Accumulation of ammonium owing to the metabolic imbalance of carbon and nitrogen might inhibit the central metabolism in Methylomonas sp. ZR1
Guo, W.; He, R.; Zhao, Y.; Li, D.
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The metabolic intermediates of nitrogen source have been proved to have multiple functions on the metabolism of mehthanotrophs. In this study, accumulation and assimilation mechanism of the nitrate metabolic intermediate ammonium in the fast growing Methylomonas sp. ZR1 was analyzed. Although, nitrate salt was the best nitrogen source supporting the growth of ZR1, its metabolic intermediate ammonium would accumulate and inhibit ZR1. Kinetic studies indicated that accumulation of NH4+ was deduced from the imbalance of nitrogen and carbon metabolism. Compensation of carbon skeleton -keto-glutaramate could effectively relieve the inhibition of NH4+ to ZR1, which further approved the assumption. qPCR analysis indicated a third ammonium assimilation pathway Glycine synthesis system may function in ZR1 under high ammonium tension. In the presence of ammonium, ZR1 might employ two strategies to relieve the ammonium stress, one was assimilating the excess ammonium, and another one was cutting off the nitrogen reduction reactions. Investigation of the nitrogen metabolism and its influence to the carbon metabolism is meaningful to systematically understand and control the C1 feedstock bioconversion process in methanotrophs. ImportanceThe nitrogen metabolism in methanotrophs has long been concerned. However, there are lots of research problems yet to be solved. In this study, the accumulation and assimilation mechanism of the nitrogen metabolic intermediate ammonium in the fast growing Methylomonas sp. ZR1 was analyzed. Owing to the imbalance metabolism of carbon and nitrogen source, ammonium would accumulate to high concentrations to inhibit cell growth. Compensation of carbon skeleton was an effective strategy to relieve the inhibition of NH4+. A third ammonium assimilation pathway related genes were proved actively expressing in ZR1 when it confronted with high ammonium tension. When confronted with ammonium tension, ZR1 might employ different strategies to relieve the ammonium stress according to the edible carbon source. Revealing the endogenous ammonium accumulation mechanism and its metabolic adjustment effect on the central metabolism of methanotrophs, was meaningful to reveal the complex coordination metabolic mechanism of nitrogen and carbon in methanotrophs.
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