Double integrating XYL2 into engineered Saccharomyces cerevisiae strains for consistently enhanced bioethanol production by effective xylose and hexose co-consumption of steam-exploded lignocellulose in bioenergy crops
Boyang He(Beijing University of Posts and Telecommunications), Tao Xia(Anhui Medical University), Ke Xiong(Huazhong Agricultural University), Yajun Zeng(Huazhong Agricultural University), Yuanyuan Tu(Sichuan University), Yanting Wang(Huazhong Agricultural University), Haizhong Yu(Hubei University of Arts and Science), Peng Liu(Jinan Institute of Quantum Technology), Bo Hao(University of Illinois Urbana-Champaign), Xiaoyang Wei(Huazhong Agricultural University), Heng Kang(Hubei University of Technology), Liangcai Peng(Huazhong Agricultural University), Hu Zeng(Huazhong Agricultural University), Fen Tu(Huazhong Agricultural University)
Cited by 26
Related Papers
Temperature-Sensitive Alleles of <i>RSW2</i> Link the KORRIGAN Endo-1,4-β-Glucanase to Cellulose Synthesis and Cytokinesis in Arabidopsis
|PLANT PHYSIOLOGY|2001|271
Os<scp>CESA</scp>9 conserved‐site mutation leads to largely enhanced plant lodging resistance and biomass enzymatic saccharification by reducing cellulose <scp>DP</scp> and crystallinity in rice
|Plant Biotechnology Journal|2017|212
High‐level hemicellulosic arabinose predominately affects lignocellulose crystallinity for genetically enhancing both plant lodging resistance and biomass enzymatic digestibility in rice mutants
|Plant Biotechnology Journal|2014|191