TY - JOUR
T1 - Targeted gene editing of bacterial cellulose biosynthesis-related genes enables programmable mechanical properties of bacterial cellulose
AU - Tian, Aitian
AU - Gao, Hongliang
AU - An, Shuangqi
AU - Liu, Jingxuan
AU - Zhao, Yiming
AU - Chang, Yuqing
AU - Niu, Yanning
AU - Jia, Caifeng
AU - Chang, Zhongyi
AU - Huang, Jing
AU - Zhang, Qiang
AU - Jiang, Deming
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/4/1
Y1 - 2026/4/1
N2 - Bacterial cellulose (BC) is a sustainable biomaterial with excellent mechanical properties and broad application potential. Controlling BC structure and properties is important for its expanding applications and advancing industrial translation. Here, we establish a high-efficiency, seamless genome-editing system for Komagataeibacter xylinus based on mutant pheS gene and apply it to systematically evaluate the roles of bacterial cellulose synthesis (bcs) operon genes in BC production and properties. We found deletion of bcsCⅡ gene markedly enhances BC mechanical properties in K. xylinus P1: tensile strength and Young’s modulus reach 3.56-fold and 2.36-fold improvement, respectively. Multiscale structural analyses indicate that the enhancements arise from more uniform nanofibril assembly and a denser hierarchical network of BC. We further demonstrate that co-culture strategy or inducible expression of bcsCⅡ enable programmable control of BC mechanical properties. Collectively, this work provides an efficient genetic toolkit for K. xylinus, systematically reveals functional roles of bcs operon genes in BC assembly, and offers a rational route to engineer programmable high-performance BC materials.
AB - Bacterial cellulose (BC) is a sustainable biomaterial with excellent mechanical properties and broad application potential. Controlling BC structure and properties is important for its expanding applications and advancing industrial translation. Here, we establish a high-efficiency, seamless genome-editing system for Komagataeibacter xylinus based on mutant pheS gene and apply it to systematically evaluate the roles of bacterial cellulose synthesis (bcs) operon genes in BC production and properties. We found deletion of bcsCⅡ gene markedly enhances BC mechanical properties in K. xylinus P1: tensile strength and Young’s modulus reach 3.56-fold and 2.36-fold improvement, respectively. Multiscale structural analyses indicate that the enhancements arise from more uniform nanofibril assembly and a denser hierarchical network of BC. We further demonstrate that co-culture strategy or inducible expression of bcsCⅡ enable programmable control of BC mechanical properties. Collectively, this work provides an efficient genetic toolkit for K. xylinus, systematically reveals functional roles of bcs operon genes in BC assembly, and offers a rational route to engineer programmable high-performance BC materials.
KW - Bacterial cellulose
KW - Komagataeibacter xylinus
KW - Mechanical properties
KW - Seamless genome-editing system
UR - https://www.scopus.com/pages/publications/105030890880
U2 - 10.1016/j.biortech.2026.134170
DO - 10.1016/j.biortech.2026.134170
M3 - 文章
C2 - 41667043
AN - SCOPUS:105030890880
SN - 0960-8524
VL - 446
JO - Bioresource Technology
JF - Bioresource Technology
M1 - 134170
ER -