Photoelectron Circular Dichroism of Aqueous-Phase Alanine

Fuente: arXiv
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Main Authors: Stemer, Dominik, Thürmer, Stephan, Trinter, Florian, Hergenhahn, Uwe, Pugini, Michele, Credidio, Bruno, Malerz, Sebastian, Wilkinson, Iain, Nahon, Laurent, Meijer, Gerard, Powis, Ivan, Winter, Bernd
Format: Preprint
Published: 2024
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author Stemer, Dominik
Thürmer, Stephan
Trinter, Florian
Hergenhahn, Uwe
Pugini, Michele
Credidio, Bruno
Malerz, Sebastian
Wilkinson, Iain
Nahon, Laurent
Meijer, Gerard
Powis, Ivan
Winter, Bernd
author_facet Stemer, Dominik
Thürmer, Stephan
Trinter, Florian
Hergenhahn, Uwe
Pugini, Michele
Credidio, Bruno
Malerz, Sebastian
Wilkinson, Iain
Nahon, Laurent
Meijer, Gerard
Powis, Ivan
Winter, Bernd
contents Amino acids and other small chiral molecules play key roles in biochemistry. However, in order to understand how these molecules behave in vivo, it is necessary to study them under aqueous-phase conditions. Photoelectron circular dichroism (PECD) has emerged as an extremely sensitive probe of chiral molecules, but its suitability for application to aqueous solutions had not yet been proven. Here, we report on our PECD measurements of aqueous-phase alanine, the simplest chiral amino acid. We demonstrate that the PECD response of alanine in water is different for each of alanine's carbon atoms, and is sensitive to molecular structure changes (protonation states) related to the solution pH. For C~1s photoionization of alanine's carboxylic acid group, we report PECD of comparable magnitude to that observed in valence-band photoelectron spectroscopy of gas-phase alanine. We identify key differences between PECD experiments from liquids and gases, discuss how PECD may provide information regarding solution-specific phenomena -- for example the nature and chirality of the solvation shell surrounding chiral molecules in water -- and highlight liquid-phase PECD as a powerful new tool for the study of aqueous-phase chiral molecules of biological relevance.
format Preprint
id arxiv_https___arxiv_org_abs_2412_08729
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Photoelectron Circular Dichroism of Aqueous-Phase Alanine
Stemer, Dominik
Thürmer, Stephan
Trinter, Florian
Hergenhahn, Uwe
Pugini, Michele
Credidio, Bruno
Malerz, Sebastian
Wilkinson, Iain
Nahon, Laurent
Meijer, Gerard
Powis, Ivan
Winter, Bernd
Chemical Physics
Amino acids and other small chiral molecules play key roles in biochemistry. However, in order to understand how these molecules behave in vivo, it is necessary to study them under aqueous-phase conditions. Photoelectron circular dichroism (PECD) has emerged as an extremely sensitive probe of chiral molecules, but its suitability for application to aqueous solutions had not yet been proven. Here, we report on our PECD measurements of aqueous-phase alanine, the simplest chiral amino acid. We demonstrate that the PECD response of alanine in water is different for each of alanine's carbon atoms, and is sensitive to molecular structure changes (protonation states) related to the solution pH. For C~1s photoionization of alanine's carboxylic acid group, we report PECD of comparable magnitude to that observed in valence-band photoelectron spectroscopy of gas-phase alanine. We identify key differences between PECD experiments from liquids and gases, discuss how PECD may provide information regarding solution-specific phenomena -- for example the nature and chirality of the solvation shell surrounding chiral molecules in water -- and highlight liquid-phase PECD as a powerful new tool for the study of aqueous-phase chiral molecules of biological relevance.
title Photoelectron Circular Dichroism of Aqueous-Phase Alanine
topic Chemical Physics
url https://arxiv.org/abs/2412.08729