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Data · collection · 2015

Targeting different RNA motifs by beta carboline alkaloid, harmalol: A comparative photophysical, calorimetric and molecular docking approach.

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RNA has attracted recent attention for its key role in gene expression and targeting by small molecules for therapeutic intervention.

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This work focuses towards understanding interaction of harmalol, a DNA intercalator, with RNAs of different motifs viz . single stranded A-form poly(A), double stranded A-form of poly(C)·poly(G) and clover leaf tRNA phe by different spectroscopic, calorimetric and molecular modeling techniques.

Results of this study converge to suggest that (i) binding constant varied in the order poly(C)·poly(G) > tRNA phe > poly(A), (ii) non-cooperative binding of harmalol to poly(C)·poly(G) and poly(A) and cooperative binding with tRNA phe , (iii) significant structural changes of poly(C)·poly(G) and tRNA phe with concomitant induction of optical activity in the bound achiral alkaloid molecules, while with poly(A) no induced CD perturbation was observed, (iv) the binding was predominantly exothermic, enthalpy-driven, entropy favored with poly(C)·poly(G) while it was entropy driven with tRNA phe and poly(A), (v) a hydrophobic contribution and comparatively large role of non polyelectrolytic forces to Gibbs energy changes with poly(C)·poly(G) and tRNA phe and (vi) intercalated state of harmalol inside poly(C)·poly(G) structure as revealed from molecular docking was supported by the viscometric and ferrocyanide quenching data.

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All these findings unequivocally pointed out that harmalol prefers binding with poly(C)·poly(G), compared to tRNA phe and poly(A); this results serve as data for the development of RNA based antiviral drugs.

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Chemistry

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DataCite10.6084/m9.figshare.c.2132645.v110 d agoJSON v1
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