Coupling between electrons’ spin and proton transfer in chiral biological crystals

N Naama Goren (Department of Applied Physics, Center for nanoscience and Nanotechnology, Hebrew University of Jerusalem) P Perumal Pandurangan (Department of Materials Engineering, Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev) Y Yael Eisenberg-Domovich (The Wolfson Centre for Applied Structural Biology, Department of Biological Chemistry, Alexander Silverman Institute of Life Sciences, The Edmond J. Safra Campus, The Hebrew University of Jerusalem) S Shira Yochelis (Department of Applied Physics, Center for nanoscience and Nanotechnology, Hebrew University of Jerusalem) N Nir Keren J Jean-Philippe Ansermet (Institute of Physics, Ecole Polytechnique Fédérale de Lausanne) R Ron Naaman (Department of Chemical and Biological Physics, Weizmann Institute) O Oded Livnah (The Wolfson Centre for Applied Structural Biology, Department of Biological Chemistry, Alexander Silverman Institute of Life Sciences, The Edmond J. Safra Campus, The Hebrew University of Jerusalem) N Nurit Ashkenasy (Department of Materials Engineering, Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev) Y Yossi Paltiel (Department of Applied Physics)

Abstract

Proton transport plays a fundamental role in many biological and chemical systems. In life, proton transport is crucial for biochemical and physiological functions. It is usually accepted that the main mechanism of proton transfer is a result of hopping between neighboring water molecules and amino acid side chains. It was recently suggested that the proton transfer can be simultaneously coupled with electron transfer. As life is homochiral, proton transfer in biology is occurring in a chiral environment. In this environment, the chiral-induced spin selectivity effect relating to electron transfer and chirality is expected to occur. The present work establishes that the proton transfer is coupled to a specific electron spin polarization in lysozyme crystals, associating proton transfer to electron movement and polarization. To preserve total angular momentum, this motion may be coupled to chiral phonons that propagate in the crystal. Our work shows that the interaction of the electrons’ spin and phonons is very significant in proton transfer through lysosome crystals. Injecting the opposite electron spin into the lysosome crystal results in a significant change in proton transfer impedance. This study presents the support for the proton-coupled electron transfer mechanism and indicates the importance of spin polarization in the process.

Article Details

Volume / Issue Vol. 122, Issue 19
Published May 13, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

N

Naama Goren

Department of Applied Physics, Center for nanoscience and Nanotechnology, Hebrew University of Jerusalem

P

Perumal Pandurangan

Department of Materials Engineering, Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev

Y

Yael Eisenberg-Domovich

The Wolfson Centre for Applied Structural Biology, Department of Biological Chemistry, Alexander Silverman Institute of Life Sciences, The Edmond J. Safra Campus, The Hebrew University of Jerusalem

S

Shira Yochelis

Department of Applied Physics, Center for nanoscience and Nanotechnology, Hebrew University of Jerusalem

N

Nir Keren

J

Jean-Philippe Ansermet

Institute of Physics, Ecole Polytechnique Fédérale de Lausanne

R

Ron Naaman

Department of Chemical and Biological Physics, Weizmann Institute

O

Oded Livnah

The Wolfson Centre for Applied Structural Biology, Department of Biological Chemistry, Alexander Silverman Institute of Life Sciences, The Edmond J. Safra Campus, The Hebrew University of Jerusalem

N

Nurit Ashkenasy

Department of Materials Engineering, Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev

Y

Yossi Paltiel

Department of Applied Physics