Literature DB >> 35820661

Parallelized Raman Difference Spectroscopy for the Investigation of Chemical Interactions.

Sebastian Wolf1, Robert Domes1, Andreas Merian1, Christian Domes1, Torsten Frosch1,2,3.   

Abstract

Raman spectroscopy provides an extremely high chemical selectivity. Raman difference spectroscopy is a technique to reveal even the smallest differences that occur due to weak interactions between substances and changes in the molecular structure. To enable parallelized and highly sensitive Raman difference spectroscopy in a microtiter-array, a diffractive optical element, a lens array, and a fiber bundle were integrated into a Raman spectroscopy setup in a unique fashion. The setup was evaluated with a microtiter-array containing pyridine-water complexes, and subwavenumber changes below the spectrometer's resolution could be resolved. The spectral changes were emphasized with two-dimensional correlation analysis. Density functional theory calculation and "atoms in molecule" analysis were performed to simulate the intermolecular long-range interactions between water and pyridine molecules and to get insight into the involved noncovalent interactions, respectively. It was found that by the addition of pyridine, the energy portion of hydrogen bonds to the total complexation energy between pyridine and water reduces. These results demonstrate the unique abilities of the new setup to investigate subtle changes due to biochemically important molecular interactions and opens new avenues to perform drug binding assays and to monitor highly parallelized chemical reactions.

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Year:  2022        PMID: 35820661      PMCID: PMC9332345          DOI: 10.1021/acs.analchem.2c00222

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   8.008


  42 in total

1.  Double-beam Raman difference spectroscopy.

Authors:  M Moskovits; K Michaelian
Journal:  Appl Opt       Date:  1977-08-01       Impact factor: 1.980

2.  Structural analysis of the antimalarial drug halofantrine by means of Raman spectroscopy and density functional theory calculations.

Authors:  Torsten Frosch; Jürgen Popp
Journal:  J Biomed Opt       Date:  2010 Jul-Aug       Impact factor: 3.170

3.  Mechanism of pyridine protonation in water clusters of increasing size.

Authors:  M Carmen Sicilia; Alfonso Niño; Camelia Muñoz-Caro
Journal:  J Phys Chem A       Date:  2005-09-22       Impact factor: 2.781

4.  Device for Raman difference spectroscopy.

Authors:  Torsten Frosch; Tobias Meyer; Michael Schmitt; Jürgen Popp
Journal:  Anal Chem       Date:  2007-07-12       Impact factor: 6.986

5.  Influence of supramolecular structures in crystals on parallel stacking interactions between pyridine molecules.

Authors:  Goran V Janjić; Dragan B Ninković; Snezana D Zarić
Journal:  Acta Crystallogr B Struct Sci Cryst Eng Mater       Date:  2013-07-18

6.  Theoretical study of resonance formation in microhydrated molecules. I. Pyridine-(H2O)n, n = 1,2,3,5.

Authors:  Agnieszka Sieradzka; Jimena D Gorfinkiel
Journal:  J Chem Phys       Date:  2017-07-21       Impact factor: 3.488

7.  Monitoring of gas composition in a laboratory biogas plant using cavity enhanced Raman spectroscopy.

Authors:  Anne Sieburg; Sebastian Schneider; Di Yan; Jürgen Popp; Torsten Frosch
Journal:  Analyst       Date:  2018-03-12       Impact factor: 4.616

8.  Fiber array based hyperspectral Raman imaging for chemical selective analysis of malaria-infected red blood cells.

Authors:  Michael Brückner; Katja Becker; Jürgen Popp; Torsten Frosch
Journal:  Anal Chim Acta       Date:  2015-08-29       Impact factor: 6.558

9.  Fiber-Enhanced Raman Gas Spectroscopy for 18O-13C-Labeling Experiments.

Authors:  Andreas Knebl; Robert Domes; Di Yan; Juergen Popp; Susan Trumbore; Torsten Frosch
Journal:  Anal Chem       Date:  2019-05-03       Impact factor: 6.986

Review 10.  Microfluidic Devices for Drug Assays.

Authors:  Clément Regnault; Dharmendra S Dheeman; Axel Hochstetter
Journal:  High Throughput       Date:  2018-06-20
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