28
Panda AK, Singh RK, Mishra DK (2010) Thermolysis of waste plastics to liquid fuel: a suitable
method for plastic waste management and manufacture of value added products: a world prospective. Renew Sust Energ Rev 14:233–248. https://doi.org/10.1016/j.rser.2009.07.005
Panwar NL, Kaushik SC, Kothari S (2011) Role of renewable energy sources in environmental protection: A review. Renew Sustain Energy Rev 15:1513–1524. https://doi.org/10.1016/j.
rser.2010.11.037
Park SH, Kim SH (2014) Poly (ethylene terephthalate) recycling for high value added textiles.
Fash Text 1:1. https://doi.org/10.1186/s40691-014-0001-x
Pathak VM, Navneet (2017) Review on the current status of polymer degradation: a microbial
approach. Bioresour Bioprocess 4:15. https://doi.org/10.1186/s40643-017-0145-9
Perz V, Baumschlager A, Bleymaier K, Zitzenbacher S, Hromic A, Steinkellner G, Pairitsch A,
Łyskowski A, Gruber K, Sinkel C, Küper U (2016a) Hydrolysis of synthetic polyesters by
Clostridium botulinum esterases. Biotechnol Bioeng 113:1024–1034. https://doi.org/10.1002/
bit.25874
Perz V, Bleymaier K, Sinkel C, Kueper U, Bonnekessel M, Ribitsch D, Guebitz GM (2016b)
Substrate specificities of cutinases on aliphatic–aromatic polyesters and on their model substrates. New Biotechnol 33:295–304. https://doi.org/10.1016/j.nbt.2015.11.004
Perz V, Hromic A, Baumschlager A, Steinkellner G, PavkovKeller T, Gruber K, Bleymaier K,
Zitzenbacher S, Zankel A, Mayrhofer C, Sinkel C (2016c) An esterase from anaerobic
Clostridium hathewayi can hydrolyze aliphatic–aromatic polyesters. Environ Sci Technol
50:2899–2907. https://doi.org/10.1021/acs.est.5b04346
Perz V, Zumstein MT, Sander M, Zitzenbacher S, Ribitsch D, Guebitz GM (2015) Biomimetic
approach to enhance enzymatic hydrolysis of the synthetic polyester poly (1, 4-butylene
adipate): fusing binding modules to esterases. Biomacromol 16:3889–3896. https://doi.
org/10.1021/acs.biomac.5b01219
Pometto AL, Lee BT, Johnson KE (1992) Production of an extracellular polyethylene-degrading
enzyme(s) by Streptomyces species. Appl Environ Microbiol 58:731–733
Rahimi A, García JM (2017) Chemical recycling of waste plastics for new materials production.
Nat Rev Chem 1:0046. https://doi.org/10.1038/s41570-017-0046
Ramírez YR, Flores GH, Barrera MÁR, González DS, Galero NXM, Toribio-Jiménez J, Escamilla
MC, Eligio JAH (2017) Evaluation of polyhydroxyalkanoates producing bacteria isolated
from soils with wastes of Cocos nucifera. Rev Int Contam Ambie 33:115–123. https://doi.
org/10.20937/RICA.2017.33.esp01.10
Reddy N, Yang Y (2011) Completely biodegradable soyprotein–jute biocomposites developed
using water without any chemicals as plasticizer. Ind Crops Prod 33:35–41. https://doi.
org/10.1016/j.indcrop.2010.08.007
Restrepo-Flórez JM, Bassi A, Thompson MR (2014) Microbial degradation and deterioration of
polyethylene – a review. Int Biodeterior Biodegradation 88:83–90. https://doi.org/10.1016/j.
ibiod.2013.12.014
Rochman CM (2015) The complex mixture, fate and toxicity of chemicals associated with plastic
debris in the marine environment. In: Bergmann M, Gutow L, Klages M (eds) Marine anthropogenic litter. Springer, Cham, pp 117–140
Rochman CM, Hoh E, Kurobe T, Teh SJ (2013) Ingested plastic transfers hazardous chemicals to
fish and induces hepatic stress. Sci Rep 3:3263. https://doi.org/10.1038/srep03263
Rochman CM, Tahir A, Williams SL, Baxa DV, Lam R, Miller JT, Teh FC, Werorilangi S, Teh
SJ (2015) Anthropogenic debris in seafood: Plastic debris and fibers from textiles in fish and
bivalves sold for human consumption. Sci Rep 5:14340. https://doi.org/10.1038/srep14340
Ronkvist ÅM, Xie W, Lu W, Gross RA (2009) Cutinase-catalyzed hydrolysis of poly (ethylene
terephthalate). Macromol 42:5128–5138. https://doi.org/10.1021/ma9005318
Roth C, Wei R, Oeser T, Then J, Föllner C, Zimmermann W, Sträter N (2014) Structural and
functional studies on a thermostable polyethylene terephthalate degrading hydrolase from
Thermobifida fusca. Appl Microbiol Biotechnol 98:7815–7823. https://doi.org/10.1007/
s00253-014-5672-0
A. Kumari et al.
Panda AK, Singh RK, Mishra DK (2010) Thermolysis of waste plastics to liquid fuel: a suitable
method for plastic waste management and manufacture of value added products: a world prospective. Renew Sust Energ Rev 14:233–248. https://doi.org/10.1016/j.rser.2009.07.005
Panwar NL, Kaushik SC, Kothari S (2011) Role of renewable energy sources in environmental protection: A review. Renew Sustain Energy Rev 15:1513–1524. https://doi.org/10.1016/j.
rser.2010.11.037
Park SH, Kim SH (2014) Poly (ethylene terephthalate) recycling for high value added textiles.
