Crystallization of L‐Cysteine in Heavy Water Induces Intrinsic Fluorescence

D Debarshi Banerjee (International Centre for Theoretical Physics (ICTP) 1 , Strada Costiera 11, 34151 Trieste,) S Sonika Chibh (The Shmunis School of Biomedicine and Cancer Research The George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel) O Om Shanker Tiwari G Gonzalo Díaz Mirón (Condensed Matter and Statistical Physics Section) M Marta Monti (Condensed Matter and Statistical Physics Section) H Hadar R. Yakir (Institute of Chemistry The Hebrew University of Jerusalem Edmond J. Safra Campus Jerusalem 9190401 Israel) S Shweta Pawar (Faculty of Engineering The Institute of Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel) D Dror Fixler (Faculty of Engineering The Institute of Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel) L Linda J. W. Shimon (Department of Chemical Research Support, Weizmann Institute of Science, Herzl Street 234, Rehovot 7610001, Israel) E Ehud Gazit (The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences) A Ali Hassanali (Condensed Matter and Statistical Physics Section)

Abstract

Abstract Developing noninvasive techniques that can probe how solvents modulate the nucleation pathways of bioorganic molecules in solution remains an active and open area of research. Herein, we investigate the crystallization of the amino acid L‐Cysteine and show that both the structure of the crystal and its intrinsic fluorescence can be drastically altered by the solvent. Crystals formed in heavy water exhibit markedly different intermolecular packing as well as strikingly different monomer conformations compared to those in light water. Remarkably, these differences in the supramolecular packing result in significantly elevated intrinsic fluorescence in the crystal that is formed in heavy water. Using a combination of experimental techniques and advanced electronic structure approaches, we elucidate the molecular interactions within the crystals that govern both the electronic origins and the intensity of their emission. These findings demonstrate how tuning the solvent by changing its isotope leads to the emergence of design principles for new intrinsic fluorophores that could serve as novel sensing probes for biomedical applications.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

D

Debarshi Banerjee

International Centre for Theoretical Physics (ICTP) 1 , Strada Costiera 11, 34151 Trieste,

S

Sonika Chibh

The Shmunis School of Biomedicine and Cancer Research The George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel

O

Om Shanker Tiwari

G

Gonzalo Díaz Mirón

Condensed Matter and Statistical Physics Section

M

Marta Monti

Condensed Matter and Statistical Physics Section

H

Hadar R. Yakir

Institute of Chemistry The Hebrew University of Jerusalem Edmond J. Safra Campus Jerusalem 9190401 Israel

S

Shweta Pawar

Faculty of Engineering The Institute of Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel

D

Dror Fixler

Faculty of Engineering The Institute of Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel

L

Linda J. W. Shimon

Department of Chemical Research Support, Weizmann Institute of Science, Herzl Street 234, Rehovot 7610001, Israel

E

Ehud Gazit

The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences

A

Ali Hassanali

Condensed Matter and Statistical Physics Section