AT vs GC binding of protamine-template: A microscopic understanding through molecular dynamics and binding free energies

S Sandip Mandal K Khadka B. Chhetri Y Yun Hee Jang (Department of Energy Science and Engineering, DGIST 3 , Daegu 42988,) Y Yves Lansac (GREMAN, CNRS UMR 7347, Université de Tours 4 , 37200 Tours,) P Prabal K. Maiti (Centre for Condensed Matter Theory)

Abstract

Protamine, an arginine-rich protein, compacts DNA more tightly than histones in somatic cells, yet its sequence-specific binding remains unclear. Using all-atom MD simulations with an arginine-rich short cationic peptide that mimics the protamine characteristics, we discovered distinct sequence preferences: the peptide binds preferentially to GC-rich sequences in the major groove and AT-rich sequences in the minor groove. Our structural analysis reveals that GC-rich binding induces significant DNA bending, narrowing the major groove and enhancing peptide interactions. In contrast, AT-rich minor grooves are more extended and electronegative, allowing better stereochemical fitting with planar and aromatic guanidinium side groups of arginine. However, thymine’s methyl group hinders major groove binding, favoring guanine. Thermodynamic free energy calculations, using molecular mechanics based generalized Born surface area and umbrella sampling, confirm stronger peptide affinity for AT-rich minor grooves and GC-rich major grooves. Overall, these findings will enhance our understanding of sequence-specific DNA condensation and compaction in sperm cells.

Article Details

Volume / Issue Vol. 163, Issue 2
Published July 14, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (5)

S

Sandip Mandal

K

Khadka B. Chhetri

Y

Yun Hee Jang

Department of Energy Science and Engineering, DGIST 3 , Daegu 42988,

Y

Yves Lansac

GREMAN, CNRS UMR 7347, Université de Tours 4 , 37200 Tours,

P

Prabal K. Maiti

Centre for Condensed Matter Theory