University of Galway, University Road, Galway H91 TK33, Ireland.
Department of Civil, Architectural and Environmental Engineering, University of Naples Federico II, Via Claudio, Naples 80125, Italy.
Bioresour Technol. 2023 Sep;383:129237. doi: 10.1016/j.biortech.2023.129237. Epub 2023 May 26.
This study evaluated the possibility of combining methane oxidizing bacteria (MOB) with sulfur oxidizing bacteria (SOB) to enable the utilization of sulfide-rich biogas for microbial protein production. For this purpose, a MOB-SOB mixed-culture enriched by feeding both methane and sulfide was benchmarked against an enrichment of solely MOB. Different CH:O ratios, starting pH values, sulfide levels and nitrogen sources were tested and evaluated for the two enrichments. The MOB-SOB culture gave promising results in terms of both biomass yield (up to 0.07 ± 0.01 g VSS/g CH-COD) and protein content (up to 73 ± 5% of VSS) at 1500 ppm of equivalent HS. The latter enrichment was able to grow also under acidic pH (5.8-7.0), but as inhibited outside the optimal CH:O ratio of 2:3. The obtained results show the capability of MOB-SOB mixed-cultures to directly upcycle sulfide-rich biogas into microbial protein potentially suited for feed, food or biobased product applications.
本研究评估了将甲烷氧化菌(MOB)与硫氧化菌(SOB)结合起来利用富含硫化物的沼气生产微生物蛋白的可能性。为此,通过同时供给甲烷和硫化物来富集 MOB-SOB 混合培养物,并将其与仅富集 MOB 的培养物进行基准比较。针对这两种富集物,测试并评估了不同的 CH:O 比、起始 pH 值、硫化物水平和氮源。在 1500 ppm 当量 HS 的条件下,MOB-SOB 培养物在生物量产量(高达 0.07±0.01 g VSS/g CH-COD)和蛋白含量(高达 73±5%的 VSS)方面均取得了有前景的结果。后一种富集物也能够在酸性 pH(5.8-7.0)下生长,但在最佳 CH:O 比 2:3 之外会受到抑制。研究结果表明,MOB-SOB 混合培养物能够直接将富含硫化物的沼气转化为微生物蛋白,这种蛋白可能适用于饲料、食品或生物基产品应用。