征)的探索实现了有效的代谢组比较,从而深入了解可培养内生菌的化学多样性以及全生物与其真菌群落之间常见代谢物的出现情况。令人惊讶的是,尽管宿主叶片代谢组有显著富集,但宿主叶片和真菌样本之间仅有一小部分特征重叠。这表明在体外产生的真菌代谢特征在叶片中仍难以检测到。几类初级代谢物可能是共享的。特定的真菌代谢物及其化学类别的化合物仅偶尔在叶片中可辨别,这突出了内生菌对整个全生物代谢组的部分贡献。据我们所知,很少以如此全面的方式对植物宿主及其微生物组进行代谢组学研究。本文提出的一般分析策略似乎非常适合微生物或微生物组相关质谱领域的任何研究,并且可以应用于大多数宿主 - 微生物相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1221/10768666/5c8e98ed8b2a/fpls-14-1278745-g001.jpg

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