b-mannanases obtained by solid substrate fermentation of spent
soluble coffee wastes and copra paste using Aspergillus oryzae and
Aspergillus niger. Journal of the Science of Food and Agriculture.
https://doi.org/10.1002/1097-0010(200007)80:9%3c1343:aidjsfa651%3e3.0.co;2-%23.
Regmi, S., Pradeep, G. C., Choi, Y. H., Choi, Y. S., Choi, J. E., Cho, S.
S., Yoo, J. C. (2016). A multi-tolerant low molecular weight
mannanase from Bacillus sp. CSB39 and its compatibility as an
industrial biocatalyst. Enzyme and Microbial Technology. https://
doi.org/10.1016/j.enzmictec.2016.06.018.
Rivas, B., Domínguez, J. M., Domínguez, H., & Parajó, J. C. (2002).
Bioconversion of posthydrolysed autohydrolysis liquors: An alternative for xylitol production from corn cobs. Enyzme and Microbial
Technology. https://doi.org/10.1016/S0141-0229(02)00098-4.
Robak, K., & Balcerek, M. (2018). Review of second generation
bioethanol production from residual biomass. Food Technology and
Biotechnology.
Roberts, M. J., Long, S. P., Tieszen, L. L., & Beadle, C. L. (1985).
Measurement of plant biomass and net primary production. In
Techniques in bioproductivity and photosynthesis.
Robl, D., da Silva Delabona, P., Mergel, C. M., Rojas, J. D., dos Santos
Costa, P., Pimentel, I. C., et al. (2013). The capability of endophytic
fungi for production of hemicellulases and related enzymes. BMC
Biotechnology. https://doi.org/10.1186/1472-6750-13-94.
Rodrussamee, N., Lertwattanasakul, N., Hirata, K., Suprayogi, Limtong S., Kosaka, T., & Yamada, M. (2011). Growth and ethanol
fermentation ability on hexose and pentose sugars and glucose
effect under various conditions in thermotolerant yeast Kluyveromyces marxianus. Applied Microbiology and Biotechnology.
https://doi.org/10.1007/s00253-011-3218-2.
Rodrussamee, N., Sattayawat, P., & Yamada, M. (2018). Highly
efficient conversion of xylose to ethanol without glucose repression
by newly isolated thermotolerant Spathaspora passalidarum
CMUWF1-2. BMC Microbiology. https://doi.org/10.1186/s12866018-1218-4.
Rydholm SA (1965) Pulping processes.
Saha, B. C. (2003). Hemicellulose bioconversion. Journal of Industrial
Microbiology and Biotechnology.
Saleh, S. H., Mohd Damanhuri Shah, S. N., Abdul Khalil, K., Bujang,
A. (2016). Xylooligosaccharides production from oil palm frond by
Trichoderma longibrachiatum xylanase. The Malaysian Journal of
Analytical Sciences. https://doi.org/10.17576/mjas-2016-2003-09.
Sedlmeyer, F. B. (2011). Xylan as by-product of biorefineries:
Characteristics and potential use for food applications. Food
Hydrocolloids, 25, 1891–1898. https://doi.org/10.1016/j.foodhyd.
2011.04.005.
Selim, K. A., El-Ghwas, D. E., Easa, S. M., & Abdelwahab Hassan, M.
I. (2018). Bioethanol a microbial biofuel metabolite. Fermentation:
New insights of yeasts metabolic engineering.
Shariq, M., & Sohail, M. (2019). Application of Candida tropicalis
MK-160 for the production of xylanase and ethanol. Journal of
King Saud University-Science. https://doi.org/10.1016/j.jksus.2018.
04.009.
Sharma, M., Mahajan, C., Bhatti, M. S., & Chadha, B. S. (2016).
Profiling and production of hemicellulases by thermophilic fungus
Malbranchea flava and the role of xylanases in improved bioconversion of pretreated lignocellulosics to ethanol. 3 Biotech. https://
doi.org/10.1007/s13205-015-0325-2.
Sharma, N. K., Behera, S., Arora, R., & Kumar, S. (2017). Evolutionary adaptation of Kluyveromyces marxianus NIRE-K3 for enhanced
xylose utilization. Frontiers in Energy Research. https://doi.org/10.
3389/fenrg.2017.00032.
