Xylitol Production from Pineapple Cores (Ananas comosus (L.) Merr) by Enzymatic and Acid Hydrolysis Using Microorganisms Debaryomyces hansenii and Candida tropicalis

被引:5
作者
Mardawati, Efri [1 ,2 ]
Hartono, Agus T. T. [1 ,2 ]
Nurhadi, Bambang [2 ,3 ]
Fitriana, Hana Nur [1 ,2 ,4 ]
Hermiati, Euis [2 ,4 ]
Ermawar, Riksfardini Annisa [2 ,4 ]
机构
[1] Univ Padjadjaran, Dept Agroind Technol, Jatinangor 45363, Indonesia
[2] Res Collaborat Ctr Biomass & Biorefinery BRIN & Un, Jatinangor 45363, Indonesia
[3] Univ Padjadjaran, Dept Food Ind Technol, Jatinangor 45363, Indonesia
[4] Natl Res & Innovat Agcy, Res Ctr Biomass & Bioprod, Cibinong 16911, Indonesia
来源
FERMENTATION-BASEL | 2022年 / 8卷 / 12期
关键词
pineapple cores; Candida tropicalis; Debaryomycess hansenii; enzymatic hydrolysis; acid hydrolysis; xylitol; BIOTECHNOLOGICAL PRODUCTION; LIGNOCELLULOSIC BIOMASS; XYLOSE; DETOXIFICATION; MEDIA; FIBER;
D O I
10.3390/fermentation8120694
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Hydrolysis and fermentation processes are key stages in xylitol production from lignocellulosic materials. In this study, pineapple cores, one of the wastes from the canned pineapple industry, were used as raw material for xylitol production. Two methods was used for hydrolysis: enzymatically using commercial enzyme Cellic HTec2, and acid hydrolysis using 4% H2SO4. In contrast, the fermentation process was carried out with two selected yeasts commonly employed in xylitol fermentation, Debaryomycess hansenii, and Candida tropicalis. Before these two processes, the pineapple cores were characterized using the Van Soest method to determine their lignocellulosic content. The hemicellulose content was 36.06%, the cellulose content was 14.20%, and the lignin content was 10.05%. This result indicates that the hemicellulose content of pineapple cores has the potential to be used as a raw material in the production of xylitol. The hydrolysis efficiency of enzymatic hydrolysis was 21% higher than that of acid hydrolysis. The highest xylitol and biomass yield of 0.371 g(xylitol)/g(xylose) and 0.225 g(cell)/g(xylose) were observed by C. tropicalis using an enzymatic hydrolysate.
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页数:12
相关论文
共 33 条
[1]  
Azizah N, 2019, V3, P103, DOI [10.21776/ub.jfls.2019.003.02.06, 10.21776/ub.jfls.2019.003.02.06, DOI 10.21776/UB.JFLS.2019.003.02.06]
[2]   Enzymatic hydrolysis of lignocellulosic biomass from low to high solids loading [J].
Chen, Hong-Zhang ;
Liu, Zhi-Hua .
ENGINEERING IN LIFE SCIENCES, 2017, 17 (05) :489-499
[3]   Optimization of pH and acetic acid concentration for bioconversion of hemicellulose from corncobs to xylitol by Candida tropicalis [J].
Cheng, Ke-Ke ;
Zhang, Jian-An ;
Ling, Hong-Zhi ;
Ping, Wen-Xiang ;
Huang, Wei ;
Ge, Jing-Ping ;
Xu, Jing-Ming .
BIOCHEMICAL ENGINEERING JOURNAL, 2009, 43 (02) :203-207
[4]   Challenges and prospects of xylitol production with whole cell bio-catalysis: A review [J].
Dasgupta, Diptarka ;
Bandhu, Sheetal ;
Adhikari, Dilip K. ;
Ghosh, Debashish .
MICROBIOLOGICAL RESEARCH, 2017, 197 :9-21
[5]  
Hikal Wafaa M., 2021, Open Journal of Ecology, V11, P610, DOI [10.4236/oje.2021.119039, 10.4236/oje.2021.119039]
[6]   Production of Xylose from Diluted Sulfuric Acid Hydrolysis of Wheat Straw [J].
Ji, Xingxiang ;
Ma, Hao ;
Tian, Zhongjian ;
Lyu, Gaojin ;
Fang, Guigan ;
Chen, Jiachuan ;
Saeed, Haroon A. M. .
BIORESOURCES, 2017, 12 (04) :7084-7095
[7]  
Kresnowati M. T. A. P., 2015, Modern Applied Science, V9, P206, DOI 10.5539/mas.v9n7p206
[8]  
Mardawati E., 2014, J. Jpn. Inst. Energy, V93, P973, DOI [10.3775/jie.93.973, DOI 10.3775/JIE.93.973]
[9]  
Mardawati E., 2017, ARPN J ENG APPL SCI, V12, P5286
[10]   An Integrated Process for the Xylitol and Ethanol Production from Oil Palm Empty Fruit Bunch (OPEFB) Using Debaryomyces hansenii and Saccharomyces cerevisiae [J].
Mardawati, Efri ;
Febrianti, Emilda Ayu ;
Fitriana, Hana Nur ;
Yuliana, Tri ;
Putriana, Norisca Aliza ;
Suhartini, Sri ;
Kasbawati .
MICROORGANISMS, 2022, 10 (10)