Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility
Bioenergy, biofuels, and a range of valuable chemicals may be extracted from the abundantly available lignocellulosic biomass. To reduce the recalcitrance imposed by the complex cell wall structure, genetic engineering has been proposed over the years as a suitable solution to modify the genes, ther...
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doaj-0b1bc52a2c9344daae8fa18f6abc250c2021-04-02T04:15:48ZengMDPI AGAgriculture2077-04722018-06-01867610.3390/agriculture8060076agriculture8060076Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass DigestibilityMonika Yadav0Kunwar Paritosh1Aakash Chawade2Nidhi Pareek3Vivekanand Vivekanand4Centre for Energy and Environment, Malaviya National Institute of Technology, Jaipur, Rajasthan 302017, IndiaCentre for Energy and Environment, Malaviya National Institute of Technology, Jaipur, Rajasthan 302017, IndiaDepartment of Plant Breeding, Swedish University of Agricultural Sciences, P.O. Box 101, 230 53 Alnarp, SwedenDepartment of Microbiology, School of Life Sciences, Central University of Rajasthan Bandarsindri, Kishangarh, Ajmer, Rajasthan 305801, IndiaCentre for Energy and Environment, Malaviya National Institute of Technology, Jaipur, Rajasthan 302017, IndiaBioenergy, biofuels, and a range of valuable chemicals may be extracted from the abundantly available lignocellulosic biomass. To reduce the recalcitrance imposed by the complex cell wall structure, genetic engineering has been proposed over the years as a suitable solution to modify the genes, thereby, controlling the overall phenotypic expression. The present review provides a brief description of the plant cell wall structure and its compositional array i.e., lignin, cellulose, hemicellulose, wall proteins, and pectin, along with their effect on biomass digestibility. Also, this review discusses the potential to increase biomass by gene modification. Furthermore, the review highlights the potential genes associated with the regulation of cell wall structure, which can be targeted for achieving energy crops with desired phenotypes. These genetic approaches provide a robust and assured method to bring about the desired modifications in cell wall structure, composition, and characteristics. Ultimately, these genetic modifications pave the way for achieving enhanced biomass yield and enzymatic digestibility of energy crops, which is crucial for maximizing the outcomes of energy crop breeding and biorefinery applications.http://www.mdpi.com/2077-0472/8/6/76genetic engineeringbiomassbiofueldigestibilityenzymatic saccharification |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Monika Yadav Kunwar Paritosh Aakash Chawade Nidhi Pareek Vivekanand Vivekanand |
spellingShingle |
Monika Yadav Kunwar Paritosh Aakash Chawade Nidhi Pareek Vivekanand Vivekanand Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility Agriculture genetic engineering biomass biofuel digestibility enzymatic saccharification |
author_facet |
Monika Yadav Kunwar Paritosh Aakash Chawade Nidhi Pareek Vivekanand Vivekanand |
author_sort |
Monika Yadav |
title |
Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility |
title_short |
Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility |
title_full |
Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility |
title_fullStr |
Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility |
title_full_unstemmed |
Genetic Engineering of Energy Crops to Reduce Recalcitrance and Enhance Biomass Digestibility |
title_sort |
genetic engineering of energy crops to reduce recalcitrance and enhance biomass digestibility |
publisher |
MDPI AG |
series |
Agriculture |
issn |
2077-0472 |
publishDate |
2018-06-01 |
description |
Bioenergy, biofuels, and a range of valuable chemicals may be extracted from the abundantly available lignocellulosic biomass. To reduce the recalcitrance imposed by the complex cell wall structure, genetic engineering has been proposed over the years as a suitable solution to modify the genes, thereby, controlling the overall phenotypic expression. The present review provides a brief description of the plant cell wall structure and its compositional array i.e., lignin, cellulose, hemicellulose, wall proteins, and pectin, along with their effect on biomass digestibility. Also, this review discusses the potential to increase biomass by gene modification. Furthermore, the review highlights the potential genes associated with the regulation of cell wall structure, which can be targeted for achieving energy crops with desired phenotypes. These genetic approaches provide a robust and assured method to bring about the desired modifications in cell wall structure, composition, and characteristics. Ultimately, these genetic modifications pave the way for achieving enhanced biomass yield and enzymatic digestibility of energy crops, which is crucial for maximizing the outcomes of energy crop breeding and biorefinery applications. |
topic |
genetic engineering biomass biofuel digestibility enzymatic saccharification |
url |
http://www.mdpi.com/2077-0472/8/6/76 |
work_keys_str_mv |
AT monikayadav geneticengineeringofenergycropstoreducerecalcitranceandenhancebiomassdigestibility AT kunwarparitosh geneticengineeringofenergycropstoreducerecalcitranceandenhancebiomassdigestibility AT aakashchawade geneticengineeringofenergycropstoreducerecalcitranceandenhancebiomassdigestibility AT nidhipareek geneticengineeringofenergycropstoreducerecalcitranceandenhancebiomassdigestibility AT vivekanandvivekanand geneticengineeringofenergycropstoreducerecalcitranceandenhancebiomassdigestibility |
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