110
100. Jyoti G, Bhoi S, Sahu DK (2019) Production and isolation of n-butyl acrylate using
pervaporation- aided esterification reaction: kinetics and optimization. Chem Eng Technol
42(3):617–627
101. Tong W, Xu Y, Xian M, Niu W, Guo J, Liu H, Zhao G (2016) Biosynthetic pathway for
acrylic acid from glycerol in recombinant Escherichia coli. Appl Microbiol Biotechnol
100(11):4901–4907
102. Kamal A, Kumar MS, Kumar CG, Shaik TB (2011) Bioconversion of acrylonitrile to acrylic
acid by Rhodococcus ruber strain AKSH-84. J Microbiol Biotechnol 21(1):37–42
103. Gnanadesikan V, Singh R, Dasari R, Alger M (2018) Process for manufacturing acrylic acid,
acrylonitrile and 1, 4-butanediol from 1, 3-propanediol. Google Patents
104. Ali U, Karim KJBA, Buang NA (2015) A review of the properties and applications of poly
(methyl methacrylate)(PMMA). Poly Rev 5(4):678–705
105. Ouzas A, Niinivaara E, Cranston ED, Dubé MA (2018) In situ Semibatch emulsion polymerization of 2-ethyl hexyl acrylate/n-butyl acrylate/methyl methacrylate/cellulose nanocrystal
nanocomposites for adhesive applications. Macromol React Eng 12(3):1700068
106. Bohre A, Ali MA, Ocepek M, Grilc M, Zabret J, Likozar B (2019) Copolymerization of
biomass-derived carboxylic acids for biobased acrylic emulsions. Ind Eng Chem Res
58(43):19825–19831
107. Nagasawa T, Nakamura T, Yamada H (1990) Production of acrylic acid and methacrylic acid
using Rhodococcus rhodochrous J1 nitrilase. Appl Microbiol Biotechnol 34(3):322–324
108. Burk MJ, Burgard AP, Osterhout RE, Sun J, Pharkya P (2015) Microorganisms for producing methacrylic acid and methacrylate esters and methods related thereto. European Patent
EP2694663A4
109. Pyo S-H, Dishisha T, Dayankac S, Gerelsaikhan J, Lundmark S, Rehnberg N, Hatti-Kaul R
(2012) A new route for the synthesis of methacrylic acid from 2-methyl-1, 3-propanediol by
integrating biotransformation and catalytic dehydration. Green Chem 14(7):1942–1948
110. Jaymand M (2014) Recent progress in the chemical modification of syndiotactic polystyrene.
Polym Chem 5(8):2663–2690
111. Chaukura N, Gwenzi W, Bunhu T, Ruziwa DT, Pumure I (2016) Potential uses and valueadded products derived from waste polystyrene in developing countries: a review. Resour
Conserv Recy 07:157–165
112. Ramli Sulong NH, Mustapa SAS, Abdul Rashid MK (2019) Application of expanded polystyrene (EPS) in buildings and constructions: a review. J Appl Polym 136(20):47529
113. Oelschlägel M, Zimmerling J, Tischler D (2018) A review: the styrene metabolizing cascade
of side-chain oxygenation as biotechnological basis to gain various valuable compounds.
Front Microbiol 9:490
114. Jang YS, Kim B, Shin JH, Choi YJ, Choi S, Song CW, Lee J, Park HG, Lee SY (2012) Biobased production of C2–C6 platform chemicals. Biotechnol Bioeng 109(10):2437–2459
115. Hope C (1987) Cinnamic acid as the basis of a medium for the detection of wild yeasts. J Int
Brewing 93(3):213–215
116. McKenna R, Nielsen DR (2011) Styrene biosynthesis from glucose by engineered E. coli.
Metab Eng 13(5):544–554
117. McKenna R, Pugh S, Thompson B, Nielsen DR (2013) Microbial production of the aromatic
building-blocks (S)-styrene oxide and (R)-1, 2-phenylethanediol from renewable resources.
Biotechnol J 8(12):1465–1475
118. McKenna R, Thompson B, Pugh S, Nielsen DR (2014) Rational and combinatorial approaches
to engineering styrene production by Saccharomyces cerevisiae. Microb Cell Fact 13(1):123
119. Liu C, Men X, Chen H, Li M, Ding Z, Chen G, Wang F, Liu H, Wang Q, Zhu Y (2018) A
systematic optimization of styrene biosynthesis in Escherichia coli BL21 (DE3). Biotechnol
Biofuels 11(1):14
120. Claypool JT, Raman DR, Jarboe LR, Nielsen DR (2014) Technoeconomic evaluation of
bio-based styrene production by engineered Escherichia coli. J Ind Microbiol Biotechnol
