TY - JOUR
T1 - Design of a Survival-Fluorescence Cascade Screening Circuit (uFAST) for an Erythritol-Specific BmoR-Based Biosensor
AU - Wang, Yuhan
AU - Wu, Tong
AU - Huang, Zixiang
AU - Chen, Zhenya
AU - Huo, Yi Xin
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/6/19
Y1 - 2026/6/19
N2 - Rapid, specific quantification of erythritol in complex matrices remains challenging due to its structural similarity to sugars like sucrose. To overcome this, we developed a survival-fluorescence cascade screening circuit (uFAST) to engineer a selective, σ54-dependent BmoR-based biosensor. This circuit integrated SacB-mediated negative and mCherry-mediated positive selection to rapidly isolate erythritol-specific mutants. Guided by structural analysis, we optimized BmoR, achieving a 6.03-fold increase in GFP output and a 2.09-fold improvement in apparent affinity (Km). Coupled with a VioABCE-based visual module, the biosensor enabled accurate erythritol quantification in complex matrices, matching HPLC results. Integrated with an erythritol production module and fluorescence-activated droplet sorting (FADS), this platform screened an ARTP-mutagenized library, identifying a strain with 2.88-fold higher titer, yielding 3.51 g/L erythritol in fermentation. The uFAST circuit provides a generalizable framework for developing highly specific biosensors, offering an efficient tool for erythritol detection and strain improvement.
AB - Rapid, specific quantification of erythritol in complex matrices remains challenging due to its structural similarity to sugars like sucrose. To overcome this, we developed a survival-fluorescence cascade screening circuit (uFAST) to engineer a selective, σ54-dependent BmoR-based biosensor. This circuit integrated SacB-mediated negative and mCherry-mediated positive selection to rapidly isolate erythritol-specific mutants. Guided by structural analysis, we optimized BmoR, achieving a 6.03-fold increase in GFP output and a 2.09-fold improvement in apparent affinity (Km). Coupled with a VioABCE-based visual module, the biosensor enabled accurate erythritol quantification in complex matrices, matching HPLC results. Integrated with an erythritol production module and fluorescence-activated droplet sorting (FADS), this platform screened an ARTP-mutagenized library, identifying a strain with 2.88-fold higher titer, yielding 3.51 g/L erythritol in fermentation. The uFAST circuit provides a generalizable framework for developing highly specific biosensors, offering an efficient tool for erythritol detection and strain improvement.
KW - BmoR
KW - erythritol
KW - specificity
KW - visual detection
KW - whole-cell biosensor
UR - https://www.scopus.com/pages/publications/105042402835
U2 - 10.1021/acssynbio.6c00167
DO - 10.1021/acssynbio.6c00167
M3 - Article
C2 - 42173820
AN - SCOPUS:105042402835
SN - 2161-5063
VL - 15
SP - 2543
EP - 2560
JO - ACS Synthetic Biology
JF - ACS Synthetic Biology
IS - 6
ER -