Synthesis of TMPA Derivatives through Sequential Ir(III)-Catalyzed C–H Alkylation and Their Antidiabetic Evaluation
Author(s) -
Suk Hun Lee,
Amit Kundu,
Sang Hoon Han,
Neeraj Kumar Mishra,
Kyeong Seok Kim,
Myung Hoon Choi,
Ashok Kumar Pandey,
Jung Su Park,
Hyung Sik Kim,
In Su Kim
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b00179
Subject(s) - alkylation , chemistry , demethylation , iridium , catalysis , combinatorial chemistry , ketone , ampk , organic chemistry , protein kinase a , enzyme , biochemistry , gene expression , dna methylation , gene
The synthesis and antidiabetic evaluation of ethyl 2-[2,3,4-trimethoxy-6-(1-octanoyl)phenyl]acetate (TMPA) and its structural analogs are described. The construction of TMPA derivatives has been successfully achieved in only two steps, which involve the iridium(III)-catalyzed α-alkylation of acetophenones with alcohols and the ketone-directed iridium(III)- or rhodium(III)-catalyzed redox-neutral C-H alkylation of α-alkylated acetophenones using Meldrum's diazo compounds. This synthetic protocol efficiently provides a range of TMPA derivatives with site selectivity and functional group compatibility. In addition, the site-selective demethylation of TMPA derivative affords the naturally occurring phomopsin C in good yield. Moreover, all synthetic compounds were screened for in vitro adenosine 5'-monophosphate-activated protein kinase (AMPK) activation using HepG2 cells. Furthermore, TMPA ( 5ac ) and 5cd showing the most potent AMPK activation were treated for the in vivo antidiabetic experiment. Notably, our synthetic compound 5cd was found to display the powerful antidiabetic effect, stronger than that of metformin and TMPA ( 5ac ).
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