Unveiling the Variability and Multiscale Structure of Soybean Hulls for Biotechnological Valorization

被引:3
作者
Rosso, Diogo F. [1 ,2 ]
Negrao, Djanira R. [3 ]
Driemeier, Carlos [1 ,3 ]
机构
[1] Univ Sao Paulo, Programa Integrad Posgrad Bioenergia, Luiz De Queiroz Coll Agr, BR-13418900 Piracicaba, Brazil
[2] Novozymes Latin Amer, BR-83707660 Araucaria, Brazil
[3] Ctr Nacl Pesquisa Energia & Mat CNPEM, Lab Nacl Biorrenovaveis LNBR, BR-13083970 Campinas, Brazil
基金
巴西圣保罗研究基金会;
关键词
Recalcitrance; Enzyme; Cellulose; Lignocellulose; Valorization; SUGAR-CANE BAGASSE; X-RAY-DIFFRACTION; ENZYMATIC-HYDROLYSIS; CELLULOSE; ACID; PRETREATMENTS; EXTRACTION; ETHANOL; LIGNIN; FIBER;
D O I
10.1007/s12649-021-01655-z
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Soybean hulls (SBH) are an important agroindustrial residue that is highly susceptible to cellulolytic enzymatic digestion. The multiscale structure of this biomass should be able to inform on the origins of its digestibility, but such relationships are currently unknown. This work employs multimodal techniques to learn SBH variability and multiscale structure. Tissue-scale images obtained by electron microscopy, X-ray microtomography, and Raman spectromicroscopy reveal tissue ruptures, lignin localized in the hilum region, and oriented, quite pure cellulose in palisade and hourglass cells of the extra-hilar region. Such specificities of SBH cellulose are reinforced by X-ray diffraction showing cellulose crystallites similar to 20% wider than in typical lignocellulosic biomass. SBH are also remarkably more porous than other lignocellulosic feedstocks in the critical pore size (> similar to 10 nm) for enzyme accessibility. Enzymatic hydrolysis confirmed the low recalcitrance of SBH, demonstrating high yields (e.g., 80% glucose) without SBH pretreatment. These results provide a basis for rationalizing the low recalcitrance of SBH, paving the way for novel developments in SBH biotechnological valorization.
引用
收藏
页码:2095 / 2108
页数:14
相关论文
共 71 条
[31]  
Hames B., 2008, Preparation of samples for compositional analysis
[32]   Impact of hydrolysis on surface area and energy storage applications of activated carbons produced from corn fiber and soy hulls [J].
Herde, Zachary D. ;
Dharmasena, Ruchira ;
Sumanasekera, Gamini ;
Tumuluru, Jaya Shankar ;
Satyavolu, Jagannadh .
CARBON RESOURCES CONVERSION, 2020, 3 (03) :19-28
[33]   CO2-H2O based pretreatment and enzyme hydrolysis of soybean hulls [J].
Islam, S. M. Mahfuzul ;
Li, Qian ;
Al Loman, Abdullah ;
Ju, Lu-Kwang .
ENZYME AND MICROBIAL TECHNOLOGY, 2017, 106 :18-27
[34]   Distribution of lignin and cellulose in compression wood tracheids of Pinus yunnanensis determined by fluorescence microscopy and confocal Raman microscopy [J].
Ji, Zhe ;
Ma, Jian-Feng ;
Zhang, Zhi-Heng ;
Xu, Feng ;
Sun, Run-Cang .
INDUSTRIAL CROPS AND PRODUCTS, 2013, 47 :212-217
[35]  
Kadla J, 2013, Cellulose biomass conversion, P159
[36]   A comparison of liquid hot water and steam pretreatments of sugar cane bagasse for bioconversion to ethanol [J].
Laser, M ;
Schulman, D ;
Allen, SG ;
Lichwa, J ;
Antal, MJ ;
Lynd, LR .
BIORESOURCE TECHNOLOGY, 2002, 81 (01) :33-44
[37]   Structure of cellulose and microcrystalline cellulose from various wood species, cotton and flax studied by X-ray scattering [J].
Leppanen, Kirsi ;
Andersson, Seppo ;
Torkkeli, Mika ;
Knaapila, Matti ;
Kotelnikova, Nina ;
Serimaa, Ritva .
CELLULOSE, 2009, 16 (06) :999-1015
[38]   Multiscale Alterations in Sugar Cane Bagasse and Straw Submitted to Alkaline Deacetylation [J].
Lima, Cleilton S. ;
Rabelo, Sarita C. ;
Ciesielski, Peter N. ;
Roberto, Ines C. ;
Rocha, George J. M. ;
Driemeier, Carlos .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (03) :3796-3804
[39]  
Liu HM., 2017, SOYBEAN BASIS YIELD, DOI [DOI 10.5772/66744, 10.5772/66744]
[40]  
Lourenco A., 2018, LIGNIN TRENDS APPL, DOI [10.5772/32009, DOI 10.5772/32009]