1. Academic Validation
  2. Synthesis, characterization, and in vitro and in silico α-glucosidase inhibitory evolution of novel N'-(2-cyclopentyl-2-phenylacetyl)cinnamohydrazide derivatives

Synthesis, characterization, and in vitro and in silico α-glucosidase inhibitory evolution of novel N'-(2-cyclopentyl-2-phenylacetyl)cinnamohydrazide derivatives

  • RSC Adv. 2025 May 21;15(22):17118-17129. doi: 10.1039/d5ra01971k.
Ram Reddy Mudireddy 1 2 Rambabu Gundla 1 Baji Baba Shaik 3 Anoop Bodapati 4 Panasa Mahesh 1 Shiva Sravan Naidu 5 Damodar Tirumalasetti 6 Naresh Kumar Katari 3
Affiliations

Affiliations

  • 1 Department of Chemistry, GITAM School of Science, GITAM (Deemed to be University) Hyderabad Telangana 502 329 India rgundla@gitam.edu.
  • 2 B.V.Raju Institute of Technology Vishnupur, Narsapur, Medak Dist Telangana 502313 India.
  • 3 School of Chemistry & Physics, College of Agriculture, Engineering & Science, University of KwaZulu-Natal Westville Campus, P Bag X 54001 Durban 4000 South Africa KatariN@ukzn.ac.za.
  • 4 Analytical Research & Development, Hikma Pharmaceuticals USA Inc Columbus Ohio 43228 USA.
  • 5 R&D, Vertex Pharmaceuticals 316 Northern Avenue Boston MA 02210 USA.
  • 6 Department of Chemistry, University of Pennsylvania New Town PA 18940 USA.
Abstract

To discover potential α-glucosidase inhibitory agents, a new series of N'-(2-cyclopentyl-2-phenylacetyl)cinnamohydrazide derivatives were designed and synthesized as α-glucosidase inhibitors. The newly synthesized compounds were characterized using 1H, 13C NMR, and mass spectroscopy analysis and evaluated for their in vitro α-glucosidase inhibitory effects. All the tested compounds displayed significant α-glucosidase inhibitory activity compared to the standard drug acarbose. Among all, compounds 7b, 7d and 6g exhibited the strongest inhibition with IC50 values of 14.48 nmol, 18.88 nmol and 28.51 nmol, respectively. Molecular docking analysis was conducted to identify the important binding interactions responsible for inhibition activity of a-glucosidase. The compounds 7b and 7d exhibit the highest docking energies, with same value of -10.1 kcal mol-1 with crucial hydrogen bonding interactions with HIS:280 and ASN:415, respectively. Furthermore, computational drug likeness/ADME/toxicity analysis was conducted on the compounds, which indicated that these compounds exhibit drug-like properties and possess favourable ADME and toxicity profiles.

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