Shi, J., Jiang, Y., Jiang, Z., Wang, X., Wang, X., Zhang, S., et al.
(2015). Enzymatic conversion of carbon dioxide. Chemical Society
Reviews, 44, 5981–6000.
Singh, J., & Thakur, I. S. (2015). Evaluation of cyanobacterial endolith
Leptolyngbya sp. ISTCY101, for integrated wastewater treatment
and biodiesel production: A toxicological perspective. Algal
Research, 11, 294–303.
Singh, M. K., Singh, J., Kumar, M., & Thakur, I. S. (2014). Novel
lipase from basidiomycetes Schizophyllum commune ISTL04,
produced by solid state fermentation of Leucaena leucocephala
seeds. Journal of Molecular Catalysis. B, Enzymatic, 110, 92–99.
Singh, J., Singh, M. K., Kumar, M., & Thakur, I. S. (2015).
Immobilized lipase from Schizophyllum commune ISTL04 for the
production of fatty acids methyl esters from cyanobacterial oil.
Bioresource Technology, 188, 214–218.
Smith, K. S., Jakubzick, C., Whittam, T. S., & Ferry, J. G. (1999).
Carbonic anhydrase is an ancient enzyme widespread in prokaryotes.
Proceedings of the National Academy of Sciences, 96, 15184–15189.
Somalinga, V., Buhrman, G., Arun, A., Rose, R. B., & Grunden, A. M.
(2016). A high-resolution crystal structure of a psychrohalophilic a–
carbonic anhydrase from photobacterium profundum reveals a
unique dimer interface. PlOS One, 11.
Srivastava, S., Bharti, R. K., & Thakur, I. S. (2015a). Characterization
of bacteria isolated from palaeoproterozoic metasediments for
sequestration of carbon dioxide and formation of calcium carbonate.
Environmental Science and Pollution Research, 22, 1499–1511.
Srivastava, S., Bharti, R. K., Verma, P. K., & Thakur, I. S. (2015b).
Cloning and expression of gamma carbonic anhydrase from Serratia
sp. ISTD04 for sequestration of carbon dioxide and formation of
calcite. Bioresource Technology, 188, 209–213.
Subramanian, S. B., Yan, S., Tyagi, R. D., & Surampalli, R. (2010).
Extracellular polymeric substances (EPS) producing bacterial
strains of municipal wastewater sludge: isolation, molecular identification, EPS characterization and performance for sludge settling
and dewatering. Water Research, 44, 2253–2266.
Sultana, S., Sahoo, P. C., Martha, S., & Parida, K. (2016). A review of
harvesting clean fuels from enzymatic CO 2 reduction. RSC
Advances, 6, 44170–44194.
Sun, Q., Jiang, Y., Jiang, Z., Zhang, L., Sun, X., & Li, J. (2009). Green
and efficient conversion of CO 2 to methanol by biomimetic
coimmobilization of three dehydrogenases in protamine-templated
titania. Industrial and Engineering Chemistry Research, 48, 4210–
4215.
Sundaram, S., & Thakur, I. S. (2015). Biosurfactant production by a
CO 2 sequestering Bacillus sp. strain ISTS2. Bioresource Technology, 188, 247–250.
Supuran, C. T., Scozzafava, A., & Casini, A. (2003). Carbonic
anhydrase inhibitors. Medicinal Research Reviews, 23, 146–189.
Sutter, J. D., & Berlinger, J. (2015). Final draft of climate deal formally
accepted in Paris, CNN. Cable News Network.
Syrjänen, L., Tolvanen, M., Hilvo, M., Olatubosun, A., Innocenti, A.,
Scozzafava, A., et al. (2010). Characterization of the first beta-class
carbonic anhydrase from an arthropod (Drosophila melanogaster)
and phylogenetic analysis of beta-class carbonic anhydrases in
invertebrates. BMC Biochemistry, 11, 28.
Tahir, M. B., Sagir, M., & Abas, N. (2019). Enhanced photocatalytic
performance of CdO-WO3 composite for hydrogen production.
International Journal of Hydrogen Energy, 44(45), 24690–24697.
