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共培养非降解伯克霍尔德氏菌抑制菲降解分枝杆菌的基质抑制。

Suppression of substrate inhibition in phenanthrene-degrading Mycobacterium by co-cultivation with a non-degrading Burkholderia strain.

机构信息

1 Graduate School of Life Sciences, Tohoku University, 2-1-1 Katahira, Sendai 980-8577, Japan.

2 Tokyo University of Agriculture, 1-1-1 Sakuragaoka, Tokyo 156-8502, Japan.

出版信息

Microbiology (Reading). 2019 Jun;165(6):625-637. doi: 10.1099/mic.0.000801. Epub 2019 Apr 17.

Abstract

In natural environments contaminated by recalcitrant organic pollutants, efficient biodegradation of such pollutants has been suggested to occur through the cooperation of different bacterial species. A phenanthrene-degrading bacterial consortium, MixEPa4, from polluted soil was previously shown to include a phenanthrene-degrading strain, Mycobacterium sp. EPa45, and a non-polycyclic aromatic hydrocarbon (PAH)-degrading strain, Burkholderia sp. Bcrs1W. In this study, we show that addition of phenanthrene to rich liquid medium resulted in the transient growth arrest of EPa45 during its degradation of phenanthrene. RNA-sequencing analysis of the growth-arrested cells showed the phenanthrene-dependent induction of genes that were predicted to be involved in the catabolism of this compound, and many other cell systems, such as a ferric iron-uptake, were up-regulated, implying iron deficiency of the cells. This negative effect of phenanthrene became much more apparent when using phenanthrene-containing minimal agar medium; colony formation of EPa45 on such agar was significantly inhibited in the presence of phenanthrene and its intermediate degradation products. However, growth inhibition was suppressed by the co-residence of viable Bcrs1W cells. Various Gram-negative bacterial strains, including the three other strains from MixEPa4, also exhibited varying degrees of suppression of the growth inhibition effect on EPa45, strongly suggesting that this effect is not strain-specific. Growth inhibition of EPa45 was also observed by other PAHs, biphenyl and naphthalene, and these two compounds and phenanthrene also inhibited the growth of another mycobacterial strain, M. vanbaalenii PYR-1, that can use them as carbon sources. These phenomena of growth inhibition were also suppressed by Bcrs1W. Our findings suggest that, in natural environments, various non-PAH-degrading bacterial strains play potentially important roles in the facilitation of PAH degradation by the co-residing mycobacteria.

摘要

在受难生物降解有机污染物污染的自然环境中,人们认为不同细菌物种的合作有助于这些污染物的有效生物降解。先前从污染土壤中分离出的菲降解细菌混合菌群 MixEPa4 包括一株菲降解菌 Mycobacterium sp. EPa45 和一株非多环芳烃(PAH)降解菌 Burkholderia sp. Bcrs1W。在本研究中,我们发现,在富含液体培养基中添加菲会导致 EPa45 在降解菲的过程中暂时生长停滞。对生长停滞细胞的 RNA 测序分析表明,菲的存在诱导了预测参与该化合物分解代谢的基因表达,同时还上调了许多其他细胞系统,如铁的摄取系统,这表明细胞缺铁。当使用含有菲的最小琼脂培养基时,这种菲的负面影响变得更加明显;在存在菲及其中间降解产物的情况下,EPa45 在这种琼脂上的菌落形成受到显著抑制。然而,活的 Bcrs1W 细胞的共存抑制了生长抑制。各种革兰氏阴性细菌菌株,包括 MixEPa4 中的其他三株,也表现出对 EPa45 生长抑制的不同程度的抑制作用,这强烈表明这种效应不是菌株特异性的。EPa45 的生长抑制也被其他 PAHs、联苯和萘观察到,这两种化合物和菲也抑制了另一种可以将它们作为碳源的分枝杆菌菌株 M. vanbaalenii PYR-1 的生长。Bcrs1W 也抑制了这些生长抑制现象。我们的研究结果表明,在自然环境中,各种非 PAH 降解细菌菌株在促进共存的分枝杆菌降解 PAH 方面发挥了潜在的重要作用。

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