The Role of Enzyme Loading on Starch and Cellulose Hydrolysis of Food Waste

被引:23
作者
Salimi, Erfaneh [1 ]
Saragas, Konstantinos [1 ]
Taheri, Mir Edris [2 ]
Novakovic, Jelica [1 ]
Barampouti, Elli Maria [1 ]
Mai, Sofia [1 ]
Moustakas, Konstantinos [1 ]
Malamis, Dimitrios [1 ]
Loizidou, Maria [1 ]
机构
[1] Natl Tech Univ Athens, Sch Chem Engn, Unit Environm Sci & Technol, 9 Iroon Polytech Str,Zographou Campus, Athens 15780, Greece
[2] Univ Patras, Dept Chem Engn, 1 Caratheodory Str,Univ Campus, Patras 26504, Greece
关键词
Amylase; Cellulose; Enzymatic hydrolysis; Food waste; Saccharification yield; Starch; BIOETHANOL PRODUCTION; SACCHAROMYCES-CEREVISIAE; ETHANOL-PRODUCTION; KITCHEN WASTE; FERMENTATION; SACCHARIFICATION; VALORIZATION; SUGAR;
D O I
10.1007/s12649-019-00826-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Purpose Sugars production from secondary resources has been recognised as a strategic process unit within the valorisation routes of waste. In this context, food waste (FW) as an abundant waste stream with elevated concentrations of glucose and carbohydrates (cellulose, starch) could stand as a suitable feedstock for saccharification. To evaluate this new potential application of FW, FW enzymatic hydrolysis was investigated via non-commercial enzymes. Methods FW was subjected to enzymatic hydrolysis by an amylolytic and a cellulolytic formulation under different enzyme loadings. At the optimum conditions, the time course of glucose production during enzymatic hydrolysis was also studied. In order to enlighten the viability of bioethanol production process from FW, the experimental results were evaluated in terms of cost of enzymes per liter of bioethanol produced. Results 81% starch hydrolysis was achieved after 1 h of hydrolysis by 45 mu L amylolytic enzyme NS22109/g starch at 65 degrees C. With regard to the effect of cellulase loading, 175 mu L NS22177/g cellulose achieved 50% saccharification yield. Further increase of enzyme dosage just slightly increased the yield. More specifically, by increasing the enzyme loading 540%, the resulting saccharification efficiency increased by just 16%. Last, the enzyme cost per ethanol yield was almost 3.5 times lower when just amylolytic enzymes were used for similar ethanol yields. Conclusion Enzymatic hydrolysis of starch and cellulose present in FW proved to be technically efficient providing high yields. Nevertheless, the difference in the economic weight of the use of amylolytic and/or cellulolytic enzymes strongly influences the viability of FW valorization via bioethanol production. Graphic
引用
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页码:3753 / 3762
页数:10
相关论文
共 27 条
[11]   Feasibility of producing ethanol from food waste [J].
Kim, Jae Hyung ;
Lee, Jun Cheol ;
Pak, Daewon .
WASTE MANAGEMENT, 2011, 31 (9-10) :2121-2125
[12]   Bioethanol production from mixed food waste by an effective enzymatic pretreatment [J].
Kiran, Esra Uckun ;
Liu, Yu .
FUEL, 2015, 159 :463-469
[13]   Production of fuel ethanol and methane from garbage by high-efficiency two-stage fermentation process [J].
Koike, Yoji ;
An, Ming-Zhe ;
Tang, Yue-Qin ;
Syo, Tomohiro ;
Osaka, Noriko ;
Morimura, Shigeru ;
Kida, Kenji .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2009, 108 (06) :508-512
[14]   Recycling of food waste into chemical building blocks [J].
Kumar, Vinod ;
Longhurst, Philip .
CURRENT OPINION IN GREEN AND SUSTAINABLE CHEMISTRY, 2018, 13 :118-122
[15]   Hydrothermal processing as pretreatment for efficient production of ethanol and biogas from municipal solid waste [J].
Mahmoodi, Peyman ;
Karimi, Keikhosro ;
Taherzadeh, Mohammad J. .
BIORESOURCE TECHNOLOGY, 2018, 261 :166-175
[16]   Enzymatic hydrolysis of food waste and ethanol fermentation [J].
Moon, Hee Cheon ;
Song, Il Seok ;
Kim, Jong Chan ;
Shirai, Yoshihito ;
Lee, Dong Hoon ;
Kim, Jung Kwon ;
Chung, Sung Oh ;
Kim, Du Hyun ;
Oh, Kwang Keun ;
Cho, Young Son .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2009, 33 (02) :164-172
[17]   Valorization of kitchen biowaste for ethanol production via simultaneous saccharification and fermentation using co-cultures of the yeasts Saccharomyces cerevisiae and Pichia stipitis [J].
Ntaikou, Ioanna ;
Menis, Nikolaos ;
Alexandropoulou, Maria ;
Antonopoulou, Georgia ;
Lyberatos, Gerasimos .
BIORESOURCE TECHNOLOGY, 2018, 263 :75-83
[18]   Technological interventions for utilization of crop residues and weedy biomass for second generation bio-ethanol production [J].
Pandiyan, K. ;
Singh, Arjun ;
Singh, Surender ;
Saxena, Anil Kumar ;
Nain, Lata .
RENEWABLE ENERGY, 2019, 132 :723-741
[19]  
Pleissner D., 2013, Sustain. Chem. Process, V1, P1, DOI DOI 10.1186/2043-7129-1-21
[20]   Exploitation of Food Industry Waste for High-Value Products [J].
Ravindran, Rajeev ;
Jaiswal, Amit K. .
TRENDS IN BIOTECHNOLOGY, 2016, 34 (01) :58-69