Singh, A., & Olsen, S. I. (2011). A critical review of biochemical
conversion, sustainability and life cycle assessment of algal
biofuels. Applied Energy. https://doi.org/10.1016/j.apenergy.2010.
12.012.
Singla, A., Paroda, S., Dhamija, S. S., Goyal, S., Shekhawat, K.,
Amachi, S., et al. (2012). Bioethanol production from xylose:
Problems and possibilities. Journal of Biofuels, 3, 1. https://doi.org/
10.5958/j.0976-3015.3.1.004.
Smeets, E. M. W., Faaij, A. P. C., Lewandowski, I. M., & Turkenburg,
W. C. (2007). A bottom-up assessment and review of global
bio-energy potentials to 2050. Progress in Energy and Combustion
Science.
Soto, M. L., Domínguez, H., Núñez, M. J., & Lema, J. M. (1994).
Enzymatic saccharification of alkali-treated sunflower hulls. Bioresource Technology. https://doi.org/10.1016/0960-8524(94)90173-2.
Subramaniyan, S., & Prema, P. (2002). Biotechnology of microbial
xylanases: Enzymology, molecular biology, and application. Critical Reviews in Biotechnology.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83, 1–11.
https://doi.org/10.1016/S0960-8524(01)00212-7.
Sun, Y., Lu, X., Zhang, S., Zhang, R., & Wang, X. (2011). Kinetic
study for Fe(NO3)3 catalyzed hemicellulose hydrolysis of different
corn stover silages. Bioresource Technology. https://doi.org/10.
1016/j.biortech.2010.11.076.
Takata, E., Tsuruoka, T., Tsutsumi, K., Tsutsumi, Y., & Tabata, K.
(2014). Production of xylitol and tetrahydrofurfuryl alcohol from
xylan in napier grass by a hydrothermal process with phosphorus
oxoacids followed by aqueous phase hydrogenation. Bioresource
Technology. https://doi.org/10.1016/j.biortech.2014.05.112.
Tang, X., Zeng, X., Li, Z., Hu, L., Sun, Y., Liu, S., et al. (2014).
Production of c-valerolactone from lignocellulosic biomass for
sustainable fuels and chemicals supply. Renewable and Sustainable
Energy Reviews.
Tayi, L., Maku, R. V., Patel, H. K., Sonti, R. V. (2016). Identification
of pectin degrading enzymes secreted by Xanthomonas oryzae pv.
Oryzae and determination of their role in virulence on rice. PLoS
One. https://doi.org/10.1371/journal.pone.0166396.
Téllez-Luis, S. J., Ramírez, J. A., & Vázquez, M. (2002). Mathematical
modelling of hemicellulosic sugar production from sorghum straw.
Journal of Food Engineering. https://doi.org/10.1016/S0260-8774
(01)00117-0.
Toivola, A., Yarrow, D., & Van Den Bosch, E. (1984). Alcoholic
fermentation of D-xylose by yeasts. Applied and Environment
Microbiology. https://doi.org/10.1128/aem.47.6.1221-1223.1984.
Turner, T. L., Zhang, G. C., Kim, S. R., Subramaniam, V., Steffen, D.,
Skory, C. D., et al. (2015). Lactic acid production from xylose by
engineered Saccharomyces cerevisiae without PDC or ADH
deletion. Applied Microbiology and Biotechnology. https://doi.org/
10.1007/s00253-015-6701-3.
Ussiri, D. A. N., & Lal, R. (2014). Miscanthus agronomy and
bioenergy feedstock potential on minesoils. Biofuels. https://doi.org/
10.1080/17597269.2015.1024388.
Van Dyk, J. S., Pletschke, B. I. (2012) A review of lignocellulose
bioconversion using enzymatic hydrolysis and synergistic cooperation between enzymes-Factors affecting enzymes, conversion and
synergy. Biotechnology Advances.
Vennestrøm, P. N. R., Osmundsen, C. M., Christensen, C. H., &
Taarning, E. (2011). Beyond petrochemicals: The renewable
chemicals industry. Angewandte Chemie International Edition.
https://doi.org/10.1002/anie.201102117.
de Vilela, L. F., de Araujo, V. P. G., de Paredes, R.S., da Bon, E. P. S.,
Torres, F. A. G., Neves, B. C., et al. (2015). Enhanced xylose
fermentation and ethanol production by engineered Saccharomyces
cerevisiae strain. AMB Express. https://doi.org/10.1186/s13568015-0102-y.
