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在稳定生长条件下一个典型样本的培养与转录分析

Cultivation and Transcriptional Analysis of a Canonical Under Stable Growth Conditions.

作者信息

Mundinger Aniela B, Lawson Christopher E, Jetten Mike S M, Koch Hanna, Lücker Sebastian

机构信息

Department of Microbiology, Institute for Water and Wetland Research, Radboud University, Nijmegen, Netherlands.

Department of Civil and Environmental Engineering, University of Wisconsin-Madison, Madison, WI, United States.

出版信息

Front Microbiol. 2019 Jun 26;10:1325. doi: 10.3389/fmicb.2019.01325. eCollection 2019.

Abstract

Nitrite-oxidizing bacteria (NOB) are vital players in the global nitrogen cycle that convert nitrite to nitrate during the second step of nitrification. Within this functional guild, members of the genus are most widespread, phylogenetically diverse, and physiologically versatile, and they drive nitrite oxidation in many natural and engineered ecosystems. Despite their ecological and biotechnological importance, our understanding of their energy metabolism is still limited. A major bottleneck for a detailed biochemical characterization of is biomass production, since they are slow-growing and fastidious microorganisms. In this study, we cultivated under nitrite-oxidizing conditions in a continuous stirred tank reactor (CSTR) system. This cultivation setup enabled accurate control of physicochemical parameters and avoided fluctuating levels of their energy substrate nitrite, thus ensuring constant growth conditions and furthermore allowing continuous biomass harvesting. Transcriptomic analyses under these conditions supported the predicted core metabolism of , including expression of all proteins required for carbon fixation via the reductive tricarboxylic acid cycle, assimilatory nitrite reduction, and the complete respiratory chain. Here, simultaneous expression of multiple copies of respiratory complexes I and III suggested functional differentiation. The transcriptome also indicated that the previously assumed membrane-bound nitrite oxidoreductase (NXR), the enzyme catalyzing nitrite oxidation, is formed by three soluble subunits. Overall, the transcriptomic data greatly refined our understanding of the metabolism of . Moreover, the application of a CSTR to cultivate is an important foundation for future proteomic and biochemical characterizations, which are crucial for a better understanding of these fascinating microorganisms.

摘要

亚硝酸盐氧化细菌(NOB)是全球氮循环中的关键参与者,在硝化作用的第二步将亚硝酸盐转化为硝酸盐。在这个功能类群中,属的成员分布最广、系统发育多样且生理功能多样,它们在许多自然和工程生态系统中驱动亚硝酸盐氧化。尽管它们在生态和生物技术方面具有重要意义,但我们对其能量代谢的了解仍然有限。对进行详细生化表征的一个主要瓶颈是生物量的产生,因为它们是生长缓慢且苛求的微生物。在本研究中,我们在连续搅拌釜式反应器(CSTR)系统中于亚硝酸盐氧化条件下培养。这种培养设置能够精确控制物理化学参数,并避免其能量底物亚硝酸盐水平的波动,从而确保恒定的生长条件,进而允许连续收获生物量。在这些条件下的转录组分析支持了预测的核心代谢,包括通过还原性三羧酸循环进行碳固定、同化性亚硝酸盐还原以及完整呼吸链所需的所有蛋白质的表达。在这里,呼吸复合物I和III多个拷贝的同时表达表明了功能分化。转录组还表明,先前假定的膜结合亚硝酸盐氧化还原酶(NXR),即催化亚硝酸盐氧化的酶,是由三个可溶性亚基组成的。总体而言,转录组数据极大地完善了我们对代谢的理解。此外,应用CSTR培养是未来蛋白质组学和生化表征的重要基础,这对于更好地理解这些迷人的微生物至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/70c8/6606698/7ed57ac24d30/fmicb-10-01325-g001.jpg

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