Rashid G, Durán-Peña M, Rahmanpour R, Sapsford D, Bugg T (2017) Delignification and
enhanced gas release from soil containing lignocellulose by treatment with bacterial lignin
degraders. J Appl Microbiol 123(1):159–171
Razeq FM, Jurak E, Stogios PJ, Yan R, Tenkanen M, Kabel MA, Wang W, Master ER (2018) A
novel acetyl xylan esterase enabling complete deacetylation of substituted xylans. Biotechnol
Biofuels 11(1):1–12
Reyes-Ortiz V, Heins RA, Cheng G, Kim EY, Vernon BC, Elandt RB, Adams PD, Sale KL, Hadi
MZ, Simmons BA (2013) Addition of a carbohydrate-binding module enhances cellulase
penetration into cellulose substrates. Biotechnol Biofuels 6(1):1–13
Romero E, Speranza M, García-Guinea J, Martínez ÁT, Martínez MJ (2007) An anamorph of the
white-rot fungus Bjerkandera adusta capable of colonizing and degrading compact disc components. FEMS Microbiol Lett 275(1):122–129
Saha BC (2003) Hemicellulose bioconversion. J Ind Microbiol Biotechnol 30(5):279–291
Saha BC, Qureshi N, Kennedy GJ, Cotta MA (2016) Biological pretreatment of corn Stover with
white-rot fungus for improved enzymatic hydrolysis. Int Biodeterior Biodegradation 109:29–35
Saini R, Saini HS, Dahiya A (2017) Amylases: characteristics and industrial applications. J
Pharmacogn Phytochem 6(4):1865–1871
Sakamoto T, Hasunuma T, Hori Y, Yamada R, Kondo A (2012) Direct ethanol production from
hemicellulosic materials of rice straw by use of an engineered yeast strain codisplaying three
types of hemicellulolytic enzymes on the surface of xylose-utilizing Saccharomyces cerevisiae
cells. J Biotechnol 158(4):203–210
Saloheimo M, Paloheimo M, Hakola S, Pere J, Swanson B, Nyyssönen E, Bhatia A, Ward M,
Penttilä M (2002) Swollenin, a Trichoderma reesei protein with sequence similarity to the plant
expansins, exhibits disruption activity on cellulosic materials. Eur J Biochem 269
(17):4202–4211
Sánchez C (2009) Lignocellulosic residues: biodegradation and bioconversion by fungi. Biotechnol
Adv 27(2):185–194
Sangkharak K, Vangsirikul P, Janthachat S (2011) Isolation of novel cellulase from agricultural soil
and application for ethanol production. Int J Adv Biotechnol Res 2(2):230–239
Sanhueza C, Carvajal G, Soto-Aguilar J, Lienqueo ME, Salazar O (2018) The effect of a lytic
polysaccharide monooxygenase and a xylanase from Gloeophyllum trabeum on the enzymatic
hydrolysis of lignocellulosic residues using a commercial cellulase. Enzym Microb Technol
113:75–82
Santhi VS, Bhagat AK, Saranya S, Govindarajan G, Jebakumar SRD (2014) Seaweed (Eucheuma
cottonii) associated microorganisms, a versatile enzyme source for the lignocellulosic biomass
processing. Int Biodeterior Biodegrad 96:144–151. https://doi.org/10.1016/j.ibiod.2014.08.007
Santos CR, Meza AN, Hoffmam ZB, Silva JC, Alvarez TM, Ruller R, Giesel GM, Verli H, Squina
FM, Prade RA, Murakami MT (2010) Thermal-induced conformational changes in the product
release area drive the enzymatic activity of xylanases 10B: crystal structure, conformational
stability and functional characterization of the xylanase 10B from Thermotoga petrophila
RKU-1. Biochem Biophys Res Commun 403(2):214–219. https://doi.org/10.1016/j.bbrc.
2010.11.010
Saraswat V, Bisaria VS (1997) Biosynthesis of xylanolytic and xylan-debranching enzymes in
Melanocarpus albomyces IIS 68. J Ferment Bioeng 83(4):352–357
Satlewal A, Agrawal R, Bhagia S, Sangoro J, Ragauskas AJ (2018) Natural deep eutectic solvents
for lignocellulosic biomass pretreatment: recent developments, challenges and novel opportunities. Biotechnol Adv 36(8):2032–2050
Scheller HV, Ulvskov P (2010) Hemicelluloses. Annu Rev Plant Biol 61:263–289
Schwarz W (2001) The cellulosome and cellulose degradation by anaerobic bacteria. Appl
Microbiol Biotechnol 56(5–6):634–649
Selvam K, Senbagam D, Selvankumar T, Sudhakar C, Kamala-Kannan S, Senthilkumar B,
Govarthanan M (2017) Cellulase enzyme: homology modeling, binding site identification and
molecular docking. J Mol Struct 1150:61–67. https://doi.org/10.1016/j.molstruc.2017.08.067
