A precise and consistent assay for major wall polymer features that distinctively determine biomass saccharification in transgenic rice by near-infrared spectroscopy
Jiangfeng Huang(Huazhong Agricultural University), Tao Xia(Anhui Medical University), Yuanyuan Tu(Sichuan University), Yanting Wang(Huazhong Agricultural University), Shiguang Zhou(Huazhong Agricultural University), Ran Zhang(Huazhong Agricultural University), Ying Li(Chinese Academy of Medical Sciences & Peking Union Medical College), Yuanyuan Chen(Children's Hospital of Zhejiang University), Bo Hao(University of Illinois Urbana-Champaign), Liangcai Peng(Shanghai Jiao Tong University), Mingyong Liu(Hubei University of Technology), Youmei Wang(Henan University), Jingyang Li(Sichuan Cancer Hospital)
Cited by 45
Related Papers
Musa balbisiana genome reveals subgenome evolution and functional divergence
|Nature Plants|2019|235
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