基因组规模的群落模型引导下木质纤维素生物转化细菌共培养的发展

IF 3.5 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Pritam Kundu, Amit Ghosh
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引用次数: 0

摘要

微生物群落在降解复杂生物聚合物、通过协同代谢功能生产增值产品方面显示出巨大的潜力。因此,开发合成微生物群落已成为各种生物技术应用的主要技术。然而,在一个联合体中,不同的微生物实体可以参与不同的生化相互作用,这对发展互惠群落构成了挑战。因此,对微生物间代谢相互作用、生长相容性和代谢协同作用的系统级理解对于开发有效的合成联合体至关重要。本研究展示了一种基因组尺度的群落建模方法,以评估微生物间的相互作用模式,并筛选代谢相容的细菌对,以设计木质纤维素共培养系统。在这里,我们通过实施基于通量的参数,即成对生长支持指数(PGSI)和代谢辅助(PMA),研究了6种白蚁肠道细菌分离物之间的成对生长和生化协同作用。评估PGSI和PMA有助于筛选9对有益细菌,并通过设计木质纤维素基质共培养实验进行验证。对于共培养的细菌对,实验测量的酶协同作用(DES)与模型衍生的生化相容性(PMA)表现出良好的一致性,这解释了计算机预测的保真度。在C. denverensis P3和Brevibacterium sp P5共培养中观察到最高程度的酶协同作用,其中总纤维素酶活性提高了53%。因此,基于通量的微生物间相互作用和代谢相容性评估有助于选择具有增强木质纤维素分解功能的最佳细菌共培养系统。群落建模策略中基于通量的参数(PGSI和PMA)将有助于优化微生物群落的组成,以开发用于生物修复、生物工程和生物医学应用的合成微生物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Genome-Scale Community Model-Guided Development of Bacterial Coculture for Lignocellulose Bioconversion

Genome-Scale Community Model-Guided Development of Bacterial Coculture for Lignocellulose Bioconversion

Genome-Scale Community Model-Guided Development of Bacterial Coculture for Lignocellulose Bioconversion

Microbial communities have shown promising potential in degrading complex biopolymers, producing value-added products through collaborative metabolic functionality. Hence, developing synthetic microbial consortia has become a predominant technique for various biotechnological applications. However, diverse microbial entities in a consortium can engage in distinct biochemical interactions that pose challenges in developing mutualistic communities. Therefore, a systems-level understanding of the inter-microbial metabolic interactions, growth compatibility, and metabolic synergisms is essential for developing effective synthetic consortia. This study demonstrated a genome-scale community modeling approach to assess the inter-microbial interaction pattern and screen metabolically compatible bacterial pairs for designing the lignocellulolytic coculture system. Here, we have investigated the pairwise growth and biochemical synergisms among six termite gut bacterial isolates by implementing flux-based parameters, i.e., pairwise growth support index (PGSI) and metabolic assistance (PMA). Assessment of the PGSI and PMA helps screen nine beneficial bacterial pairs that were validated by designing a coculture experiment with lignocellulosic substrates. For the cocultured bacterial pairs, the experimentally measured enzymatic synergisms (DES) showed good coherence with model-derived biochemical compatibility (PMA), which explains the fidelity of the in silico predictions. The highest degree of enzymatic synergisms has been observed in C. denverensis P3 and Brevibacterium sp P5 coculture, where the total cellulase activity has been increased by 53%. Hence, the flux-based assessment of inter-microbial interactions and metabolic compatibility helps select the best bacterial coculture system with enhanced lignocellulolytic functionality. The flux-based parameters (PGSI and PMA) in the proposed community modeling strategy will help optimize the composition of microbial consortia for developing synthetic microcosms for bioremediation, bioengineering, and biomedical applications.

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来源期刊
Biotechnology and Bioengineering
Biotechnology and Bioengineering 工程技术-生物工程与应用微生物
CiteScore
7.90
自引率
5.30%
发文量
280
审稿时长
2.1 months
期刊介绍: Biotechnology & Bioengineering publishes Perspectives, Articles, Reviews, Mini-Reviews, and Communications to the Editor that embrace all aspects of biotechnology. These include: -Enzyme systems and their applications, including enzyme reactors, purification, and applied aspects of protein engineering -Animal-cell biotechnology, including media development -Applied aspects of cellular physiology, metabolism, and energetics -Biocatalysis and applied enzymology, including enzyme reactors, protein engineering, and nanobiotechnology -Biothermodynamics -Biofuels, including biomass and renewable resource engineering -Biomaterials, including delivery systems and materials for tissue engineering -Bioprocess engineering, including kinetics and modeling of biological systems, transport phenomena in bioreactors, bioreactor design, monitoring, and control -Biosensors and instrumentation -Computational and systems biology, including bioinformatics and genomic/proteomic studies -Environmental biotechnology, including biofilms, algal systems, and bioremediation -Metabolic and cellular engineering -Plant-cell biotechnology -Spectroscopic and other analytical techniques for biotechnological applications -Synthetic biology -Tissue engineering, stem-cell bioengineering, regenerative medicine, gene therapy and delivery systems The editors will consider papers for publication based on novelty, their immediate or future impact on biotechnological processes, and their contribution to the advancement of biochemical engineering science. Submission of papers dealing with routine aspects of bioprocessing, description of established equipment, and routine applications of established methodologies (e.g., control strategies, modeling, experimental methods) is discouraged. Theoretical papers will be judged based on the novelty of the approach and their potential impact, or on their novel capability to predict and elucidate experimental observations.
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