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Ruthenocycles of benzothiazolyl and pyridyl hydrazones with ancillary PAHs: synthesis, structure, electrochemistry and antimicrobial activity.

Authors :
Dinda, Soumitra
Sultana, Tamanna
Sultana, Suhana
Patra, Sarat Chandra
Mitra, Arup Kumar
Roy, Subhadip
Pramanik, Kausikisankar
Ganguly, Sanjib
Source :
New Journal of Chemistry; 7/14/2020, Vol. 44 Issue 26, p11022-11034, 13p
Publication Year :
2020

Abstract

Two types of bivalent ruthenium complexes [RuL<superscript>Py</superscript>(CO)Cl(PPh<subscript>3</subscript>)<subscript>3</subscript>] 3 and [RuL<superscript>Benz</superscript>(CO)Cl(PPh<subscript>3</subscript>)<subscript>3</subscript>] 4 were synthesized starting from [RuH(CO)Cl(PPh<subscript>3</subscript>)<subscript>3</subscript>] and heterocyclic hydrazone ligands 1 and 2 respectively. X-ray diffraction studies reveal that in both types of complexes, the ligands behave as monoanionic bidentate N<subscript>hydrazonyl</subscript> and N<subscript>pyridyl</subscript>/N<subscript>benzothiazolyl</subscript> donors towards ruthenium(II), thereby furnishing four-membered metallacycles. The multiple transitions in the electronic spectra have been elucidated by time dependent density functional theory (TDDFT). The redox active nature of both 3 and 4 has been substantiated from the well-defined oxidative responses and theoretical scrutiny corroborates that one of them is exclusively ligand centred while the other one is chiefly due to the Ru<superscript>II</superscript>/Ru<superscript>III</superscript> oxidation. Both the types of complexes exhibit a significant antimicrobial activity, although the activity of 4 is more prominent, particularly over Pseudomonas. These are analyzed by measuring ZOI, MIC as well as the extent of membrane damage and protein leakage studies. The complexes probably cause free-radical facilitated oxidative damage to the bacterial cells during the course of their activity. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
11440546
Volume :
44
Issue :
26
Database :
Complementary Index
Journal :
New Journal of Chemistry
Publication Type :
Academic Journal
Accession number :
144410510
Full Text :
https://doi.org/10.1039/d0nj01447h