Fash Text 1:1. https://doi.org/10.1186/s40691-014-0001-x
Pathak VM, Navneet (2017) Review on the current status of polymer degradation: a microbial
approach. Bioresour Bioprocess 4:15. https://doi.org/10.1186/s40643-017-0145-9
Perz V, Baumschlager A, Bleymaier K, Zitzenbacher S, Hromic A, Steinkellner G, Pairitsch A,
Łyskowski A, Gruber K, Sinkel C, Küper U (2016a) Hydrolysis of synthetic polyesters by
Clostridium botulinum esterases. Biotechnol Bioeng 113:1024–1034. https://doi.org/10.1002/
bit.25874
Perz V, Bleymaier K, Sinkel C, Kueper U, Bonnekessel M, Ribitsch D, Guebitz GM (2016b)
Substrate specificities of cutinases on aliphatic–aromatic polyesters and on their model substrates. New Biotechnol 33:295–304. https://doi.org/10.1016/j.nbt.2015.11.004
Perz V, Hromic A, Baumschlager A, Steinkellner G, PavkovKeller T, Gruber K, Bleymaier K,
Zitzenbacher S, Zankel A, Mayrhofer C, Sinkel C (2016c) An esterase from anaerobic
Clostridium hathewayi can hydrolyze aliphatic–aromatic polyesters. Environ Sci Technol
50:2899–2907. https://doi.org/10.1021/acs.est.5b04346
Perz V, Zumstein MT, Sander M, Zitzenbacher S, Ribitsch D, Guebitz GM (2015) Biomimetic
approach to enhance enzymatic hydrolysis of the synthetic polyester poly (1, 4-butylene
adipate): fusing binding modules to esterases. Biomacromol 16:3889–3896. https://doi.
org/10.1021/acs.biomac.5b01219
Pometto AL, Lee BT, Johnson KE (1992) Production of an extracellular polyethylene-degrading
enzyme(s) by Streptomyces species. Appl Environ Microbiol 58:731–733
Rahimi A, García JM (2017) Chemical recycling of waste plastics for new materials production.
Nat Rev Chem 1:0046. https://doi.org/10.1038/s41570-017-0046
Ramírez YR, Flores GH, Barrera MÁR, González DS, Galero NXM, Toribio-Jiménez J, Escamilla
MC, Eligio JAH (2017) Evaluation of polyhydroxyalkanoates producing bacteria isolated
from soils with wastes of Cocos nucifera. Rev Int Contam Ambie 33:115–123. https://doi.
org/10.20937/RICA.2017.33.esp01.10
Reddy N, Yang Y (2011) Completely biodegradable soyprotein–jute biocomposites developed
using water without any chemicals as plasticizer. Ind Crops Prod 33:35–41. https://doi.
org/10.1016/j.indcrop.2010.08.007
Restrepo-Flórez JM, Bassi A, Thompson MR (2014) Microbial degradation and deterioration of
polyethylene – a review. Int Biodeterior Biodegradation 88:83–90. https://doi.org/10.1016/j.
ibiod.2013.12.014
Rochman CM (2015) The complex mixture, fate and toxicity of chemicals associated with plastic
debris in the marine environment. In: Bergmann M, Gutow L, Klages M (eds) Marine anthropogenic litter. Springer, Cham, pp 117–140
Rochman CM, Hoh E, Kurobe T, Teh SJ (2013) Ingested plastic transfers hazardous chemicals to
fish and induces hepatic stress. Sci Rep 3:3263. https://doi.org/10.1038/srep03263
Rochman CM, Tahir A, Williams SL, Baxa DV, Lam R, Miller JT, Teh FC, Werorilangi S, Teh
SJ (2015) Anthropogenic debris in seafood: Plastic debris and fibers from textiles in fish and
bivalves sold for human consumption. Sci Rep 5:14340. https://doi.org/10.1038/srep14340
Ronkvist ÅM, Xie W, Lu W, Gross RA (2009) Cutinase-catalyzed hydrolysis of poly (ethylene
terephthalate). Macromol 42:5128–5138. https://doi.org/10.1021/ma9005318
Roth C, Wei R, Oeser T, Then J, Föllner C, Zimmermann W, Sträter N (2014) Structural and
functional studies on a thermostable polyethylene terephthalate degrading hydrolase from
Thermobifida fusca. Appl Microbiol Biotechnol 98:7815–7823. https://doi.org/10.1007/
s00253-014-5672-0
A. Kumari et al.
