网纹山茶花梗中的内生细菌:分离、筛选和分析其对花蜜酵母菌的拮抗活性。

IF 4 2区 生物学 Q2 MICROBIOLOGY
Frontiers in Microbiology Pub Date : 2024-10-21 eCollection Date: 2024-01-01 DOI:10.3389/fmicb.2024.1459354
Qingxin Meng, Rong Huang, Lijie Xun, Xiaoman Wu, Shangkao Deng, Dan Yue, Wenzheng Zhao, Xia Dong, Xueyang Gong, Kun Dong
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引用次数: 0

摘要

山茶(Camellia reticulata)是中国云南省特有的古老植物物种,但对其内生细菌群落的研究仍然不足。植物组织的花梗是花与茎之间的连接,在长期的微生物定植过程中,它不仅能输送养分,还能将内生细菌的代谢物质传递到花蜜中,并可能提高花蜜对酵母菌的拮抗活性。因此,本研究从 12 年和 60 年树龄的网纹花梗上分离出 138 株内生细菌。对比分析表明,树龄较大的树木中内生细菌的密度明显更高。在这些分离菌中,有 29 个对花蜜酵母菌有抑制作用。大多数分离菌的革兰氏染色、过氧化氢酶反应、明胶液化和运动能力均呈阳性。此外,分离物还表现出利用葡萄糖、硝酸盐和淀粉等多种底物的能力。根据 16S rRNA 分子生物学分析,这些分离物被鉴定为 6 个属的 11 个不同物种,其中大多数属于芽孢杆菌属。值得注意的是,被鉴定为 spizenii 杆菌的 C1 分离物对三种酵母菌(即 Metschnikowia reukaufii、Cryptococcus laurentii 和 Rhodotorula glutinis)表现出最强的拮抗作用,最低抑制浓度值低于 250 μg/mL。B.spizenii的主要代谢产物为氨基糖苷类、β-内酰胺类和喹诺酮类,具有抗菌活性。此外,KEGG富集途径主要包括植物次生代谢物、苯丙酮类、氨基酸、生物碱、黄酮类、新霉素、卡那霉素和庆大霉素的合成。因此,B. spizenii 对酵母菌的拮抗活性可能归因于这些抗生素。这些发现突显了与网纹草相关的内生细菌的多样性,表明它们具有作为生物活性代谢物的宝贵资源的潜力。此外,这项研究还为了解花梗内生细菌在增强花蜜抗酵母菌能力方面的作用提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Endophytic bacteria in Camellia reticulata pedicels: isolation, screening and analysis of antagonistic activity against nectar yeasts.

Camellia reticulata, an ancient plant species endemic to Yunnan Province, China, remains underexplored in terms of its endophytic bacterial communities. The plant tissue pedicel serves as the connection between the flower and the stem, not only delivers nutrients but also transmits metabolic substances from endophytic bacteria to the nectar during long-term microbial colonization and probably improves the antagonistic activity of nectar against yeast. Hence, 138 isolates of endophytic bacteria have been isolated in this study from the pedicels of 12- and 60-year-old C. reticulata. Comparative analysis revealed significantly higher density of endophytic bacteria in older trees. Among these isolates, 29 exhibited inhibitory effects against nectar yeasts. Most of the isolates displayed positive results for Gram staining, catalase reaction, gelatin liquefaction, and motility. Additionally, the isolates demonstrated the ability to utilize diverse substrates, such as glucose, nitrate, and starch. Based on 16S rRNA molecular biology analysis, these isolates were identified to be 11 different species of 6 genera, with the majority belonging to Bacillus genus. Notably, C1 isolate, identified as Bacillus spizizenii, exhibited strongest antagonistic effect against three yeasts, i.e., Metschnikowia reukaufii, Cryptococcus laurentii, and Rhodotorula glutinis, with minimum inhibitory concentration values below 250 μg/mL. Major metabolites of B. spizizenii were aminoglycosides, beta-lactams, and quinolones, which possess antimicrobial activities. Furthermore, KEGG enrichment pathways primarily included the synthesis of plant secondary metabolites, phenylpropanoids, amino acids, alkaloids, flavonoids, neomycin, kanamycin, and gentamicin. Therefore, antagonistic activity of B. spizizenii against yeasts could be attributed to these antibiotics. The findings highlight the diverse endophytic bacteria associated with C. reticulata, indicating their potential as a valuable resource of bioactive metabolites. Additionally, this study provides new insights into the role of endophytic bacteria of pedicels in enhancing nectar resistance against yeasts.

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来源期刊
CiteScore
7.70
自引率
9.60%
发文量
4837
审稿时长
14 weeks
期刊介绍: Frontiers in Microbiology is a leading journal in its field, publishing rigorously peer-reviewed research across the entire spectrum of microbiology. Field Chief Editor Martin G. Klotz at Washington State University is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide.
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