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Research Articles

Development of a process for the enhanced enzymatic digestibility of solid waste from tofu to yield fermentable biosugars

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Pages 64-74 | Received 16 Jun 2020, Accepted 15 Dec 2020, Published online: 26 Dec 2020

References

  • Adeyemo SM, Onilude AA. 2013. Enzymatic reduction of anti-nutritional factors in fermenting soybeans by Lactobacillus plantarum isolates from fermenting cereals. Niger Food J. 31 :84–90.
  • Andrade JC, Mandarino JMG, Kurozawa LE, Ida EI. 2016. The effect of thermal treatment of whole soybean flour on the conversion of isoflavones and inactivation of trypsin inhibitors. Food Chem. 194:1095–1101.
  • AOAC 2000a. Method 923.03 Official Methods of Analysis. 17th ed. Washington (DC): Association of Official Analytical Chemists.
  • AOAC 2000b. Method 960.39. Official Methods of Analysis. 17th ed. Washington (DC): Association of Official Analytical Chemists.
  • AOAC 2000c. Method 960.52 Official Methods of Analysis. 17th ed. Washington (DC): Association of Official Analytical Chemists.
  • Araujo A, Ward OP. 1990. Hemicellulases of bacillus species: preliminary comparative studies on production and properties of mannanases and galactanases. J Appl Bacteriol. 68 :253–261.
  • Bernfeld P. 1955. Amylases, alpha and beta.pdf. Methods Enzymol. I:149–158.
  • Cassales A, de Souza-Cruz PB, Rech R, Záchia Ayub MA. 2011. Optimization of soybean hull acid hydrolysis and its characterization as a potential substrate for bioprocessing. Biomass Bioenergy. 35 :4675–4683.
  • Choi IS, Kim YG, Jung JK, Bae HJ. 2015. Soybean waste (okara) as a valorization biomass for the bioethanol production. Energy. 93:1742–1747.
  • Ghose TK. 1987. Measurement of cellulase activities. Pure Appl Chem. 59 :257–268.
  • Guermani L, Villaume C, Bau HW, Chandrasiri V, Nicolas JP. 1992. Composition et valeur nutritionelle de l’Okara fermenté par Rhizopus oligosporus. Sci Aliments. 12 :441–451.
  • Huisman MMH, Schols HA, Voragen AGJ. 1996. Isolation and sequential extraction of cell wall polysaccharides from soy meal. Prog Biotechnol. 14:511–515.
  • José Villanueva-Suárez M, Luisa Pérez-Cózar M, Redondo-Cuenca A. 2013. Sequential extraction of polysaccharides from enzymatically hydrolyzed okara byproduct: physicochemical properties and in vitro fermentability. Food Chem. 141 :1114–1119.
  • Karr-Lilienthal LK, Kadzere CT, Grieshop CM, Fahey GC. 2005. Chemical and nutritional properties of soybean carbohydrates as related to nonruminants: a review. Livest Prod Sci. 97 :1–12.
  • Kasai N, Murata A, Inui H, Sakamoto T, Kahn RI. 2004. Enzymatic high digestion of soybean milk residue (okara). J Agric Food Chem. 52 :5709–5716.
  • Kim MS, Lee DY. 2010. Fermentative hydrogen production from tofu-processing waste and anaerobic digester sludge using microbial consortium. Bioresour Technol. 101 :S48–S52.
  • Li B, Lu F, Nan H, Liu Y. 2012. Isolation and structural characterisation of okara polysaccharides. Molecules. 17 :753–761.
  • Li S, Wang L, Song C, Hu X, Sun H, Yang Y, Lei Z, Zhang Z. 2014. Utilization of soybean curd residue for polysaccharides by Wolfiporia extensa (Peck) Ginns nd the antioxidant activities in vitro. J Taiwan Inst Chem Eng. 45 :6–11.
  • Li B, Yang W, Nie Y, Kang F, Goff HD, Cui SW. 2019. Effect of steam explosion on dietary fiber, polysaccharide, protein and physicochemical properties of okara. Food Hydrocoll. 94:48–56.
