Optimization of Methane Feed and N:C Ratio for Biomass and Polyhydroxybutyrate Production by the Alphaproteobacterial Methanotroph Methylocystis sp. Rockwell

Methane Pub Date : 2022-12-06 DOI:10.3390/methane1040026
H. Sharma, Dominic Sauvageau, L. Stein
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Abstract

The consumption of methane and the production of biodegradable polymers using alphaproteobacterial methanotrophs offers a promising strategy to mitigate greenhouse gas emissions and reduce non-biodegradable plastic pollution. This study identified an ideal amount of added methane and N:C ratio in 100 mL batch cultures of the alphaproteobacterial methanotroph Methylocystis sp. Rockwell growing in 1-L sealed bottles using Response Surface Methodology (RSM) to achieve both high biomass and high polyhydroxybutyrate (PHB) production. RSM analysis showed achievement of optimal biomass at 474.7 ± 10.1 mg/L in nitrate mineral salts (NMS) medium and 480.0 ± 65.5 mg/L biomass in ammonium mineral salts (AMS) medium with 8 mmol of methane and an N:C ratio of 0.022. However, optimal PHB concentration was achieved with 6 mmol methane at N:C ratios of 0.012 in NMS medium (149.7 ± 16.1 mg/L) and 0.022 in AMS medium (200.3 ± 5.1 mg/L). A multi-objective RSM analysis projected maxima in PHB production and %PHB cell content (based on dry weight) when using 4.88 mmol methane and N:C ratio of 0.016 in NMS cultures, and 6.28 mmol methane and the 0.016 N:C ratio in AMS cultures. Cultures grown under these projected conditions produced 173.7 mg PHB/L with 46.8% PHB cell content in NMS and 196.9 mg/L with 53.1% PHB cell content in AMS. Taken together, these analyses predicted the optimal conditions for growth and PHB production in batch cultures of Methylocystis sp. Rockwell and confirmed a preference for ammonium as the N-source for PHB production. This information is valuable for media formulation in industrial scale-up of Methylocystis sp. Rockwell in PHB production.
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α-变形菌Methanotroph Methycystis sp.Rockwell生产生物量和聚羟基丁酸的甲烷进料和氮碳比优化
甲烷的消耗和使用α-变形菌产甲烷菌生产可生物降解聚合物为减少温室气体排放和减少不可生物降解的塑料污染提供了一种很有前途的策略。本研究使用响应面法(RSM)在1L密封瓶中生长的α-变形菌产甲烷菌Methylocystis sp.Rockwell的100 mL分批培养物中确定了理想的甲烷添加量和氮碳比,以实现高生物量和高聚羟基丁酸盐(PHB)产量。RSM分析显示,在硝酸盐(NMS)培养基中获得474.7±10.1 mg/L的最佳生物量,在含有8 mmol甲烷和0.022的氮碳比的铵矿物盐(AMS)培养基上获得480.0±65.5 mg/L的生物量。然而,在NMS培养基(149.7±16.1 mg/L)和AMS培养基(200.3±5.1 mg/L)中,当氮碳比分别为0.012和0.022时,6 mmol甲烷的PHB浓度达到最佳。多目标RSM分析预测,当在NMS培养物中使用4.88 mmol甲烷和0.016的N:C比,以及在AMS培养物中采用6.28 mmol沼气和0.016 N:C比时,PHB产量和PHB细胞%含量(基于干重)达到最大值。在这些预测条件下生长的培养物在NMS中产生173.7mg PHB/L,PHB细胞含量为46.8%,在AMS中产生196.9mg/L,PHB电池含量为53.1%。总之,这些分析预测了Methylcycstis sp.Rockwell分批培养中生长和PHB生产的最佳条件,并证实了对铵作为PHB生产N源的偏好。这些信息对PHB生产中Methylocystis sp.Rockwell的工业放大培养基配方有价值。
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