Chandel AK, Garlapati VK, Singh AK, Antunes FAF, da Silva SS (2018) The path forward for
lignocellulose biorefineries: Bottlenecks, solutions, and perspective on commercialization.
Bioresour Technol 264:370–381
Chandel AK, Garlapati VK, Kumar SPJ, Singh AK, Hans M, Kumar S (2020) The role of renewable
chemicals and biofuels in building a bioeconomy. Biofuel Bioprod Bioref 14:830–844
Coker JA (2016) Extremophiles and biotechnology: current uses and prospects. F1000Res 5:396.
https://doi.org/10.12688/f1000research.7432.1
Comacho NA, Aguilar OG (2003) Production, purification and characterization of a low molecular
mass xylanase from Aspergillus sp. and its application in baking. Appl Biochem Biotechnol
104:159–172
Dalmaso GZL, Ferreira D, Vermelho AB (2015) Marine extremophiles: a source of hydrolases for
biotechnological applications. Mar Drugs 13:1925–1965
Das D, Veziroglu TN (2001) Hydrogen production by biological processes. A survey of literature.
Int J Hydrog Energy 26(1):13–28
de Vries RP (2003) Regulation of Aspergillus genes encoding plant cell wall degrading polysaccharide-degrading enzymes; relevance for industrial production. Appl Microbiol Biotechnol
6:10–20
de Vrije T, de Haas GG, Tan GB et al (2002) Pretreatment of Miscanthus for hydrogen production
by Thermotoga elfii. Int J Hydrog Energy 27(11–12):1381–1390
DeCastro ME, Belmonte ER, González-Siso MI (2016) Metagenomics of thermophiles with a focus
on discovery of novel thermozymes. Front Microbiol 7:1521
Fonseca GG, Bombert AK, Heinzle E, Wittmann C (2007) Physiology of the yeast Kluyveromyces
marxianus during batch and chemostat cultures with glucose as the sole carbon source. FEMS
Yeast Res 7:422–435
Gabani P, Singh OV (2013) Radiation-resistant extremophiles and their potential in biotechnology
and therapeutics. Appl Microbiol Biotechnol 97:993–1004
Han J, Tao L, Wang M (2017) Well-to-wake analysis of ethanol-to-jet and sugar-to-jet pathways.
Biotechnol Biofuels 10:21. https://doi.org/10.1186/s13068-017-0698-z
Henrissat H, Driquez H, Viet C, Sehulein A (1985) Synergism of cellulase from Trichoderma reesei
on the degradation of cellulose. Biotechnology 3:722–726
Hileman JI, Ortiz DS, Bartis JT, Wong HM, Donohoo PE, Weiss MA, Waitz IA (2009) Near-term
feasibility of alternative jet fuels. RAND Corporation and Massachusetts Institute of Technology, Santa Monica
Hong J, Wang Y, Kumagai H, Tamaki H (2007) Construction of thermotolerant yeast expressing
thermostable cellulase genes. J Biotechnol 130:114–123
Jimenez-Dıaz L, Caballero A, Perez-Hernandez N, Segura A (2017) Microbial alkane production
for jet fuel industry: motivation, state of the art and perspectives. MicrobBiotechnol 10(1):103–
124. https://doi.org/10.1111/1751-7915.12423
Kang SW, Ko EH, Lee JS, Kim SW (1999) Over production of β-glucosidase by Aspergillus niger
mutant from lignocellulosic biomass. Biotechnol Lett 21:647–650
Karan R, Capes MD, Dassarma S (2012) Function and biotechnology of extremophilic enzymes in
low water activity. Aquat Biosyst 8:4
Kengen SWM, Goorissen HP, Verhaart MRA, Stams AJM, van Niel EWJ, Claassen PAM (2009)
Biological hydrogen production by anaerobic microorganisms. In: Soetaert W, Verdamme EJ
(eds) Biofuels. Wiley, Chichester, pp 197–221
Kotchoni OS, Shonukan OO, Gachomo WE (2003) Bacillus pumillus BpCRI 6, a promising
candidate for cellulase production under conditions of catabolite repression. Afr J Biotechnol
2:140–146
Kubicek P, Pentill ME (1998) Trichoderma gliocladium. Taylor and Francis Ltd, London, pp 49–72
Lee J, Mo J (2011) Analysis of technological innovation and environmental performance improvement in aviation sector. Int J Environ Res 8:3777–3795. https://doi.org/10.3390/ijerph8093777
Lynd LR, Jin H, Michels JG, Wyman CE, Dale B (2003) Posting date. Bioenergy: background,
potential, and policy. Center for Strategic and International Studies, Washington, DC
3 Role of Thermophiles in Production of Aviation Biofuels: Fueling the Future
79
lignocellulose biorefineries: Bottlenecks, solutions, and perspective on commercialization.
