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X-ray Structures and Computational Studies of Two Bioactive 2-(Adamantane-1-carbonyl)- N -substituted Hydrazine-1-carbothioamides.

Lamya H Al-WahaibiKowsalya AlagappanOlivier BlacqueAhmed A B MohamedHanan M HassanMaría Judith PercinoAli A El-EmamSubbiah Thamotharan
Published in: Molecules (Basel, Switzerland) (2022)
Two biologically active adamantane-linked hydrazine-1-carbothioamide derivatives, namely 2-(adamantane-1-carbonyl)- N -( tert -butyl)hydrazine-1-carbothioamide) 1 and 2-(adamantane-1-carbonyl)- N -cyclohexylhydrazine-1-carbothioamide 2, have been synthesized. X-ray analysis was conducted to study the effect of the t -butyl and cyclohexyl moieties on the intermolecular interactions and conformation of the molecules in the solid state. X-ray analysis reveals that compound 1 exhibits folded conformation, whereas compound 2 adopts extended conformation. The Hirshfeld surface analysis indicates that the contributions of the major intercontacts involved in the stabilization of the crystal structures do not change much as a result of the t -butyl and cyclohexyl moieties. However, the presence and absence of these contacts is revealed by the 2D-fingerprint plots. The CLP-Pixel method was used to identify the energetically significant molecular dimers. These dimers are stabilized by different types of intermolecular interactions such as N-H···S, N-H···O, C-H···S, C-H···O, H-H bonding and C-H···π interactions. The strength of these interactions was quantified by using the QTAIM approach. The results suggest that N-H···O interaction is found to be stronger among other interactions. The in vitro assay suggests that both compounds 1 and 2 exhibit urease inhibition potential, and these compounds also display moderate antiproliferative activities. Molecular docking analysis shows the key interaction between urease enzyme and title compounds.
Keyphrases
  • molecular docking
  • high resolution
  • molecular dynamics simulations
  • crystal structure
  • solid state
  • high throughput
  • data analysis