  • Li S, Zhu D, Li K, Yang Y, Lei Z, Zhang Z. 2013. Soybean curd residue: composition, utilization, and related limiting factors. ISRN Ind Eng. 2013:423590.
  • Limayem A, Ricke SC. 2012. Lignocellulosic biomass for bioethanol production: current perspectives, potential issues and future prospects. Prog Energy Combust Sci. 38 :449–467.
  • Mateos-Aparicio I, Redondo-Cuenca A, Villanueva-Suárez MJ. 2010. Isolation and characterisation of cell wall polysaccharides from legume by-products: Okara (soymilk residue), pea pod and broad bean pod. Food Chem. 122 :339–345.
  • Mateos-Aparicio I, Redondo-Cuenca A, Villanueva-Suárez MJ, Zapata-Revilla MA, Tenorio-Sanz MD. 2010. Pea pod, broad bean pod and okara, potential sources of functional compounds. LWT Food Sci Technol. 43 :1467–1470.
  • Mielenz JR, Bardsley JS, Wyman CE. 2009. Fermentation of soybean hulls to ethanol while preserving protein value. Bioresour Technol. 100 :3532–3539.
  • Nguyen TAH, Ngo HH, Guo WS, Zhang J, Liang S, Tung KL. 2013. Feasibility of iron loaded ‘okara’ for biosorption of phosphorous in aqueous solutions. Bioresour Technol. 150:42–49.
  • Nguyen TH, Ra CH, Sunwoo IY, Sukwong P, Jeong GT, Kim SK. 2018. Bioethanol production from soybean residue via separate hydrolysis and fermentation. Appl Biochem Biotechnol. 184:513–523.
  • Nguyen QA, Yang J, Bae HJ. 2017. Bioethanol production from individual and mixed agricultural biomass residues. Ind Crops Prod. 95:718–725.
  • Ouyang J, Ma R, Zheng Z, Cai C, Zhang M, Jiang T. 2013. Open fermentative production of l-lactic acid by Bacillus sp. strain NL01 using lignocellulosic hydrolyzates as low-cost raw material. Bioresour Technol. 135:475–480.
  • Préstamo G, Rupérez P, Espinosa-Martos I, Villanueva MJ, Lasunción MA. 2007. The effects of okara on rat growth, cecal fermentation, and serum lipids. Eur Food Res Technol. 225 :925–928.
  • Redondo-Cuenca A, Villanueva-Suárez MJ, Mateos-Aparicio I. 2008. Soybean seeds and its by-product okara as sources of dietary fibre. Measurement by AOAC and Englyst methods. Food Chem. 108 :1099–1105.
  • Silverstein RA, Chen Y, Sharma-Shivappa RR, Boyette MD, Osborne J. 2007. A comparison of chemical pretreatment methods for improving saccharification of cotton stalks. Bioresour Technol. 98 :3000–3011.
  • Sluiter CSA, Hames B, Ruiz R, Slui J, Scarlata C, Sluiter J, Templeton D, Crocker D. 2008. Determination of structural carbohydrates and lignin in biomass. Laboratory Analytical Procedure. 1617:1–16.
  • Vong WC, Liu SQ. 2016. Biovalorisation of okara (soybean residue) for food and nutrition. Trends Food Sci Technol. 52:139–147.
  • Vong WC, Liu SQ. 2019. The effects of carbohydrase, probiotic Lactobacillus paracasei and yeast Lindnera saturnus on the composition of a novel okara (soybean residue) functional beverage. LWT Food Sci Technol. 100:196–204.
  • Yoshida M, Liu Y, Uchida S, Kawarada K, Ukagami Y, Ichinose H, Kaneko S, Fukuda K. 2008. Effects of cellulose crystallinity, hemicellulose, and lignin on the enzymatic hydrolysis of Miscanthus sinensis to monosaccharides. Biosci Biotechnol Biochem. 72:805–810.
  • Yu CA, Yang CY. 2019. Bio-ionic liquid pretreatment and ultrasound-promoted enzymatic hydrolysis of black soybean okara. J Biosci Bioeng. 127 :767–773.
  • Zhou X, Zhou X, Huang L, Cao R, Xu Y. 2017. Efficient coproduction of gluconic acid and xylonic acid from lignocellulosic hydrolysate by Zn(II)-selective inhibition on whole-cell catalysis by Gluconobacter oxydans. Bioresour Technol. 243:855–859.

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