Effect of various factors on ethanol yields from lignocellulosic biomass by Thermoanaerobacterium AK17

被引:42
作者
Almarsdottir, Arnheidur Ran [1 ]
Sigurbjornsdottir, Margret Audur [1 ]
Orlygsson, Johann [1 ]
机构
[1] Univ Akureyri, Fac Nat Resource Sci, IS-600 Akureyri, Iceland
关键词
ethanol; Thermoanaerobacterium; carbohydrates; lignocellulose; hydrolysates; THERMOPHILIC ANAEROBIC-BACTERIA; ICELANDIC GEOTHERMAL AREAS; HYDROGEN-PRODUCTION; HOT-SPRINGS; CLOSTRIDIUM-THERMOHYDROSULFURICUM; BIOHYDROGEN PRODUCTION; WHEAT-STRAW; GEN-NOV; FERMENTATION; XYLOSE;
D O I
10.1002/bit.24346
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
The ethanol production capacity from sugars and lignocellulosic biomass hydrolysates (HL) by Thermoanaerobacterium strain AK17 was studied in batch cultures. The strain converts various carbohydrates to, acetate, ethanol, hydrogen, and carbon dioxide. Ethanol yields on glucose and xylose were 1.5 and 1.1 mol/mol sugars, respectively. Increased initial glucose concentration inhibited glucose degradation and end product formation leveled off at 30 mM concentrations. Ethanol production from 5 g L-1 of complex biomass HL (grass, hemp, wheat straw, newspaper, and cellulose) (Whatman paper) pretreated with acid (0.50% H2SO4), base (0.50% NaOH), and without acid/base (control) and the enzymes Celluclast (R) and Novozyme 188 (0.1 mL g-1 dw; 70 and 25 U g-1 of Celluclast and Novozyme 188, respectively) was investigated. Highest ethanol yields (43.0?mM) were obtained on cellulose but lowest on hemp leafs (3.6 mM). Chemical pretreatment increased ethanol yields substantially from lignocellulosic biomass but not from cellulose. The influence of various factors (HL, enzyme, and acid/alkaline concentrations) on end-product formation from 5 g L-1 of grass and cellulose was further studied to optimize ethanol production. Highest ethanol yields (5.5 and 8.6 mM ethanol g-1 grass and cellulose, respectively) were obtained at very low HL concentrations (2.5 g L-1); with 0.25% acid/alkali (v/v) and 0.1 mL g-1 enzyme concentrations. Inhibitory effects of furfural and hydroxymethylfurfural during glucose fermentation, revealed a total inhibition in end product formation from glucose at 4 and 6 g L-1, respectively. Biotechnol. Bioeng. 2012; 109:686694. (C) 2011 Wiley Periodicals, Inc.
引用
收藏
页码:686 / 694
页数:9
相关论文
共 36 条
[11]   Ethanol and Hydrogen Production by Two Thermophilic, Anaerobic Bacteria Isolated From Icelandic Geothermal Areas [J].
Koskinen, Perttu E. P. ;
Beck, Steinar R. ;
Orlygsson, Johann ;
Puhakka, Jaakko A. .
BIOTECHNOLOGY AND BIOENGINEERING, 2008, 101 (04) :679-690
[12]   Thermoanaerobacterium aciditolerans sp nov., a moderate thermoacidophile from a Kamchatka hot spring [J].
Kublanov, I. V. ;
Prokofeva, M. I. ;
Kostrikina, N. A. ;
Kolganova, T. V. ;
Tourova, T. P. ;
Wiege, J. ;
Bonch-Osmolovskaya, E. A. .
INTERNATIONAL JOURNAL OF SYSTEMATIC AND EVOLUTIONARY MICROBIOLOGY, 2007, 57 :260-264
[13]   ETHANOL-PRODUCTION FROM XYLOSE BY THERMOANAEROBACTER-ETHANOLICUS IN BATCH AND CONTINUOUS CULTURE [J].
LACIS, LS ;
LAWFORD, HG .
ARCHIVES OF MICROBIOLOGY, 1988, 150 (01) :48-55
[14]   A microtiter modification of the anthrone-sulfuric acid colorimetric assay for glucose-based carbohydrates [J].
Laurentin, A ;
Edwards, CA .
ANALYTICAL BIOCHEMISTRY, 2003, 315 (01) :143-145
[15]   TAXONOMIC DISTINCTION OF SACCHAROLYTIC THERMOPHILIC ANAEROBES - DESCRIPTION OF THERMOANAEROBACTERIUM-XYLANOLYTICUM GEN-NOV, SP-NOV, AND THERMOANAEROBACTERIUM-SACCHAROLYTICUM GEN-NOV, SP-NOV - RECLASSIFICATION OF THERMOANAEROBIUM-BROCKII, CLOSTRIDIUM-THERMOSULFUROGENES, AND CLOSTRIDIUM-THERMOHYDROSULFURICUM E100-69 AS THERMOANAEROBACTER-BROCKII COMB-NOV, THERMOANAEROBACTERIUM-THERMOSULFURIGENES COMB-NOV, AND THERMOANAEROBACTER-THERMOHYDROSULFURICUS COMB-NOV, RESPECTIVELY - AND TRANSFER OF CLOSTRIDIUM-THERMOHYDROSULFURICUM 39E TO THERMOANAEROBACTER-ETHANOLICUS [J].
LEE, YE ;
JAIN, MK ;
LEE, CY ;
LOWE, SE ;
ZEIKUS, JG .
INTERNATIONAL JOURNAL OF SYSTEMATIC BACTERIOLOGY, 1993, 43 (01) :41-51
[16]   Ethanol fermentation from biomass resources: current state and prospects [J].
Lin, Y ;
Tanaka, S .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2006, 69 (06) :627-642
[17]   Thermoanaerobacterium aotearoense sp nov, a slightly acidophilic, anaerobic thermophile isolated from various hot springs in New Zealand, and emendation of the genus Thermoanaerobacterium [J].
Liu, SY ;
Rainey, FA ;
Morgan, HW ;
Mayer, F ;
Wiegel, J .
INTERNATIONAL JOURNAL OF SYSTEMATIC BACTERIOLOGY, 1996, 46 (02) :388-396
[18]   An ability of isolated strains to efficiently cooperate in ethanolic fermentation of agricultural plant refuse under initially aerobic thermophilic conditions: Oxygen deletion process appended to consolidated bioprocessing (CBP) [J].
Miyazaki, Kohji ;
Irbis, Chagan ;
Takada, Junya ;
Matsuura, Aya .
BIORESOURCE TECHNOLOGY, 2008, 99 (06) :1768-1775
[19]   Features of promising technologies for pretreatment of lignocellulosic biomass [J].
Mosier, N ;
Wyman, C ;
Dale, B ;
Elander, R ;
Lee, YY ;
Holtzapple, M ;
Ladisch, M .
BIORESOURCE TECHNOLOGY, 2005, 96 (06) :673-686
[20]   Fermentation of lignocellulosic hydrolysates for ethanol production [J].
Olsson, L ;
HahnHagerdal, B .
ENZYME AND MICROBIAL TECHNOLOGY, 1996, 18 (05) :312-331