Talebian, S. H., Tan, I. M., Sagir, M., & Mushtaq, M. (2015). Static and
dynamic foam/oil interactions: Potential of CO 2 -philic surfactants as
mobility control agents. Journal of Petroleum Science and Engineering, 135, 118–126.
Talebian, S. H., Sagir, M., & Mumtaz, M. (2018). An integrated
property–performance analysis for CO 2 -philic foam-assisted CO 2 -
enhanced oil recovery. Energy & Fuels, 32(7), 7773–7785.
Thakur, I. S., Kumar, M., Varjani, S. J., Wu, Y., Gnansounou, E., &
Ravindran, S. (2018). Sequestration and utilization of carbon
dioxide by chemical and biological methods for biofuels and
biomaterials by chemoautotrophs: Opportunities and challenges.
Bioresource Technology, 256, 478–490.
Tracy, B. P., Jones, S. W., Fast, A. G., Indurthi, D. C., & Papoutsakis,
E. T. (2012). Clostridia: the importance of their exceptional
substrate and metabolite diversity for biofuel and biorefinery
applications. Current Opinion in Biotechnology, 23, 364–381.
Tripathi, R., Singh, J., & Thakur, I. S. (2015). Characterization of
microalga Scenedesmus sp. ISTGA1 for potential CO 2 sequestration and biodiesel production. Renewable Energy, 74, 774–781.
Ullah, S., Bustam, M. A., Ahmad, F., Nadeem, M., Naz, M. Y., Sagir,
M., et al. (2015). Synthesis and characterization of melamine
formaldehyde resins for decorative paper applications. Journal of
the Chinese Chemical Society, 62(2), 182–190.
Ullah, S., Suleman, H., Tahir, M. S., Sagir, M., Shabbir, M., Al‐
Sehemi, A. G., Zafar, M. R., Kareem, F. A. A., Maulud, A. S., &
Bustam, M. A. (2019a). Reactive kinetics of carbon dioxide loaded
aqueous blend of 2‐amino‐2‐ethyl‐1, 3‐propanediol and piperazine
using a pressure drop method International. Journal of Chemical
Kinetics, 51(4), 291–298.
Ullah, S., Bustam, M. A., Assiri, M. A., Al-Sehemi, A. G., Sagir, M.,
Kareem, F. A. A., Elkhalifah, A. E., Mukhtar, A., & Gonfa, G.
(2019b). Synthesis, and characterization of metal-organic
frameworks-177 for static and dynamic adsorption behavior of CO 2
and CH4. Microporous and Mesoporous Materials, 288, 109569.
Wang, X., Li, Z., Shi, J., Wu, H., Jiang, Z., Zhang, W., et al. (2014).
Bioinspired approach to multienzyme cascade system construction
for efficient carbon dioxide reduction. Acs Catalysis, 4, 962–972.
Xu, S.-W., Lu, Y., Li, J., Jiang, Z.-Y., & Wu, H. (2006). Efficient
conversion of CO 2 to methanol catalyzed by three dehydrogenases
co-encapsulated in an alginate−silica (ALG−SiO2) hybrid gel.
Industrial and Engineering Chemistry Research, 45, 4567–4573.
Yadav, R. R., Krishnamurthi, K., Mudliar, S. N., Devi, S. S., Naoghare,
P. K., Bafana, A., et al. (2014). Carbonic anhydrase mediated
carbon dioxide sequestration: Promises, challenges and future
prospects. Journal of Basic Microbiology, 54, 472–481.
Yan, S., Tyagi, R., & Surampalli, R. (2006). Polyhydroxyalkanoates
(PHA) production using wastewater as carbon source and activated
sludge as microorganisms. Water Science and Technology, 53, 175–
180.
Yang, Z.-Z., Zhao, Y.-N., He, L.-N., Gao, J., & Yin, Z.-S. (2012).
Highly efficient conversion of carbon dioxide catalyzed by
polyethylene glycol-functionalized basic ionic liquids. Green
Chemistry, 14, 519–527.
Yoshida, M., & Ihara, M. (2004). Novel methodologies for the
synthesis of cyclic carbonates. Chemistry–A European Journal, 10,
2886–2893.
Yu, J. (2014). Bio-based products from solar energy and carbon
dioxide. Trends in Biotechnology, 32, 5–10.
