Olofsson K, Bertilsson M, Lidén G (2008) A short review on SSF–an interesting process option for
ethanol production from lignocellulosic feedstocks. Biotechnol Biofuels 1(1):7
Orhan N, Kiymaz NA, Peksel A (2014) A novel pullulanase from a fungus Hypocrea jecorina
QM9414: production and biochemical characterization. Indian J Biochem Biophys 51:149–155
Orth A, Tien M (1995) Biotechnology of lignin degradation. In: Genetics and biotechnology.
Springer, Berlin, pp 287–302
Palmer JD, Brigham CJ (2016) Feasibility of triacylglycerol production for biodiesel, utilizing
Rhodococcus opacus as a biocatalyst and fishery waste as feedstock. Renew Sust Energ Rev
56:922–928
Panbangred W, Kawaguchi O, Tomita T, Shinmyo A, Okada H (1984) Isolation of two
β-xylosidase genes of Bacillus pumilus and comparison of their gene products. Eur J Biochem
138(2):267–273
Parisot J, Langlois V, Sakanyan V, Rabiller C (2003) Cloning expression and characterization of a
thermostable exopolygalacturonase from Thermotoga maritima. Carbohydr Res 338
(12):1333–1337
Park C-S, Kawaguchi T, Sumitani J-I (2001) Purification and characterization of cellulases (CBH I
and EGL 1) produced by thermophilic microorganism Streptomyces sp. M23. Appl Biol Sci 7
(1):27–35
Paul M, Panda G, Mohapatra PKD, Thatoi H (2020) Study of structural and molecular interaction
for the catalytic activity of cellulases: an insight in cellulose hydrolysis for higher bioethanol
yield. J Biomol Struct Dyn 1204:127547. https://doi.org/10.1016/j.molstruc.2019.127547
Pimentel D, Marklein A, Toth MA, Karpoff MN, Paul GS, McCormack R, Kyriazis J, Krueger T
(2009) Food versus biofuels: environmental and economic costs. Hum Ecol 37(1):1
Plácido J, Capareda S (2015) Ligninolytic enzymes: a biotechnological alternative for bioethanol
production. Bioresour Bioprocess 2(1):23
Polizeli M, Rizzatti A, Monti R, Terenzi H, Jorge JA, Amorim D (2005) Xylanases from fungi:
properties and industrial applications. Appl Microbiol Biotechnol 67(5):577–591
Popp J, Lakner Z, Harangi-Rákosa M, Fáric M (2014) The effect of bioenergy expansion: food,
energy, and environment. Renew Sust Energ Rev 32:559–578. https://doi.org/10.1016/j.rser.
2014.01.056
Prade RA (1996) Xylanases: from biology to biotechnology. Biotechnol Genet Eng Rev 13
(1):101–132
Prajapati VD, Jani GK, Khanda SM (2013) Pullulan: an exopolysaccharide and its various applications. Carbohydr Polym 95(1):540–549
Prasad RK, Chatterjee S, Mazumder PB, Gupta SK, Sharma S, Vairale MG, Datta S, Dwivedi SK,
Gupta DK (2019) Bioethanol production from waste lignocelluloses: a review on microbial
degradation potential. Chemosphere 231:588–606
Puls J (1997) Chemistry and biochemistry of hemicelluloses: relationship between hemicellulose
structure and enzymes required for hydrolysis. In: Macromolecular symposia, vol 1. Wiley,
New York, pp 183–196
Pushpam PL, Rajesh T, Gunasekaran P (2011) Identification and characterization of alkaline serine
protease from goat skin surface metagenome. AMB Express 1(1):3
Quinlan RJ, Sweeney MD, Leggio LL, Otten H, Poulsen J-CN, Johansen KS, Krogh KB, Jørgensen
CI, Tovborg M, Anthonsen A (2011) Insights into the oxidative degradation of cellulose by a
copper metalloenzyme that exploits biomass components. Proc Natl Acad Sci 108
(37):15079–15084
Rajak RC, Banerjee R (2016) Enzyme mediated biomass pretreatment and hydrolysis: a biotechnological venture towards bioethanol production. RSC Adv 6(66):61301–61311
Rana V, Eckard AD, Ahring BK (2014) Comparison of SHF and SSF of wet exploded corn Stover
and loblolly pine using in-house enzymes produced from T. reesei RUT C30 and
A. saccharolyticus. Springerplus 3(1):516
Rao MB, Tanksale AM, Ghatge MS, Deshpande VV (1998) Molecular and biotechnological
aspects of microbial proteases. Microbiol Mol Biol Rev 62(3):597–635
9 Microbial and Bioinformatics Approach in Biofuel Production
301
ethanol production from lignocellulosic feedstocks. Biotechnol Biofuels 1(1):7
Orhan N, Kiymaz NA, Peksel A (2014) A novel pullulanase from a fungus Hypocrea jecorina
QM9414: production and biochemical characterization. Indian J Biochem Biophys 51:149–155
Orth A, Tien M (1995) Biotechnology of lignin degradation. In: Genetics and biotechnology.
