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Structural Analysis of the Anti-Malaria Active Agent Chloroquine under Physiological Conditions

Frosch, Torsten ; Schmitt, Michael ; Bringmann, Gerhard ; Kiefer, Wolfgang ; Popp, Jürgen (2007)
Structural Analysis of the Anti-Malaria Active Agent Chloroquine under Physiological Conditions.
In: The Journal of Physical Chemistry B, 111 (7)
doi: 10.1021/jp065136j
Artikel, Bibliographie

Kurzbeschreibung (Abstract)

UV resonance Raman spectroscopy was applied for a selective enhancement of molecular vibrations of the important antimalarial chloroquine under physiological conditions. The resonance Raman spectra of chloroquine at pH values resembling the pH value of blood and the pH value of the acid food vacuole of plasmodium can unambiguously be distinguished via Raman resonantly enhanced mode at 721 cm-1. These vibrations are assigned to -(CH2)n- rocking mode of the chloroquine side chain and are expected to be influenced by protonation of chloroquine. Furthermore, vibrations belonging to the quinoline ring (important for π−π-interactions to hemozoin) are resonantly enhanced and can be studied selectively. A convincing mode assignment was performed by means of DFT calculations. These calculations proved that the different protonation states of chloroquine remarkably influence various vibrational modes, the molecular geometry, and molecular orbitals. The presented results are of significant relevance for a Raman spectroscopical localization of chloroquine inside the acid food vacuole of plasmodium, the study of π−π-interactions of chloroquine to the biological target molecules hematin and hemozoin and the protonation state of chloroquine during this docking process. The protonation of the weak base chloroquine is considered to be crucial for an accumulation inside the acid food vacuole of plasmodium and an object for resistances against this drug.

Typ des Eintrags: Artikel
Erschienen: 2007
Autor(en): Frosch, Torsten ; Schmitt, Michael ; Bringmann, Gerhard ; Kiefer, Wolfgang ; Popp, Jürgen
Art des Eintrags: Bibliographie
Titel: Structural Analysis of the Anti-Malaria Active Agent Chloroquine under Physiological Conditions
Sprache: Englisch
Publikationsjahr: 1 Februar 2007
Verlag: ACS Publications
Titel der Zeitschrift, Zeitung oder Schriftenreihe: The Journal of Physical Chemistry B
Jahrgang/Volume einer Zeitschrift: 111
(Heft-)Nummer: 7
DOI: 10.1021/jp065136j
Kurzbeschreibung (Abstract):

UV resonance Raman spectroscopy was applied for a selective enhancement of molecular vibrations of the important antimalarial chloroquine under physiological conditions. The resonance Raman spectra of chloroquine at pH values resembling the pH value of blood and the pH value of the acid food vacuole of plasmodium can unambiguously be distinguished via Raman resonantly enhanced mode at 721 cm-1. These vibrations are assigned to -(CH2)n- rocking mode of the chloroquine side chain and are expected to be influenced by protonation of chloroquine. Furthermore, vibrations belonging to the quinoline ring (important for π−π-interactions to hemozoin) are resonantly enhanced and can be studied selectively. A convincing mode assignment was performed by means of DFT calculations. These calculations proved that the different protonation states of chloroquine remarkably influence various vibrational modes, the molecular geometry, and molecular orbitals. The presented results are of significant relevance for a Raman spectroscopical localization of chloroquine inside the acid food vacuole of plasmodium, the study of π−π-interactions of chloroquine to the biological target molecules hematin and hemozoin and the protonation state of chloroquine during this docking process. The protonation of the weak base chloroquine is considered to be crucial for an accumulation inside the acid food vacuole of plasmodium and an object for resistances against this drug.

Freie Schlagworte: Biomedical Sensing, Drug Sensing, Antimalarial, Chloroquine, Raman Spectroscopy, density functional theory DFT calculations, Malaria, Biomedical Spectroscopy, Pharmaceutical Spectroscopy, UV Raman Spectroscopy
Fachbereich(e)/-gebiet(e): 18 Fachbereich Elektrotechnik und Informationstechnik
18 Fachbereich Elektrotechnik und Informationstechnik > Biophotonik-Medizintechnik
Hinterlegungsdatum: 19 Jan 2024 10:36
Letzte Änderung: 19 Jan 2024 17:56
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