Theoretical study on oxidation mechanism of fluorescent probe, coumarin‐7‐pinacolboronate by various reactive oxygen species

Author:

Guo Yujie1,Leng Yan1,Liu Hongbo2,Min Chun‐Gang3ORCID,Ren Ai‐Min4,Yin Qinhong5

Affiliation:

1. School of Materials Science and Engineering Kunming University of Science and Technology Kunming People's Republic of China

2. College of Information Technology, Jilin Engineering Research Center of Optoelectronic Materials and Devices Jilin Normal University Siping People's Republic of China

3. Research Center for Analysis and Measurement Kunming University of Science and Technology Kunming People's Republic of China

4. Institute of Theoretical Chemistry, College of Chemistry Jilin University Changchun People's Republic of China

5. Faculty of Narcotics Control Yunnan Police College Kunming People's Republic of China

Abstract

AbstractHydrogen peroxide (H2O2) as relatively stable reactive oxygen species gains considerable attention because it can regulate physiological and pathological processes. In order to better detect H2O2, fluorescent probes were widely applied. Over the past 20 years, a great deal of boronate‐based fluorescent molecular probes appeared due to relatively simple oxidation reaction. However, the reaction mechanisms that boronate derivatives were converted into fluorescent product by H2O2 are poorly studied. In this paper, taking coumarin‐7‐pinacolboronate (CBU) as an example, the oxidation mechanism of boronate‐based probes by various reactive oxygen species was studied by theoretical calculations. The results found that (1) the chemical reaction mechanisms are nearly identical for the reactions of CBU with hydrogen peroxide, hypochlorous acid, peroxynitrite, and tyrosine hydroperoxide, respectively. (2) There is not radical intermediate during the reaction. (3) The different reactive oxygen species has a strong influence on rate limiting step and reaction rate.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Organic Chemistry,Physical and Theoretical Chemistry

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