Rational Design of a Polymer Specific for Microcystin-LR Using a Computational Approach
- 16 February 2002
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 74 (6) , 1288-1293
- https://doi.org/10.1021/ac010840b
Abstract
A computational approach for the design of a molecularly imprinted polymer (MIP) specific for Cyanobacterial toxin microcystin-LR is presented. By using molecular modeling software, a virtual library of functional monomers was designed and screened against the target toxin, employed as a template. The monomers giving the highest binding energy were selected and used in a simulated annealing (molecular dynamics) process to investigate their interaction with the template. The stoichiometric ratio observed from the simulated annealing study was used in MIP preparation for microcystin-LR. The monomers were copolymerized with a cross-linker in the presence of the template. A control (blank) polymer was prepared under the same conditions but in the absence of template. A competitive assay with microcystin−horseradish peroxidase conjugate was optimized and used to evaluate the affinity and cross-reactivity of the polymer. The performance of the artificial receptor was compared to the performance of monoclonal and polyclonal antibodies raised against the toxin. The results indicate that imprinted polymer has affinity and sensitivity comparable to those of polyclonal antibodies (the detection limit for microcystin-LR using the MIP-based assay was found to be 0.1 μg L-1), while superior chemical and thermal stabilities were obtained. Moreover, cross-reactivity to other toxin analogues was very low for the imprinted polymer, in contrast to the results achieved for antibodies. It is anticipated that the polymer designed could be used in assays, sensors, and solid-phase extraction.Keywords
This publication has 19 references indexed in Scilit:
- ‘Bite-and-Switch’ approach using computationally designed molecularly imprinted polymers for sensing of creatinine11Editors SelectionBiosensors and Bioelectronics, 2001
- Immuno-crossreactivity and toxicity assessment of conjugation products of the cyanobacterial toxin, microcystin-LRFEMS Microbiology Letters, 2000
- Surface Functionalization of Porous Polypropylene Membranes with Molecularly Imprinted Polymers by Photograft Copolymerization in WaterMacromolecules, 2000
- Potential of immunoextraction coupled to analytical and bioanalytical methods (liquid chromatography, ELISA kit and phosphatase inhibition test) for an improved environmental monitoring of cyanobacterial toxinsAnalytica Chimica Acta, 1999
- Imprinted Polymers as Protecting Groups for Regioselective Modification of Polyfunctional SubstratesJournal of the American Chemical Society, 1999
- Selective recognition of atrazine by molecularly imprinted polymer membranes. Development of conductometric sensor for herbicides detectionAnalytica Chimica Acta, 1999
- Combinatorial Molecular Imprinting: An Approach to Synthetic Polymer ReceptorsAnalytical Chemistry, 1998
- Novel monoclonal antibodies against microcystin and their protective activity for hepatotoxicityNatural Toxins, 1995
- Cyanobacteria secondary metabolites—the cyanotoxinsJournal of Applied Bacteriology, 1992
- Three‐Dimensional Quantitative Structure‐Activity Relationships. 2. Conformational Mimicry and Topographical Similarity of Flexible MoleculesQuantitative Structure-Activity Relationships, 1986