TY - JOUR
T1 - Electrochemical Chiral Recognizing Tryptophan Enantiomers Based on Chiral Metal-Organic Framework D-MOF
AU - Hou, Huipeng
AU - Tang, Shanshan
AU - Wang, Wei
AU - Liu, Miao
AU - Liang, Axin
AU - Xie, Bingteng
AU - Yi, Yue
AU - Luo, Aiqin
N1 - Publisher Copyright:
© 2023, Jilin University, The Editorial Department of Chemical Research in Chinese Universities and Springer-Verlag GmbH.
PY - 2023/12
Y1 - 2023/12
N2 - In this work, an electrochemical chiral sensor of a nanowire-like chiral metal-organic framework/multiwalled carbon nanotube-chitosan/glassy carbon electrode(D-MOF/MWCNTs-CS/GCE) was proposed for the enantiorecognition of L/D-tryptophan(L/D-Trp). The asymmetrical spatial structure of D-MOF provides the feasibility for the enantiorecognition of Trp enantiomers. Moreover, differential pulse voltammetry(DPV) was carried out to be the detection method and the DPV peak potential difference(ΔE p) between L-Trp and D-Trp was referred as the index of the enantiorecognition performance. Several parameters, such as mass ratios and drop-coated volume of MWCNTs-CS, drop-coated volume and concentration of D-MOF, pH and detection temperature of D-MOF/MWCNTs-CS/GCE were optimized for the largest ΔE p value. And the molecular dynamics(MD) simulation was used to elucidate the enantiorecognition mechanism. Furthermore, the proportions of D-Trp(D-Trp%) in Trp mixtures were detected in a good linear relationship with the DPV peak potentials(E p), and the proposed electrochemical chiral sensor exhibited good reproducibility, stability and enantiorecognition ability. Additionally, the proposed electrochemical chiral sensor(D-MOF/MWCNTs-CS/GCE) has a good application prospect in the fields of biomedicine, clinical diagnosis, chemical production, pharmaceuticals safety and so on. [Figure not available: see fulltext.]
AB - In this work, an electrochemical chiral sensor of a nanowire-like chiral metal-organic framework/multiwalled carbon nanotube-chitosan/glassy carbon electrode(D-MOF/MWCNTs-CS/GCE) was proposed for the enantiorecognition of L/D-tryptophan(L/D-Trp). The asymmetrical spatial structure of D-MOF provides the feasibility for the enantiorecognition of Trp enantiomers. Moreover, differential pulse voltammetry(DPV) was carried out to be the detection method and the DPV peak potential difference(ΔE p) between L-Trp and D-Trp was referred as the index of the enantiorecognition performance. Several parameters, such as mass ratios and drop-coated volume of MWCNTs-CS, drop-coated volume and concentration of D-MOF, pH and detection temperature of D-MOF/MWCNTs-CS/GCE were optimized for the largest ΔE p value. And the molecular dynamics(MD) simulation was used to elucidate the enantiorecognition mechanism. Furthermore, the proportions of D-Trp(D-Trp%) in Trp mixtures were detected in a good linear relationship with the DPV peak potentials(E p), and the proposed electrochemical chiral sensor exhibited good reproducibility, stability and enantiorecognition ability. Additionally, the proposed electrochemical chiral sensor(D-MOF/MWCNTs-CS/GCE) has a good application prospect in the fields of biomedicine, clinical diagnosis, chemical production, pharmaceuticals safety and so on. [Figure not available: see fulltext.]
KW - Chiral metal-organic framework
KW - D-MOF
KW - Electrochemical chiral sensor
KW - Multiwalled carbon nanotube-chitosan(MWCNTs-CS)
KW - Potential difference(ΔE)
KW - Tryptophan(Trp)
UR - http://www.scopus.com/inward/record.url?scp=85151522523&partnerID=8YFLogxK
U2 - 10.1007/s40242-023-3004-6
DO - 10.1007/s40242-023-3004-6
M3 - Article
AN - SCOPUS:85151522523
SN - 1005-9040
VL - 39
SP - 976
EP - 984
JO - Chemical Research in Chinese Universities
JF - Chemical Research in Chinese Universities
IS - 6
ER -