Biological Methods for Carbon Dioxide Conversion and Utilization
177
(2015). Enzymatic conversion of carbon dioxide. Chemical Society
Reviews, 44, 5981–6000.
Singh, J., & Thakur, I. S. (2015). Evaluation of cyanobacterial endolith
Leptolyngbya sp. ISTCY101, for integrated wastewater treatment
and biodiesel production: A toxicological perspective. Algal
Research, 11, 294–303.
Singh, M. K., Singh, J., Kumar, M., & Thakur, I. S. (2014). Novel
lipase from basidiomycetes Schizophyllum commune ISTL04,
produced by solid state fermentation of Leucaena leucocephala
seeds. Journal of Molecular Catalysis. B, Enzymatic, 110, 92–99.
Singh, J., Singh, M. K., Kumar, M., & Thakur, I. S. (2015).
Immobilized lipase from Schizophyllum commune ISTL04 for the
production of fatty acids methyl esters from cyanobacterial oil.
Bioresource Technology, 188, 214–218.
Smith, K. S., Jakubzick, C., Whittam, T. S., & Ferry, J. G. (1999).
Carbonic anhydrase is an ancient enzyme widespread in prokaryotes.
Proceedings of the National Academy of Sciences, 96, 15184–15189.
Somalinga, V., Buhrman, G., Arun, A., Rose, R. B., & Grunden, A. M.
(2016). A high-resolution crystal structure of a psychrohalophilic a–
carbonic anhydrase from photobacterium profundum reveals a
unique dimer interface. PlOS One, 11.
Srivastava, S., Bharti, R. K., & Thakur, I. S. (2015a). Characterization
of bacteria isolated from palaeoproterozoic metasediments for
sequestration of carbon dioxide and formation of calcium carbonate.
Environmental Science and Pollution Research, 22, 1499–1511.
Srivastava, S., Bharti, R. K., Verma, P. K., & Thakur, I. S. (2015b).
Cloning and expression of gamma carbonic anhydrase from Serratia
sp. ISTD04 for sequestration of carbon dioxide and formation of
calcite. Bioresource Technology, 188, 209–213.
Subramanian, S. B., Yan, S., Tyagi, R. D., & Surampalli, R. (2010).
Extracellular polymeric substances (EPS) producing bacterial
strains of municipal wastewater sludge: isolation, molecular identification, EPS characterization and performance for sludge settling
and dewatering. Water Research, 44, 2253–2266.
Sultana, S., Sahoo, P. C., Martha, S., & Parida, K. (2016). A review of
harvesting clean fuels from enzymatic CO 2 reduction. RSC
Advances, 6, 44170–44194.
Sun, Q., Jiang, Y., Jiang, Z., Zhang, L., Sun, X., & Li, J. (2009). Green
and efficient conversion of CO 2 to methanol by biomimetic
coimmobilization of three dehydrogenases in protamine-templated
titania. Industrial and Engineering Chemistry Research, 48, 4210–
4215.
Sundaram, S., & Thakur, I. S. (2015). Biosurfactant production by a
CO 2 sequestering Bacillus sp. strain ISTS2. Bioresource Technology, 188, 247–250.
Supuran, C. T., Scozzafava, A., & Casini, A. (2003). Carbonic
anhydrase inhibitors. Medicinal Research Reviews, 23, 146–189.
Sutter, J. D., & Berlinger, J. (2015). Final draft of climate deal formally
accepted in Paris, CNN. Cable News Network.
Syrjänen, L., Tolvanen, M., Hilvo, M., Olatubosun, A., Innocenti, A.,
Scozzafava, A., et al. (2010). Characterization of the first beta-class
carbonic anhydrase from an arthropod (Drosophila melanogaster)
and phylogenetic analysis of beta-class carbonic anhydrases in
invertebrates. BMC Biochemistry, 11, 28.
Tahir, M. B., Sagir, M., & Abas, N. (2019). Enhanced photocatalytic
performance of CdO-WO3 composite for hydrogen production.
International Journal of Hydrogen Energy, 44(45), 24690–24697.
Talebian, S. H., Tan, I. M., Sagir, M., & Mushtaq, M. (2015). Static and
dynamic foam/oil interactions: Potential of CO 2 -philic surfactants as
mobility control agents. Journal of Petroleum Science and Engineering, 135, 118–126.