264
R. Rashid et al.
soluble coffee wastes and copra paste using Aspergillus oryzae and
Aspergillus niger. Journal of the Science of Food and Agriculture.
https://doi.org/10.1002/1097-0010(200007)80:9%3c1343:aidjsfa651%3e3.0.co;2-%23.
Regmi, S., Pradeep, G. C., Choi, Y. H., Choi, Y. S., Choi, J. E., Cho, S.
S., Yoo, J. C. (2016). A multi-tolerant low molecular weight
mannanase from Bacillus sp. CSB39 and its compatibility as an
industrial biocatalyst. Enzyme and Microbial Technology. https://
doi.org/10.1016/j.enzmictec.2016.06.018.
Rivas, B., Domínguez, J. M., Domínguez, H., & Parajó, J. C. (2002).
Bioconversion of posthydrolysed autohydrolysis liquors: An alternative for xylitol production from corn cobs. Enyzme and Microbial
Technology. https://doi.org/10.1016/S0141-0229(02)00098-4.
Robak, K., & Balcerek, M. (2018). Review of second generation
bioethanol production from residual biomass. Food Technology and
Biotechnology.
Roberts, M. J., Long, S. P., Tieszen, L. L., & Beadle, C. L. (1985).
Measurement of plant biomass and net primary production. In
Techniques in bioproductivity and photosynthesis.
Robl, D., da Silva Delabona, P., Mergel, C. M., Rojas, J. D., dos Santos
Costa, P., Pimentel, I. C., et al. (2013). The capability of endophytic
fungi for production of hemicellulases and related enzymes. BMC
Biotechnology. https://doi.org/10.1186/1472-6750-13-94.
Rodrussamee, N., Lertwattanasakul, N., Hirata, K., Suprayogi, Limtong S., Kosaka, T., & Yamada, M. (2011). Growth and ethanol
fermentation ability on hexose and pentose sugars and glucose
effect under various conditions in thermotolerant yeast Kluyveromyces marxianus. Applied Microbiology and Biotechnology.
https://doi.org/10.1007/s00253-011-3218-2.
Rodrussamee, N., Sattayawat, P., & Yamada, M. (2018). Highly
efficient conversion of xylose to ethanol without glucose repression
by newly isolated thermotolerant Spathaspora passalidarum
CMUWF1-2. BMC Microbiology. https://doi.org/10.1186/s12866018-1218-4.
Rydholm SA (1965) Pulping processes.
Saha, B. C. (2003). Hemicellulose bioconversion. Journal of Industrial
Microbiology and Biotechnology.
Saleh, S. H., Mohd Damanhuri Shah, S. N., Abdul Khalil, K., Bujang,
A. (2016). Xylooligosaccharides production from oil palm frond by
Trichoderma longibrachiatum xylanase. The Malaysian Journal of
Analytical Sciences. https://doi.org/10.17576/mjas-2016-2003-09.
Sedlmeyer, F. B. (2011). Xylan as by-product of biorefineries:
Characteristics and potential use for food applications. Food
Hydrocolloids, 25, 1891–1898. https://doi.org/10.1016/j.foodhyd.
2011.04.005.
Selim, K. A., El-Ghwas, D. E., Easa, S. M., & Abdelwahab Hassan, M.
I. (2018). Bioethanol a microbial biofuel metabolite. Fermentation:
New insights of yeasts metabolic engineering.
Shariq, M., & Sohail, M. (2019). Application of Candida tropicalis
MK-160 for the production of xylanase and ethanol. Journal of
King Saud University-Science. https://doi.org/10.1016/j.jksus.2018.
04.009.
Sharma, M., Mahajan, C., Bhatti, M. S., & Chadha, B. S. (2016).
Profiling and production of hemicellulases by thermophilic fungus
Malbranchea flava and the role of xylanases in improved bioconversion of pretreated lignocellulosics to ethanol. 3 Biotech. https://
doi.org/10.1007/s13205-015-0325-2.
Sharma, N. K., Behera, S., Arora, R., & Kumar, S. (2017). Evolutionary adaptation of Kluyveromyces marxianus NIRE-K3 for enhanced
xylose utilization. Frontiers in Energy Research. https://doi.org/10.
3389/fenrg.2017.00032.
Singh, A., & Olsen, S. I. (2011). A critical review of biochemical
conversion, sustainability and life cycle assessment of algal
biofuels. Applied Energy. https://doi.org/10.1016/j.apenergy.2010.
