Enhanced adipic acid production from sugarcane bagasse by a rapid room temperature pretreatment

被引:62
作者
Wu, Mengjia [1 ,2 ]
Di, Junhua [1 ]
Gong, Lei [1 ]
He, Yu-Cai [1 ,3 ]
Ma, Cuiluan [3 ]
Deng, Yu [2 ]
机构
[1] Changzhou Univ, Natl Local Joint Engn Res Ctr Biomass Refining & H, Sch Pharm, Jiangsu Key Lab Adv Catalyt Mat & Technol, Changzhou 213164, Jiangsu, Peoples R China
[2] Jiangnan Univ, Natl Engn Res Ctr Cereal Fermentat & Food Biomfg, 1800 Lihu Rd, Wuxi 214122, Jiangsu, Peoples R China
[3] Hubei Univ, Hubei Collaborat Innovat Ctr Green Transformat Bio, Sch Life Sci, State Key Lab Biocatalysis & Enzyme Engn,Hubei Key, Wuhan 430062, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
NaOH; ChCl; TH; water; Sugarcane bagasse; Pretreatment; Enzymatic hydrolysis; Adipic acid fermentation; IN-SITU SACCHARIFICATION; ENZYMATIC SACCHARIFICATION; LIGNOCELLULOSIC BIOMASS; ESCHERICHIA-COLI; IONIC LIQUID; RICE STRAW; HYDROLYSIS; CELLULOSE; NAOH/UREA; ETHANOL;
D O I
10.1016/j.cej.2022.139320
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Adipic acid is an important precursor for manufacturing Nylon-66, and various efficient renewable routes for adipic acid from lignocellulosic biomass are being explored. To effectively valorize biomass into adipic acid, a novel aqueous solution NaOH/ChCl:TH/water (6:24:160, wt/wt/wt) was firstly applied to pretreat sugarcane bagasse (SCB) at a room temperature (25 C) for a short pretreatment time (1 min) for improving its saccharification efficiency. A deep eutectic solvent ChCl:TH was synthesized by mixing choline chloride (ChCl) and thiourea (TH). The cellulose structure changes of SCB were characterized by FTIR, XRD, SEM, TEM and LSCM. Composition analysis and reducing sugar yield were used to evaluate pretreatment efficiency. Hydrolysis for 72 h, the yields of reducing sugars and glucose from 40 g/L NaOH/ChCl:TH-SCB with complexed cellulases were obtained at 90.2 % and 94.1 %, respectively. Finally, the obtained SCB-hydrolysate was used for adipic acid production by E. coli MG1655 K12. Glucose in SCB-hydrolysate was consumed within 72 h, with a productivity of 0.39 g adipic acid/g glucose, accounting for 72.2 % of the theoretical yield. Further discovery, xylose in SCBhydrolysate was also consumed for adipic acid fermentation, which contributed to an increase in adipic acid production. In view of transcriptome data, most of the genes involved in carbohydrate metabolism were most significantly up-regulated, which was conductive to improve the yield of adipic acid using biomass-hydrolysate as carbon source. Therefore, the NaOH/ChCl:TH-SCB hydrolysates were a better carbon source for adipic acid fermentation compared to commercial glucose. Obviously, this established rapid room temperature pretreatment with NaOH/ChCl:TH was proven to be effective for enhancing saccharification efficiency of SCB, and the hydrolysates had excellent adipic acid fermentability.
引用
收藏
页数:15
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共 67 条
[1]   Engineering Escherichia coli for the production of adipic acid through the reversed β-oxidation pathway [J].
Babu, Thirumalaisamy ;
Yun, Eun Ju ;
Kim, Sooah ;
Kim, Do Hyoung ;
Liu, Kwang Hyeon ;
Kim, Soo Rin ;
Kim, Kyoung Heon .
PROCESS BIOCHEMISTRY, 2015, 50 (12) :2066-2071
[2]   Alkali treatment of lignocellulosic fibers extracted from sugarcane bagasse: Composition, structure, properties [J].
Bartos, Andras ;
Anggono, Juliana ;
Farkas, Agnes Elvira ;
Kun, David ;
Soetaredjo, Felycia Edi ;
Moczo, Janos ;
Antoni ;
Purwaningsih, Hariyati ;
Pukanszky, Bela .
POLYMER TESTING, 2020, 88
[3]   Novel fibers prepared from cellulose in NaOH/urea aqueous solution [J].
Cai, J ;
Zhang, LN ;
Zhou, JP ;
Li, H ;
Chen, H ;
Jin, HM .
MACROMOLECULAR RAPID COMMUNICATIONS, 2004, 25 (17) :1558-1562
[4]   Energy- and carbon-efficient synthesis of functionalized small molecules in bacteria using non-decarboxylative Claisen condensation reactions [J].
Cheong, Seokjung ;
Clomburg, James M. ;
Gonzalez, Ramon .
NATURE BIOTECHNOLOGY, 2016, 34 (05) :556-561
[5]   Sequential Aqueous Ammonia Extraction and LiCl/N,N-Dimethyl Formamide Pretreatment for Enhancing Enzymatic Saccharification of Winter Bamboo Shoot Shell [J].
Chong, Gang-Gang ;
He, Yu-Cai ;
Liu, Qiu-Xiang ;
Kou, Xiao-Qin ;
Qing, Qing .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2017, 182 (04) :1341-1357
[6]   The use of thermochemical pretreatments to improve the anaerobic biodegradability, and biochemical methane potential of the sugarcane bagasse [J].
Costa, A. G. ;
Pinheiro, G. C. ;
Pinheiro, F. G. C. ;
Dos Santos, A. B. ;
Santaella, S. T. ;
Leitao, R. C. .
CHEMICAL ENGINEERING JOURNAL, 2014, 248 :363-372
[7]   Combination of biological pretreatment with NaOH/Urea pretreatment at cold temperature to enhance enzymatic hydrolysis of rice straw [J].
Dai, Youzhi ;
Si, Mengying ;
Chen, Yuehui ;
Zhang, Nianlei ;
Zhou, Mo ;
Liao, Qi ;
Shi, Deqiang ;
Liu, Yine .
BIORESOURCE TECHNOLOGY, 2015, 198 :725-731
[8]   Production of adipic acid by the native-occurring pathway in Thermobifida fusca B6 [J].
Deng, Y. ;
Mao, Y. .
JOURNAL OF APPLIED MICROBIOLOGY, 2015, 119 (04) :1057-1063
[9]   Biological production of adipic acid from renewable substrates: Current and future methods [J].
Deng, Yu ;
Ma, Lizhou ;
Mao, Yin .
BIOCHEMICAL ENGINEERING JOURNAL, 2016, 105 :16-26
[10]   High-solid pretreatment of rice straw at cold temperature using NaOH/Urea for enhanced enzymatic conversion and hydrogen production [J].
Dong, Lili ;
Cao, Guangli ;
Wu, Jiwen ;
Liu, Bingfeng ;
Xing, Defeng ;
Zhao, Lei ;
Zhou, Chunshuang ;
Feng, Liping ;
Ren, Nanqi .
BIORESOURCE TECHNOLOGY, 2019, 287