41(8):1211–1216
K. Avasthi et al.
100. Jyoti G, Bhoi S, Sahu DK (2019) Production and isolation of n-butyl acrylate using
pervaporation- aided esterification reaction: kinetics and optimization. Chem Eng Technol
42(3):617–627
101. Tong W, Xu Y, Xian M, Niu W, Guo J, Liu H, Zhao G (2016) Biosynthetic pathway for
acrylic acid from glycerol in recombinant Escherichia coli. Appl Microbiol Biotechnol
100(11):4901–4907
102. Kamal A, Kumar MS, Kumar CG, Shaik TB (2011) Bioconversion of acrylonitrile to acrylic
acid by Rhodococcus ruber strain AKSH-84. J Microbiol Biotechnol 21(1):37–42
103. Gnanadesikan V, Singh R, Dasari R, Alger M (2018) Process for manufacturing acrylic acid,
acrylonitrile and 1, 4-butanediol from 1, 3-propanediol. Google Patents
104. Ali U, Karim KJBA, Buang NA (2015) A review of the properties and applications of poly
(methyl methacrylate)(PMMA). Poly Rev 5(4):678–705
105. Ouzas A, Niinivaara E, Cranston ED, Dubé MA (2018) In situ Semibatch emulsion polymerization of 2-ethyl hexyl acrylate/n-butyl acrylate/methyl methacrylate/cellulose nanocrystal
nanocomposites for adhesive applications. Macromol React Eng 12(3):1700068
106. Bohre A, Ali MA, Ocepek M, Grilc M, Zabret J, Likozar B (2019) Copolymerization of
biomass-derived carboxylic acids for biobased acrylic emulsions. Ind Eng Chem Res
58(43):19825–19831
107. Nagasawa T, Nakamura T, Yamada H (1990) Production of acrylic acid and methacrylic acid
using Rhodococcus rhodochrous J1 nitrilase. Appl Microbiol Biotechnol 34(3):322–324
108. Burk MJ, Burgard AP, Osterhout RE, Sun J, Pharkya P (2015) Microorganisms for producing methacrylic acid and methacrylate esters and methods related thereto. European Patent
EP2694663A4
109. Pyo S-H, Dishisha T, Dayankac S, Gerelsaikhan J, Lundmark S, Rehnberg N, Hatti-Kaul R
(2012) A new route for the synthesis of methacrylic acid from 2-methyl-1, 3-propanediol by
integrating biotransformation and catalytic dehydration. Green Chem 14(7):1942–1948
110. Jaymand M (2014) Recent progress in the chemical modification of syndiotactic polystyrene.
Polym Chem 5(8):2663–2690
111. Chaukura N, Gwenzi W, Bunhu T, Ruziwa DT, Pumure I (2016) Potential uses and valueadded products derived from waste polystyrene in developing countries: a review. Resour
Conserv Recy 07:157–165
112. Ramli Sulong NH, Mustapa SAS, Abdul Rashid MK (2019) Application of expanded polystyrene (EPS) in buildings and constructions: a review. J Appl Polym 136(20):47529
113. Oelschlägel M, Zimmerling J, Tischler D (2018) A review: the styrene metabolizing cascade
of side-chain oxygenation as biotechnological basis to gain various valuable compounds.
Front Microbiol 9:490
114. Jang YS, Kim B, Shin JH, Choi YJ, Choi S, Song CW, Lee J, Park HG, Lee SY (2012) Biobased production of C2–C6 platform chemicals. Biotechnol Bioeng 109(10):2437–2459
115. Hope C (1987) Cinnamic acid as the basis of a medium for the detection of wild yeasts. J Int
Brewing 93(3):213–215
116. McKenna R, Nielsen DR (2011) Styrene biosynthesis from glucose by engineered E. coli.
Metab Eng 13(5):544–554
117. McKenna R, Pugh S, Thompson B, Nielsen DR (2013) Microbial production of the aromatic
building-blocks (S)-styrene oxide and (R)-1, 2-phenylethanediol from renewable resources.
Biotechnol J 8(12):1465–1475
118. McKenna R, Thompson B, Pugh S, Nielsen DR (2014) Rational and combinatorial approaches
to engineering styrene production by Saccharomyces cerevisiae. Microb Cell Fact 13(1):123
119. Liu C, Men X, Chen H, Li M, Ding Z, Chen G, Wang F, Liu H, Wang Q, Zhu Y (2018) A
systematic optimization of styrene biosynthesis in Escherichia coli BL21 (DE3). Biotechnol
Biofuels 11(1):14
120. Claypool JT, Raman DR, Jarboe LR, Nielsen DR (2014) Technoeconomic evaluation of
bio-based styrene production by engineered Escherichia coli. J Ind Microbiol Biotechnol
41(8):1211–1216
K. Avasthi et al.
