Metabolic analysis of the CAZy class glycosyltransferases in rhizospheric soil fungiome of the plant species Moringa oleifera

IF 4.4 2区 生物学 Q1 Agricultural and Biological Sciences Saudi Journal of Biological Sciences Pub Date : 2024-02-18 DOI:10.1016/j.sjbs.2024.103956
Sahar A. Alshareef
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Abstract

The target of the present work is to study the most abundant carbohydrate-active enzymes (CAZymes) of glycosyltransferase (GT) class, which are encoded by fungiome genes present in the rhizospheric soil of the plant species Moringa oleifera. The datasets of this CAZy class were recovered using metagenomic whole shotgun genome sequencing approach, and the resultant CAZymes were searched against the KEGG pathway database to identify function. High emphasis was given to the two GT families, GT4 and GT2, which were the highest within GT class in the number and abundance of gene queries in this soil compartment. These two GT families harbor CAZymes playing crucial roles in cell membrane and cell wall processes. These CAZymes are responsible for synthesizing essential structural components such as cellulose and chitin, which contribute to the integrity of cell walls in plants and fungi. The CAZyme beta-1,3-glucan synthase of GT2 family accumulates 1,3-β-glucan, which provides elasticity as well as tensile strength to the fungal cell wall. Other GT CAZymes contribute to the biosynthesis of several compounds crucial for cell membrane and wall integrity, including lipopolysaccharide, e.g., lipopolysaccharide N-acetylglucosaminyltransferase, cell wall teichoic acid, e.g., alpha-glucosyltransferase, and cellulose, e.g., cellulose synthase. These compounds also play pivotal roles in ion homeostasis, organic carbon mineralization, and osmoprotection against abiotic stresses in plants. This study emphasizes the major roles of these two CAZy GT families in connecting the structure and function of cell membranes and cell walls of fungal and plant cells. The study also sheds light on the potential occurrence of tripartite symbiotic relationships involving the plant, rhizospheric bacteriome, and fungiome via the action of CAZymes of GT4 and GT2 families. These findings provide valuable insights towards the generation of innovative agricultural practices to enhance the performance of crop plants in the future.

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植物物种 Moringa oleifera 根瘤土壤真菌中 CAZy 类糖基转移酶的代谢分析
本研究的目标是研究植物物种油茶(Moringa oleifera)根瘤土壤中最丰富的糖基转移酶(GT)类碳水化合物活性酶(CAZymes),这些酶由真菌基因组编码。利用元基因组全枪基因组测序方法恢复了该类 CAZy 的数据集,并根据 KEGG 通路数据库对所得到的 CAZymes 进行了搜索,以确定其功能。重点研究了两个 GT 家族,即 GT4 和 GT2,这两个 GT 家族在该土壤区系中的基因查询数量和丰度在 GT 类中都是最高的。这两个 GT 家族含有在细胞膜和细胞壁过程中发挥关键作用的 CAZymes。这些 CAZyme 负责合成纤维素和几丁质等重要结构成分,它们有助于植物和真菌细胞壁的完整性。GT2 家族的 CAZyme β-1,3-葡聚糖合成酶积累 1,3-β-葡聚糖,为真菌细胞壁提供弹性和抗拉强度。其他 GT CAZymes 也参与了对细胞膜和细胞壁完整性至关重要的几种化合物的生物合成,包括脂多糖(如脂多糖 N-乙酰葡糖胺基转移酶)、细胞壁茶酸(如α-葡糖基转移酶)和纤维素(如纤维素合成酶)。这些化合物在植物的离子平衡、有机碳矿化和抗非生物性胁迫的渗透保护中也发挥着关键作用。这项研究强调了这两个 CAZy GT 家族在连接真菌和植物细胞的细胞膜和细胞壁的结构与功能方面的重要作用。这项研究还揭示了通过 GT4 和 GT2 家族 CAZymes 的作用,植物、根瘤菌群和真菌群之间可能存在三方共生关系。这些发现为创新农业实践的产生提供了宝贵的见解,以提高作物植物的未来表现。
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来源期刊
CiteScore
9.30
自引率
4.50%
发文量
551
审稿时长
34 days
期刊介绍: Saudi Journal of Biological Sciences is an English language, peer-reviewed scholarly publication in the area of biological sciences. Saudi Journal of Biological Sciences publishes original papers, reviews and short communications on, but not limited to: • Biology, Ecology and Ecosystems, Environmental and Biodiversity • Conservation • Microbiology • Physiology • Genetics and Epidemiology Saudi Journal of Biological Sciences is the official publication of the Saudi Society for Biological Sciences and is published by King Saud University in collaboration with Elsevier and is edited by an international group of eminent researchers.
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