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http://hdl.handle.net/10174/26816
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Title: | A chiral electrochemical system based on l-cysteine modified gold nanoparticles for propranolol enantiodiscrimination: Electroanalysis and computational modelling |
Authors: | Stoian, Ioan e Adrian Iacob, Bogdan-Cezar Prates Ramalho, Joao P. Marian, Iuliu Ovidiu Chiș, Vasile Bodoki, Ede Oprean, Radu |
Issue Date: | 2019 |
Citation: | Electrochimica Acta 326 (2019) 134961 |
Abstract: | Enantioselective electrochemical sensors seem to hold the promise for a fast and easy alternative for the
chiral probing of bioactive molecules. However, the underlying mechanism responsible for the chiral
recognition is rarely known, and suitable investigational tools are dearly missed. Therefore, as a proof-ofconcept, our study is focused on investigating the interaction mechanism of the enantiomers of a chiral
drug molecule, namely propranolol (PRNL) with the surface of bare and L-cysteine (L-Cys) modified gold
nanoparticles employing various electrochemical techniques (differential pulse voltammetry and electrochemical impedance spectroscopy) and computational modeling (molecular dynamics simulations). If
the strong surface adsorption of PRNL antipodes on bare gold nanoparticles may not be exploited for
enantioselective recognition, upon the functionalization of the nanostructures with L-Cys, the almost two
fold increase in the oxidation current is also accompanied by a cathodic shift (~40 mV) of the peak
potential for the S( )-enantiomer. This peak potential shift seems to be the consequence of a favored
orientation of the surface adsorbed S( )-enantiomer towards electron transfer and/or a weaker interaction with the chiral selector and thus a higher free energy of the transient diastereoisomeric complex,
in comparison with its R(þ)-antipode. Computational modeling highlighted the H-bond donor and
acceptor atoms of both the chiral selector (L-Cys) and adsorbates (PRNL enantiomers) responsible for the
recorded enantioselective electrochemical signal. Correlations between the observed electrochemical
signal and enantioselective molecular interactions occurring at the surface of the electrode may lead the
way towards a more rational design of future chiral electrochemical sensing platforms. |
URI: | http://hdl.handle.net/10174/26816 |
Type: | article |
Appears in Collections: | CQE - Publicações - Artigos em Revistas Internacionais Com Arbitragem Científica
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