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Agroresidue-based biorefineries 257
Mao, Y., Li, G., Chang, Z., Tao, R., Cui, Z., Wang, Z., et al., 2018. Metabolic engineering of
Corynebacterium glutamicum for efficient production of succinate from lignocellulosic
hydrolysate. Biotechnol. Biofuels 11, 95.
Momayez, F., Karimi, K., Karimi, S., Horvath, I.S., 2017. Efficient hydrolysis and ethanol
production from rice straw by pretreatment with organic acids and effluent of biogas
plant. RSC Adv. 7, 50537 50545.
Mulder, W.J., Gosselink, R.J.A., Vingerhoeds, M.H., Harmsen, P.F.H., Eastham, D., 2011.
Lignin based controlled release coatings. Ind. Crops Prod. 34, 915 920.
Prabisha, T.P., Sindhu, R., Binod, P., Sajitha, S., Pandey, A., 2014. Alkali pretreated sugarcane
tops hydrolysate for the production of poly-3-hydroxybutyrate by Comomonas sp.—a
dairy effluent isolate. Indian J. Biotechnol. 13, 306 313.
Qureshi, N., Saha, B.C., Cotta, M.A., 2007. Butanol production from wheat straw hydrolysate
using Clostridium beijerinckii. Bioprocess Biosyst. Eng. 30, 419 427.
Ranjan, A., Khanna, S., Moholkar, V.S., 2013a. Feasibility of rice straw as alternate substrate
for biobutanol production. Appl. Energy 103, 32 38.
Ranjan, A., Mayank, R., Moholkar, V.S., 2013b. Process optimization for butanol production
from developed rice straw hydrolysate using Clostridium acetobutylicum MTCC 481
strain. Biomass Convers. Biorefinery 3, 143 155.
Sattar, A., Arslan, C., Ji, C., Sattar, S., Mari, I.A., Rashid, H., et al., 2016. Comparing the bio-
hydrogen production potential of pretreated rice straw co-digested with seeded sludge using
an anaerobic bioreactor under mesophilic thermophilic conditions. Energies 9, 198. 1 14.
Seol, E., Kim, S., Raj, S.M., Park, S., 2008. Comparison of hydrogen-production capability
of four different Enterobacteriaceae strains under growing and non-growing conditions.
Int. J. Hydrogen Energy 33, 5169 5175.
Shahab, R.L., Luterbacher, J.S., Brethauer, S., Studer, M.H., 2018. Consolidated bioproces-
sing of lignocellulosic biomass to lactic acid by a synthetic fungal-bacterial consortium.
Biotechnol. Bioeng. 115, 1207 1215.
Sheng, T., Zhao, L., Gao, L., Liu, W., Wu, G., Wu, J., et al., 2018. Enhanced biohydrogen
production from nutrient free anaerobic fermentation medium with edible fungal pre-
treated rice straw. RSC Adv. 8, 22924 22930.
Sindhu, R., Silviya, N., Binod, P., Pandey, A., 2013. Pentose-rich hydrolysate from acid pre-
treated rice straw as a carbon source for the production of poly-3-hydroxybutyrate.
Biochem. Eng. J. 78, 67 72.
Sindhu, R., Kuttiraja, M., Prabisha, T.P., Binod, P., Sukumaran, R.K., Pandey, A., 2016.
Development of a combined pretreatment and hydrolysis strategy of rice straw for the
production of bioethanol and biopolymer. Bioresour. Technol. 215, 30 35.
Sindhu, R., Binod, P., Mathew, A.K., Abraham, A., Gnansounou, E., Ummalyma, S.B., et al.,
2017. Development of a novel ultrasound-assisted alkali pretreatment strategy for the
production of bioethanol and xylanases from chili post harvest residue. Bioresour.
Technol. 242, 146 151.
Sindhu, R., Binod, P., Gnansounou, E., Prabisha, T.P., Thomas, L., Mathew, A.K., et al.,
2018. Enzymatic hydrolysis of microwave assisted acid pretreated chili post-harvest
residue for the production of value added products. Indian J. Exp. Biol. 56,
479 483.
Stewart, D., 2008. Lignin as a base material for materials applications: chemistry, applica-
tions and economics. Ind. Crops Prod. 27, 202 207.
Takano, M., Hoshino, K., 2018. Bioethanol production from rice straw by simultaneous sac-
charification and fermentation with statistical optimized cellulase cocktail and ferment-
ing fungus. Bioresour. Bioprocess. 5, 1 12.