Bioresour Technol 264:370–381
Chandel AK, Garlapati VK, Kumar SPJ, Singh AK, Hans M, Kumar S (2020) The role of renewable
chemicals and biofuels in building a bioeconomy. Biofuel Bioprod Bioref 14:830–844
Coker JA (2016) Extremophiles and biotechnology: current uses and prospects. F1000Res 5:396.
https://doi.org/10.12688/f1000research.7432.1
Comacho NA, Aguilar OG (2003) Production, purification and characterization of a low molecular
mass xylanase from Aspergillus sp. and its application in baking. Appl Biochem Biotechnol
104:159–172
Dalmaso GZL, Ferreira D, Vermelho AB (2015) Marine extremophiles: a source of hydrolases for
biotechnological applications. Mar Drugs 13:1925–1965
Das D, Veziroglu TN (2001) Hydrogen production by biological processes. A survey of literature.
Int J Hydrog Energy 26(1):13–28
de Vries RP (2003) Regulation of Aspergillus genes encoding plant cell wall degrading polysaccharide-degrading enzymes; relevance for industrial production. Appl Microbiol Biotechnol
6:10–20
de Vrije T, de Haas GG, Tan GB et al (2002) Pretreatment of Miscanthus for hydrogen production
by Thermotoga elfii. Int J Hydrog Energy 27(11–12):1381–1390
DeCastro ME, Belmonte ER, González-Siso MI (2016) Metagenomics of thermophiles with a focus
on discovery of novel thermozymes. Front Microbiol 7:1521
Fonseca GG, Bombert AK, Heinzle E, Wittmann C (2007) Physiology of the yeast Kluyveromyces
marxianus during batch and chemostat cultures with glucose as the sole carbon source. FEMS
Yeast Res 7:422–435
Gabani P, Singh OV (2013) Radiation-resistant extremophiles and their potential in biotechnology
and therapeutics. Appl Microbiol Biotechnol 97:993–1004
Han J, Tao L, Wang M (2017) Well-to-wake analysis of ethanol-to-jet and sugar-to-jet pathways.
Biotechnol Biofuels 10:21. https://doi.org/10.1186/s13068-017-0698-z
Henrissat H, Driquez H, Viet C, Sehulein A (1985) Synergism of cellulase from Trichoderma reesei
on the degradation of cellulose. Biotechnology 3:722–726
Hileman JI, Ortiz DS, Bartis JT, Wong HM, Donohoo PE, Weiss MA, Waitz IA (2009) Near-term
feasibility of alternative jet fuels. RAND Corporation and Massachusetts Institute of Technology, Santa Monica
Hong J, Wang Y, Kumagai H, Tamaki H (2007) Construction of thermotolerant yeast expressing
thermostable cellulase genes. J Biotechnol 130:114–123
Jimenez-Dıaz L, Caballero A, Perez-Hernandez N, Segura A (2017) Microbial alkane production
for jet fuel industry: motivation, state of the art and perspectives. MicrobBiotechnol 10(1):103–
124. https://doi.org/10.1111/1751-7915.12423
Kang SW, Ko EH, Lee JS, Kim SW (1999) Over production of β-glucosidase by Aspergillus niger
mutant from lignocellulosic biomass. Biotechnol Lett 21:647–650
Karan R, Capes MD, Dassarma S (2012) Function and biotechnology of extremophilic enzymes in
low water activity. Aquat Biosyst 8:4
Kengen SWM, Goorissen HP, Verhaart MRA, Stams AJM, van Niel EWJ, Claassen PAM (2009)
Biological hydrogen production by anaerobic microorganisms. In: Soetaert W, Verdamme EJ
(eds) Biofuels. Wiley, Chichester, pp 197–221
Kotchoni OS, Shonukan OO, Gachomo WE (2003) Bacillus pumillus BpCRI 6, a promising
candidate for cellulase production under conditions of catabolite repression. Afr J Biotechnol
2:140–146
Kubicek P, Pentill ME (1998) Trichoderma gliocladium. Taylor and Francis Ltd, London, pp 49–72
Lee J, Mo J (2011) Analysis of technological innovation and environmental performance improvement in aviation sector. Int J Environ Res 8:3777–3795. https://doi.org/10.3390/ijerph8093777
Lynd LR, Jin H, Michels JG, Wyman CE, Dale B (2003) Posting date. Bioenergy: background,
potential, and policy. Center for Strategic and International Studies, Washington, DC
3 Role of Thermophiles in Production of Aviation Biofuels: Fueling the Future
79
