Aloe-Emodin Interaction Study with Human Telomeric G-Quadruplex DNA under K+ and Na+ Conditions.

Aloe-emodin (AED), a naturally occurring anthraquinone, was examined for its interaction with two model human telomeric G-quadruplex systems: wHTel26 adopting a hybrid-2 topology in K+-containing buffer and HTel22 adopting an antiparallel basket topology in Na+-containing buffer. UV-visible absorption, fluorescence, and circular dichroism spectroscopy showed concentration-dependent changes consistent with AED association with both G4 models. The apparent binding constants varied among the analytical techniques, spanning approximately 103 M-1-105 M-1, reflecting the distinct optical and conformational observables monitored by each method and the non-linear nature of the titration profiles. The limited wavelength shifts and preservation of the major CD signatures were consistent with a non-intercalative interaction, although the precise binding geometry and stoichiometry could not be resolved. AED produced an apparent thermal stabilization of approximately 14 °C for wHTel26 under the tested K+ condition, whereas no comparable stabilization was observed for HTel22 under the tested Na+ condition. Because the systems differed simultaneously in sequence, flanking residues, topology, and cation, this difference cannot be attributed solely to the ionic environment. Docking generated plausible AED association poses was used only as supportive, hypothesis-generating evidence. AED also reduced MCF-7 metabolic viability with an estimated IC50 of 18.82 µM; however, telomerase inhibition and intracellular G4 target engagement were not investigated. Thus, establishing sequence- and cation-controlled G4 selectivity and confirming intracellular target engagement remain important challenges. Future studies employing matched-sequence/cross-cation comparisons, direct cellular G4-target engagement, and telomerase-based mechanistic assays will be required to establish the molecular and biological significance of AED-G4 interactions.

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PubMed
Published
2026-10-06
DOI
https://doi.org/10.1021/acsabm.6c01554
Primary Topic
DNA and Nucleic Acid Chemistry
Type
article
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article

Aloe-Emodin Interaction Study with Human Telomeric G-Quadruplex DNA under K+ and Na+ Conditions.

Kumud Pandav, Ritu Barthwal, Priya Kumari, Arvind K. Singh Chandel et al.
PubMed
DNA and Nucleic Acid Chemistry
article

Aloe-Emodin Interaction Study with Human Telomeric G-Quadruplex DNA under K+ and Na+ Conditions.

Kumud Pandav, Ritu Barthwal, Priya Kumari, Arvind K. Singh Chandel, Manish S Sengar, Surat Kumar
article en

Abstract

Aloe-emodin (AED), a naturally occurring anthraquinone, was examined for its interaction with two model human telomeric G-quadruplex systems: wHTel26 adopting a hybrid-2 topology in K+-containing buffer and HTel22 adopting an antiparallel basket topology in Na+-containing buffer. UV-visible absorption, fluorescence, and circular dichroism spectroscopy showed concentration-dependent changes consistent with AED association with both G4 models. The apparent binding constants varied among the analytical techniques, spanning approximately 103 M-1-105 M-1, reflecting the distinct optical and conformational observables monitored by each method and the non-linear nature of the titration profiles. The limited wavelength shifts and preservation of the major CD signatures were consistent with a non-intercalative interaction, although the precise binding geometry and stoichiometry could not be resolved. AED produced an apparent thermal stabilization of approximately 14 °C for wHTel26 under the tested K+ condition, whereas no comparable stabilization was observed for HTel22 under the tested Na+ condition. Because the systems differed simultaneously in sequence, flanking residues, topology, and cation, this difference cannot be attributed solely to the ionic environment. Docking generated plausible AED association poses was used only as supportive, hypothesis-generating evidence. AED also reduced MCF-7 metabolic viability with an estimated IC50 of 18.82 µM; however, telomerase inhibition and intracellular G4 target engagement were not investigated. Thus, establishing sequence- and cation-controlled G4 selectivity and confirming intracellular target engagement remain important challenges. Future studies employing matched-sequence/cross-cation comparisons, direct cellular G4-target engagement, and telomerase-based mechanistic assays will be required to establish the molecular and biological significance of AED-G4 interactions.

PubMed
Danube Private University (AT), Universität für Weiterbildung Krems (AT), Indian Institute of Technology Roorkee (IN), Dayalbagh Educational Institute (IN), University of Limerick (IE), Indian Institute of Technology Kanpur (IN)
Openalex Percentile: Top 21%
DNA and Nucleic Acid Chemistry
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