Talebian, S. H., Sagir, M., & Mumtaz, M. (2018). An integrated
property–performance analysis for CO 2 -philic foam-assisted CO 2 -
enhanced oil recovery. Energy & Fuels, 32(7), 7773–7785.
Thakur, I. S., Kumar, M., Varjani, S. J., Wu, Y., Gnansounou, E., &
Ravindran, S. (2018). Sequestration and utilization of carbon
dioxide by chemical and biological methods for biofuels and
biomaterials by chemoautotrophs: Opportunities and challenges.
Bioresource Technology, 256, 478–490.
Tracy, B. P., Jones, S. W., Fast, A. G., Indurthi, D. C., & Papoutsakis,
E. T. (2012). Clostridia: the importance of their exceptional
substrate and metabolite diversity for biofuel and biorefinery
applications. Current Opinion in Biotechnology, 23, 364–381.
Tripathi, R., Singh, J., & Thakur, I. S. (2015). Characterization of
microalga Scenedesmus sp. ISTGA1 for potential CO 2 sequestration and biodiesel production. Renewable Energy, 74, 774–781.
Ullah, S., Bustam, M. A., Ahmad, F., Nadeem, M., Naz, M. Y., Sagir,
M., et al. (2015). Synthesis and characterization of melamine
formaldehyde resins for decorative paper applications. Journal of
the Chinese Chemical Society, 62(2), 182–190.
Ullah, S., Suleman, H., Tahir, M. S., Sagir, M., Shabbir, M., Al‐
Sehemi, A. G., Zafar, M. R., Kareem, F. A. A., Maulud, A. S., &
Bustam, M. A. (2019a). Reactive kinetics of carbon dioxide loaded
aqueous blend of 2‐amino‐2‐ethyl‐1, 3‐propanediol and piperazine
using a pressure drop method International. Journal of Chemical
Kinetics, 51(4), 291–298.
Ullah, S., Bustam, M. A., Assiri, M. A., Al-Sehemi, A. G., Sagir, M.,
Kareem, F. A. A., Elkhalifah, A. E., Mukhtar, A., & Gonfa, G.
(2019b). Synthesis, and characterization of metal-organic
frameworks-177 for static and dynamic adsorption behavior of CO 2
and CH4. Microporous and Mesoporous Materials, 288, 109569.
Wang, X., Li, Z., Shi, J., Wu, H., Jiang, Z., Zhang, W., et al. (2014).
Bioinspired approach to multienzyme cascade system construction
for efficient carbon dioxide reduction. Acs Catalysis, 4, 962–972.
Xu, S.-W., Lu, Y., Li, J., Jiang, Z.-Y., & Wu, H. (2006). Efficient
conversion of CO 2 to methanol catalyzed by three dehydrogenases
co-encapsulated in an alginate−silica (ALG−SiO2) hybrid gel.
Industrial and Engineering Chemistry Research, 45, 4567–4573.
Yadav, R. R., Krishnamurthi, K., Mudliar, S. N., Devi, S. S., Naoghare,
P. K., Bafana, A., et al. (2014). Carbonic anhydrase mediated
carbon dioxide sequestration: Promises, challenges and future
prospects. Journal of Basic Microbiology, 54, 472–481.
Yan, S., Tyagi, R., & Surampalli, R. (2006). Polyhydroxyalkanoates
(PHA) production using wastewater as carbon source and activated
sludge as microorganisms. Water Science and Technology, 53, 175–
180.
Yang, Z.-Z., Zhao, Y.-N., He, L.-N., Gao, J., & Yin, Z.-S. (2012).
Highly efficient conversion of carbon dioxide catalyzed by
polyethylene glycol-functionalized basic ionic liquids. Green
Chemistry, 14, 519–527.
Yoshida, M., & Ihara, M. (2004). Novel methodologies for the
synthesis of cyclic carbonates. Chemistry–A European Journal, 10,
2886–2893.
Yu, J. (2014). Bio-based products from solar energy and carbon
dioxide. Trends in Biotechnology, 32, 5–10.
Biological Methods for Carbon Dioxide Conversion and Utilization
177
