Phenotypic Profiling of Selected Cellulolytic Strains to Develop a Crop Residue-Decomposing Bacterial Consortium.

IF 4.2 2区 生物学 Q2 MICROBIOLOGY Microorganisms Pub Date : 2025-01-17 DOI:10.3390/microorganisms13010193
Arman Shamshitov, Egidija Satkevičiūtė, Francesca Decorosi, Carlo Viti, Skaidrė Supronienė
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Abstract

Slow decomposition rates of cereal crop residues can lead to agronomic challenges, such as nutrient immobilization, delayed soil warming, and increased pest pressures. In this regard, microbial inoculation with efficient strains offers a viable and eco-friendly solution to accelerating the decomposition process of crop residues. However, this solution often focuses mostly on selecting microorganisms based on the appropriate enzymic capabilities and neglects the metabolic versatility required to utilize both structural and non-structural components of residues. Therefore, this study aimed to address these limitations by assessing the metabolic profiles of five previously identified cellulolytic bacterial strains, including Bacillus pumilus 1G17, Micromonospora chalcea 1G49, Bacillus mobilis 5G17, Streptomyces canus 1TG5, and Streptomyces achromogenes 3TG21 using Biolog Phenotype Microarray analysis. Moreover, this study evaluated the impact of wheat straw inoculation with single strains and a bacterial consortium on soil organic carbon and nitrogen content in a pot experiment. Results revealed that, beyond the core subset of 12 carbon sources, the strains exhibited diverse metabolic capacities in utilizing 106 carbon sources. All strains demonstrated effective straw biomass degradation compared to the negative control, with significant differences detected only in oil seed rape straw biodegradation estimations. Furthermore, wheat straw inoculated with a bacterial consortium showed a significant increase in soil organic carbon content after 180 days in the pot experiment. Overall, these findings underscore the critical role of metabolic profiling in gaining a deeper understanding of microbial capabilities and addressing the complexities of residue composition and environmental variability.

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筛选纤维素分解菌株形成作物残茬分解菌群的表型分析。
谷物作物残茬分解速度缓慢可能导致农艺挑战,如养分固定、土壤变暖延迟和虫害压力增加。在这方面,微生物接种高效菌株提供了一个可行的和生态友好的解决方案,以加速作物秸秆的分解过程。然而,这种解决方案通常主要侧重于根据适当的酶能力选择微生物,而忽略了利用残基结构和非结构成分所需的代谢多功能性。因此,本研究旨在通过使用生物表型芯片分析评估五种先前鉴定的纤维素分解细菌菌株的代谢谱来解决这些局限性,这些菌株包括短小芽孢杆菌1G17、查尔小单孢杆菌1G49、移动芽孢杆菌5G17、canus链霉菌1TG5和消色链霉菌3TG21。此外,本研究还通过盆栽试验,评价了单菌种和菌群接种小麦秸秆对土壤有机碳和氮含量的影响。结果表明,除了12个碳源的核心亚群外,菌株对106个碳源表现出不同的代谢能力。与阴性对照相比,所有菌株均表现出有效的秸秆生物量降解,仅在油菜秸秆生物降解方面存在显著差异。在盆栽试验中,接种菌群180 d后,小麦秸秆土壤有机碳含量显著增加。总的来说,这些发现强调了代谢谱在深入了解微生物能力和解决残留物组成和环境变异性的复杂性方面的关键作用。
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来源期刊
Microorganisms
Microorganisms Medicine-Microbiology (medical)
CiteScore
7.40
自引率
6.70%
发文量
2168
审稿时长
20.03 days
期刊介绍: Microorganisms (ISSN 2076-2607) is an international, peer-reviewed open access journal which provides an advanced forum for studies related to prokaryotic and eukaryotic microorganisms, viruses and prions. It publishes reviews, research papers and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files and software regarding the full details of the calculation or experimental procedure, if unable to be published in a normal way, can be deposited as supplementary electronic material.
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