12.012.
Singla, A., Paroda, S., Dhamija, S. S., Goyal, S., Shekhawat, K.,
Amachi, S., et al. (2012). Bioethanol production from xylose:
Problems and possibilities. Journal of Biofuels, 3, 1. https://doi.org/
10.5958/j.0976-3015.3.1.004.
Smeets, E. M. W., Faaij, A. P. C., Lewandowski, I. M., & Turkenburg,
W. C. (2007). A bottom-up assessment and review of global
bio-energy potentials to 2050. Progress in Energy and Combustion
Science.
Soto, M. L., Domínguez, H., Núñez, M. J., & Lema, J. M. (1994).
Enzymatic saccharification of alkali-treated sunflower hulls. Bioresource Technology. https://doi.org/10.1016/0960-8524(94)90173-2.
Subramaniyan, S., & Prema, P. (2002). Biotechnology of microbial
xylanases: Enzymology, molecular biology, and application. Critical Reviews in Biotechnology.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83, 1–11.
https://doi.org/10.1016/S0960-8524(01)00212-7.
Sun, Y., Lu, X., Zhang, S., Zhang, R., & Wang, X. (2011). Kinetic
study for Fe(NO3)3 catalyzed hemicellulose hydrolysis of different
corn stover silages. Bioresource Technology. https://doi.org/10.
1016/j.biortech.2010.11.076.
Takata, E., Tsuruoka, T., Tsutsumi, K., Tsutsumi, Y., & Tabata, K.
(2014). Production of xylitol and tetrahydrofurfuryl alcohol from
xylan in napier grass by a hydrothermal process with phosphorus
oxoacids followed by aqueous phase hydrogenation. Bioresource
Technology. https://doi.org/10.1016/j.biortech.2014.05.112.
Tang, X., Zeng, X., Li, Z., Hu, L., Sun, Y., Liu, S., et al. (2014).
Production of c-valerolactone from lignocellulosic biomass for
sustainable fuels and chemicals supply. Renewable and Sustainable
Energy Reviews.
Tayi, L., Maku, R. V., Patel, H. K., Sonti, R. V. (2016). Identification
of pectin degrading enzymes secreted by Xanthomonas oryzae pv.
Oryzae and determination of their role in virulence on rice. PLoS
One. https://doi.org/10.1371/journal.pone.0166396.
Téllez-Luis, S. J., Ramírez, J. A., & Vázquez, M. (2002). Mathematical
modelling of hemicellulosic sugar production from sorghum straw.
Journal of Food Engineering. https://doi.org/10.1016/S0260-8774
(01)00117-0.
Toivola, A., Yarrow, D., & Van Den Bosch, E. (1984). Alcoholic
fermentation of D-xylose by yeasts. Applied and Environment
Microbiology. https://doi.org/10.1128/aem.47.6.1221-1223.1984.
Turner, T. L., Zhang, G. C., Kim, S. R., Subramaniam, V., Steffen, D.,
Skory, C. D., et al. (2015). Lactic acid production from xylose by
engineered Saccharomyces cerevisiae without PDC or ADH
deletion. Applied Microbiology and Biotechnology. https://doi.org/
10.1007/s00253-015-6701-3.
Ussiri, D. A. N., & Lal, R. (2014). Miscanthus agronomy and
bioenergy feedstock potential on minesoils. Biofuels. https://doi.org/
10.1080/17597269.2015.1024388.
Van Dyk, J. S., Pletschke, B. I. (2012) A review of lignocellulose
bioconversion using enzymatic hydrolysis and synergistic cooperation between enzymes-Factors affecting enzymes, conversion and
synergy. Biotechnology Advances.
Vennestrøm, P. N. R., Osmundsen, C. M., Christensen, C. H., &
Taarning, E. (2011). Beyond petrochemicals: The renewable
chemicals industry. Angewandte Chemie International Edition.
https://doi.org/10.1002/anie.201102117.
de Vilela, L. F., de Araujo, V. P. G., de Paredes, R.S., da Bon, E. P. S.,
Torres, F. A. G., Neves, B. C., et al. (2015). Enhanced xylose
fermentation and ethanol production by engineered Saccharomyces
cerevisiae strain. AMB Express. https://doi.org/10.1186/s13568015-0102-y.
264
R. Rashid et al.