Springer, Berlin, pp 287–302
Palmer JD, Brigham CJ (2016) Feasibility of triacylglycerol production for biodiesel, utilizing
Rhodococcus opacus as a biocatalyst and fishery waste as feedstock. Renew Sust Energ Rev
56:922–928
Panbangred W, Kawaguchi O, Tomita T, Shinmyo A, Okada H (1984) Isolation of two
β-xylosidase genes of Bacillus pumilus and comparison of their gene products. Eur J Biochem
138(2):267–273
Parisot J, Langlois V, Sakanyan V, Rabiller C (2003) Cloning expression and characterization of a
thermostable exopolygalacturonase from Thermotoga maritima. Carbohydr Res 338
(12):1333–1337
Park C-S, Kawaguchi T, Sumitani J-I (2001) Purification and characterization of cellulases (CBH I
and EGL 1) produced by thermophilic microorganism Streptomyces sp. M23. Appl Biol Sci 7
(1):27–35
Paul M, Panda G, Mohapatra PKD, Thatoi H (2020) Study of structural and molecular interaction
for the catalytic activity of cellulases: an insight in cellulose hydrolysis for higher bioethanol
yield. J Biomol Struct Dyn 1204:127547. https://doi.org/10.1016/j.molstruc.2019.127547
Pimentel D, Marklein A, Toth MA, Karpoff MN, Paul GS, McCormack R, Kyriazis J, Krueger T
(2009) Food versus biofuels: environmental and economic costs. Hum Ecol 37(1):1
Plácido J, Capareda S (2015) Ligninolytic enzymes: a biotechnological alternative for bioethanol
production. Bioresour Bioprocess 2(1):23
Polizeli M, Rizzatti A, Monti R, Terenzi H, Jorge JA, Amorim D (2005) Xylanases from fungi:
properties and industrial applications. Appl Microbiol Biotechnol 67(5):577–591
Popp J, Lakner Z, Harangi-Rákosa M, Fáric M (2014) The effect of bioenergy expansion: food,
energy, and environment. Renew Sust Energ Rev 32:559–578. https://doi.org/10.1016/j.rser.
2014.01.056
Prade RA (1996) Xylanases: from biology to biotechnology. Biotechnol Genet Eng Rev 13
(1):101–132
Prajapati VD, Jani GK, Khanda SM (2013) Pullulan: an exopolysaccharide and its various applications. Carbohydr Polym 95(1):540–549
Prasad RK, Chatterjee S, Mazumder PB, Gupta SK, Sharma S, Vairale MG, Datta S, Dwivedi SK,
Gupta DK (2019) Bioethanol production from waste lignocelluloses: a review on microbial
degradation potential. Chemosphere 231:588–606
Puls J (1997) Chemistry and biochemistry of hemicelluloses: relationship between hemicellulose
structure and enzymes required for hydrolysis. In: Macromolecular symposia, vol 1. Wiley,
New York, pp 183–196
Pushpam PL, Rajesh T, Gunasekaran P (2011) Identification and characterization of alkaline serine
protease from goat skin surface metagenome. AMB Express 1(1):3
Quinlan RJ, Sweeney MD, Leggio LL, Otten H, Poulsen J-CN, Johansen KS, Krogh KB, Jørgensen
CI, Tovborg M, Anthonsen A (2011) Insights into the oxidative degradation of cellulose by a
copper metalloenzyme that exploits biomass components. Proc Natl Acad Sci 108
(37):15079–15084
Rajak RC, Banerjee R (2016) Enzyme mediated biomass pretreatment and hydrolysis: a biotechnological venture towards bioethanol production. RSC Adv 6(66):61301–61311
Rana V, Eckard AD, Ahring BK (2014) Comparison of SHF and SSF of wet exploded corn Stover
and loblolly pine using in-house enzymes produced from T. reesei RUT C30 and
A. saccharolyticus. Springerplus 3(1):516
Rao MB, Tanksale AM, Ghatge MS, Deshpande VV (1998) Molecular and biotechnological
aspects of microbial proteases. Microbiol Mol Biol Rev 62(3):597–635
9 Microbial and Bioinformatics Approach in Biofuel Production
301
