Genetic analysis of a β-1,3/1,4-glucan utilization gene cluster in Segatella copri JCM 13464T.

IF 2.9 Q3 MICROBIOLOGY
Bioscience of microbiota, food and health Pub Date : 2025-01-01 Epub Date: 2025-07-02 DOI:10.12938/bmfh.2025-009
Momoko Oyama, Yusuke Hashimoto, Yoko Sagara, Nahoko Kitamura, Shigenobu Kishino, Hideru Obinata, Haruyoshi Tomita, Yuta Sugiyama
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引用次数: 0

Abstract

Barley β-glucan (BGL), a dietary fiber composed of β1,3- and β1,4-linked glucose units, confers various health benefits, including anti-diabetic effects. A previous study reported that the anti-diabetic effect of BGL was associated with gut bacteria, particularly Segatella copri. Recently, a study using recombinant proteins revealed the biochemical characteristics of proteins encoded by the polysaccharide utilization locus 4 (PUL4), which is implicated in BGL assimilation. However, the precise physiological roles of PUL4 remain unclear. In this study, we used gene disruption in S. copri JCM 13464T (=DSM 18205T; also known as Prevotella copri CB7) to investigate the physiological functions of PUL4 under BGL-supplemented conditions. Deletion of pul4 significantly reduced bacterial growth, as well as acetic and succinic acid production, indicating that PUL4 is essential for efficient BGL assimilation and key metabolite generation. Moreover, although PUL4 contributed to BGL and lichenan utilization, cello-oligosaccharide assimilation did not require PUL4, indicating the presence of additional metabolic systems in S. copri JCM 13464T. Strain comparisons showed that one of the four S. copri strains assimilated BGL despite lacking PUL4, implying that some strains may possess alternative BGL-degrading loci other than PUL4. These findings provide direct evidence that PUL4 is an indispensable gene cluster for BGL assimilation by S. copri JCM 13464T. Because PUL4 enhances the biomass yield on BGL, it likewise boosts total acetate and succinate formation, potentially generating health benefits.

Abstract Image

Abstract Image

Abstract Image

一个β-1,3/1,4-葡聚糖利用基因簇的遗传分析。
大麦β-葡聚糖(BGL)是一种膳食纤维,由β1,3-和β1,4-连接葡萄糖单位组成,具有多种健康益处,包括抗糖尿病作用。先前的一项研究报道,BGL的抗糖尿病作用与肠道细菌有关,特别是copri segella。最近,一项利用重组蛋白的研究揭示了多糖利用位点4 (PUL4)编码的蛋白的生化特性,该蛋白与BGL同化有关。然而,PUL4的确切生理作用尚不清楚。在本研究中,我们通过对S. copri JCM 13464T (=DSM 18205T,又称copri Prevotella CB7)的基因破坏,研究了PUL4在bpl补充条件下的生理功能。缺失pul4显著降低了细菌的生长,以及乙酸和琥珀酸的产生,这表明pul4对于BGL的有效同化和关键代谢物的产生至关重要。此外,尽管PUL4有助于BGL和地衣的利用,但纤维-低聚糖的同化并不需要PUL4,这表明在s.c copri JCM 13464T中存在额外的代谢系统。菌株比较表明,4株葡萄球菌中有1株在缺乏PUL4的情况下仍能同化BGL,这表明部分菌株可能具有除PUL4以外的其他BGL降解位点。这些发现为PUL4是葡萄球菌JCM 13464T同化BGL不可或缺的基因簇提供了直接证据。由于PUL4提高了BGL上的生物量产量,它同样促进了总乙酸酯和琥珀酸酯的形成,可能对健康有益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.20
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