首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Enhanced H_2 gas production from bagasse using adhE inactivated Klebsiella oxytoca HP1 by sequential dark-photo fermentations
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Enhanced H_2 gas production from bagasse using adhE inactivated Klebsiella oxytoca HP1 by sequential dark-photo fermentations

机译:通过连续的暗光发酵,使用adhE灭活的产酸克雷伯菌HP1提高蔗渣中的H_2气体产量

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Sequential dark-photo fermentations (SDPF) was used for hydrogen production from bagasse, an acetaldehyde dehydrogenase (adhE) gene inactivated Klebsiella oxytoca HP1 (ΔadhE HP1) mutant was used to reduce the alcohol content in dark fermentation (DF) broths and to further enhance the hydrogen yield during the photo fermentation (PF) stage. Compared with that of the wild strain, the ethanol concentration in DF broths of ΔadhE HP1 decreased 69.4%, which resulted in a hydrogen yield in the PF stage and the total hydrogen yield over the two steps increased by 54.7% and 23.5%, respectively. The culture conditions for hydrogen production from acid pretreated bagasse by SDPF were optimized as culture temperature 37.5°C, initial pH 7.0, and cellulase loading 20FPA/g in the DF stage, with initial pH 6.5, temperature 30°C and photo intensity 5000lux in the PF stage. Under optimum conditions, by using ΔadhE HP1 and wild type strain, the H_2 yields were 107.8±5.3mL H_2/g-bagasse, 96.2±4.4mL H_2/g-bagasse in DF and 54.3±2.2mL H_2/g-bagasse, 35.1±2.0mL H_2/g-bagasse in PF, respectively. The special hydrogen production rate (SHPR) were 5.51±0.34mL H_2/g-bagasseh, 4.95±0.22mL H_2/g-bagasseh in DF and 0.93±0.12mL H_2/g-bagasseh, 0.59±0.07mL H_2/g-bagasseh in PF, respectively. The total hydrogen yield from bagasse over two steps was 162.1±7.5mL H_2/g-bagasse by using ΔadhE HP1, which was 50.4% higher than that from dark fermentation only. These results indicate that reducing ethanol content during dark fermentation by using an adhE inactivated strain can significantly enhance hydrogen production from bagasse in the SDPF system. This work also proved that SDPF was an effective way to improve hydrogen production from bagasse.
机译:连续的暗光发酵(SDPF)用于从甘蔗渣中生产氢气,乙醛脱氢酶(adhE)基因灭活的产酸克雷伯菌HP1(ΔadhEHP1)突变体用于降低暗发酵(DF)肉汤中的酒精含量并进一步增强光发酵(PF)阶段的氢气产量。与野生菌株相比,ΔadhEHP1 DF肉汤中的乙醇浓度降低了69.4%,这导致了PF阶段的氢产率,两步的总氢产率分别增加了54.7%和23.5%。通过SDPF从酸预处理的蔗渣中制氢的培养条件被优化为培养温度37.5°C,初始pH 7.0,DF阶段纤维素酶负载量为20FPA / g,初始pH 6.5,温度30°C和光强度5000lux。 PF阶段。在最佳条件下,利用ΔadhEHP1和野生型菌株,DF中H_2的产量分别为107.8±5.3mL H_2 / g-甘蔗渣,DF中96.2±4.4mL H_2 / g-甘蔗渣和34.3±2.2mL H_2 / g-甘蔗渣,35.1。 PF中分别为±2.0mL H_2 / g甘蔗渣。特殊氢气产生率(SHPR)为DF中5.51±0.34mL H_2 / g袋渣,4.95±0.22mL H_2 / g袋渣,0.93±0.12mL H_2 / g袋渣,0.59±0.07mL H_2 / g袋渣在PF中。使用ΔadhEHP1,通过两步进行的甘蔗渣的总氢产率为162.1±7.5mL H_2 / g甘蔗渣,比仅黑暗发酵的产率高50.4%。这些结果表明,通过使用adhE灭活菌株在黑暗发酵过程中减少乙醇含量可以显着提高SDPF系统中甘蔗渣的产氢量。这项工作还证明,SDPF是提高蔗渣制氢量的有效方法。

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