302
T. Karaytuğ et al.
enhanced gas release from soil containing lignocellulose by treatment with bacterial lignin
degraders. J Appl Microbiol 123(1):159–171
Razeq FM, Jurak E, Stogios PJ, Yan R, Tenkanen M, Kabel MA, Wang W, Master ER (2018) A
novel acetyl xylan esterase enabling complete deacetylation of substituted xylans. Biotechnol
Biofuels 11(1):1–12
Reyes-Ortiz V, Heins RA, Cheng G, Kim EY, Vernon BC, Elandt RB, Adams PD, Sale KL, Hadi
MZ, Simmons BA (2013) Addition of a carbohydrate-binding module enhances cellulase
penetration into cellulose substrates. Biotechnol Biofuels 6(1):1–13
Romero E, Speranza M, García-Guinea J, Martínez ÁT, Martínez MJ (2007) An anamorph of the
white-rot fungus Bjerkandera adusta capable of colonizing and degrading compact disc components. FEMS Microbiol Lett 275(1):122–129
Saha BC (2003) Hemicellulose bioconversion. J Ind Microbiol Biotechnol 30(5):279–291
Saha BC, Qureshi N, Kennedy GJ, Cotta MA (2016) Biological pretreatment of corn Stover with
white-rot fungus for improved enzymatic hydrolysis. Int Biodeterior Biodegradation 109:29–35
Saini R, Saini HS, Dahiya A (2017) Amylases: characteristics and industrial applications. J
Pharmacogn Phytochem 6(4):1865–1871
Sakamoto T, Hasunuma T, Hori Y, Yamada R, Kondo A (2012) Direct ethanol production from
hemicellulosic materials of rice straw by use of an engineered yeast strain codisplaying three
types of hemicellulolytic enzymes on the surface of xylose-utilizing Saccharomyces cerevisiae
cells. J Biotechnol 158(4):203–210
Saloheimo M, Paloheimo M, Hakola S, Pere J, Swanson B, Nyyssönen E, Bhatia A, Ward M,
Penttilä M (2002) Swollenin, a Trichoderma reesei protein with sequence similarity to the plant
expansins, exhibits disruption activity on cellulosic materials. Eur J Biochem 269
(17):4202–4211
Sánchez C (2009) Lignocellulosic residues: biodegradation and bioconversion by fungi. Biotechnol
Adv 27(2):185–194
Sangkharak K, Vangsirikul P, Janthachat S (2011) Isolation of novel cellulase from agricultural soil
and application for ethanol production. Int J Adv Biotechnol Res 2(2):230–239
Sanhueza C, Carvajal G, Soto-Aguilar J, Lienqueo ME, Salazar O (2018) The effect of a lytic
polysaccharide monooxygenase and a xylanase from Gloeophyllum trabeum on the enzymatic
hydrolysis of lignocellulosic residues using a commercial cellulase. Enzym Microb Technol
113:75–82
Santhi VS, Bhagat AK, Saranya S, Govindarajan G, Jebakumar SRD (2014) Seaweed (Eucheuma
cottonii) associated microorganisms, a versatile enzyme source for the lignocellulosic biomass
processing. Int Biodeterior Biodegrad 96:144–151. https://doi.org/10.1016/j.ibiod.2014.08.007
Santos CR, Meza AN, Hoffmam ZB, Silva JC, Alvarez TM, Ruller R, Giesel GM, Verli H, Squina
FM, Prade RA, Murakami MT (2010) Thermal-induced conformational changes in the product
release area drive the enzymatic activity of xylanases 10B: crystal structure, conformational
stability and functional characterization of the xylanase 10B from Thermotoga petrophila
RKU-1. Biochem Biophys Res Commun 403(2):214–219. https://doi.org/10.1016/j.bbrc.
2010.11.010
Saraswat V, Bisaria VS (1997) Biosynthesis of xylanolytic and xylan-debranching enzymes in
Melanocarpus albomyces IIS 68. J Ferment Bioeng 83(4):352–357
Satlewal A, Agrawal R, Bhagia S, Sangoro J, Ragauskas AJ (2018) Natural deep eutectic solvents
for lignocellulosic biomass pretreatment: recent developments, challenges and novel opportunities. Biotechnol Adv 36(8):2032–2050
Scheller HV, Ulvskov P (2010) Hemicelluloses. Annu Rev Plant Biol 61:263–289
Schwarz W (2001) The cellulosome and cellulose degradation by anaerobic bacteria. Appl
Microbiol Biotechnol 56(5–6):634–649
Selvam K, Senbagam D, Selvankumar T, Sudhakar C, Kamala-Kannan S, Senthilkumar B,
Govarthanan M (2017) Cellulase enzyme: homology modeling, binding site identification and
molecular docking. J Mol Struct 1150:61–67. https://doi.org/10.1016/j.molstruc.2017.08.067
302
T. Karaytuğ et al.
