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利用响应面优化Klebsiella variicola对麻疯树籽饼粕佛波酯的固态发酵降解 被引量:1

Optimization of response surface for degrading phorbol esters in Jatropha curcas seed cake through Klebsiella variicola solid-state fermentation
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摘要 为降解麻疯树籽饼粕中的毒性成分佛波酯,利用Klebsiella variicola进行固态发酵.采用单因素实验法研究了发酵温度、接种量、初始加水量、发酵时间对佛波酯降解率的影响.在此实验结果基础上,利用Design Expert8.0软件进行分析建立了发酵温度、接种量、初始加水量3个因素对佛波酯降解率影响的优化模型.该模型极显著(P<0.001),拟合度良好.经实验证实,在发酵温度为37℃、接种量33%(V/m)、初始加水量为105%(V/m)条件下发酵48 h,佛波酯降解率可达到84.30%,另一种毒性物质curcin的降解率可达63.21%.研究表明,利用响应面优化K.variicola固态发酵麻疯树籽饼粕过程,既可提高佛波酯降解率,也可降解curcin,具有生产指导意义. This study aimed to optimize the degradation?rate of phorbol ester?of Jaropha curcas seed cake through solid-state fermentation of Klebsiella variicola. Firstly, by the single factor experiments, the effects of fermentation temperature, inoculum amount, initial?amount of water and?fermentation?time?were determined. Then Design Expert8.0 was used to analyze and optimize the model of phorbol esters degradation rate by three factors (fermentation temperature,?inoculum amount and?initial?amount of water) through response surface methodology. A model was then set up, its validity verified, and the degradation?rate of curcin measured. The?model was significant?(P 〈 0.001),?fitting well. In confirming experiments,?under the condition of?fermentation temperature 37 oC,?inoculation?(V/m) 33%,?the initial?water content?105%?(V/m), after?fermentation for 48 hours, the?phorbol ester?degradation?rate was 84.30% and curcin degradation?rate 63.21%. The results suggested that with optimization of the response surface methodology, K. variicola can degrade phorbol ester?efficiently and at the same time degrade curcin.
出处 《应用与环境生物学报》 CAS CSCD 北大核心 2014年第3期431-437,共7页 Chinese Journal of Applied and Environmental Biology
基金 四川省科技支撑计划项目(2011HH0006) 国家自然科学基金项目(31170312)资助~~
关键词 麻疯树籽饼粕 佛波酯 KLEBSIELLA variicola 固态发酵 CURCIN Jatropha curcas seed cake phorbol esters Klebsiella variicola solid-state fermentation curcin
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  • 1温洪宇,廖银章,李旭东.菌株N-1对萘的降解特性研究[J].应用与环境生物学报,2006,12(1):96-98. 被引量:16
  • 2宋昊,邱森,章俭,夏春谷.高活性萘降解细菌Hydrogenophaga Palleronii LHJ38的研究[J].化工环保,2006,26(2):87-90. 被引量:22
  • 3Patel V, Jain S, Madamwar D. Naphthalene degradation by bacterial consortium (DV-AL) developed from Alang- Sosiya ship breaking yard, Gujarat, India[J]. Bioresource Technology, 2012, 107:122-130. 被引量:1
  • 4Jeon CO, Park M, Ro HS, et al. The naphthalene catabolic (nag) genes of Polaromonas naphthalenivorans CJ2: evolutionary implications for two gene clusters and novel regulatory control[J]. Applied and Environmental Microbiology, 2006,72(2): 1086-1095. 被引量:1
  • 5Sukor MZ, Yin C, Savory RM, et al. Biodegradation kinetics of naphthalene in soil medium using Pleurotus ostreatus in batch mode with addition of fibrous biomass as a nutrient[J]. Bioremediation Journal, 2012, 16(3): 177-184. 被引量:1
  • 6Batterman S, Chin JY, Jia C, et al. Sources, concentrations, and risks of naphthalene in indoor and outdoor air[J]. Indoor Air, 2012, 22(4): 266-278. 被引量:1
  • 7Chang Y, Cheng H, Lai S, et al. Biodegradation of naphthalene in the oil refinery wastewater by enriched activated sludge[J]. International Biodeterioration & Biodegradation, 2014, 86(Part C): 272-277. 被引量:1
  • 8Kleemann R, Meckenstock RU. Anaerobic naphthalene degradation by Gram-positive, iron-reducing bacteria[J]. FEMS Microbiology Ecology, 2011, 78(3): 488-496. 被引量:1
  • 9Lin C, Shen F, Tan C, et al. Characterization of Gordonia sp. strain CC-NAPH129-6 capable of naphthalene degradation[J]. Microbiological Research, 2012, 167(7): 395-404. 被引量:1
  • 10Rockne K J, Strand SE. Anaerobic biodegradation of naphthalene, phenanthrene, and biphenyl by a denitrifying enrichment culture[J]. Water Research, 2001, 35(1): 291-299. 被引量:1

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