TY - JOUR
T1 - Protamine Binding Site on DNA
T2 - Molecular Dynamics Simulations and Free Energy Calculations with Full Atomistic Details
AU - Mukherjee, Arnab
AU - Saurabh, Suman
AU - Olive, Enrick
AU - Jang, Yun Hee
AU - Lansac, Yves
N1 - Publisher Copyright:
© 2021 American Chemical Society.
PY - 2021/4/1
Y1 - 2021/4/1
N2 - Protamine, an arginine-rich basic protein, compacts DNAs in sperm nuclei to densities higher than those in somatic cells. The mechanism of this compaction in sperm cells is even less clear than in somatic cells. Even the preferred binding site, if any, of protamine on DNA is not clearly identified. In this work, we carry out fully atomistic (or all-atom) molecular dynamics simulations to estimate the relative stabilities of protamine binding sites on DNA. Free energy calculated with umbrella sampling on a short arginine stretch bound to the major and minor grooves suggests that a short arginine stretch would prefer the DNA major groove as its binding site. Complementary umbrella sampling simulations where an arginine stretch or a whole protamine is transferred from the major to the minor groove also lead to the same conclusion. We find that the protamine located in the major groove better utilizes the DNA backbone as the binding site and represents the best compromise between enthalpy and entropy gain.
AB - Protamine, an arginine-rich basic protein, compacts DNAs in sperm nuclei to densities higher than those in somatic cells. The mechanism of this compaction in sperm cells is even less clear than in somatic cells. Even the preferred binding site, if any, of protamine on DNA is not clearly identified. In this work, we carry out fully atomistic (or all-atom) molecular dynamics simulations to estimate the relative stabilities of protamine binding sites on DNA. Free energy calculated with umbrella sampling on a short arginine stretch bound to the major and minor grooves suggests that a short arginine stretch would prefer the DNA major groove as its binding site. Complementary umbrella sampling simulations where an arginine stretch or a whole protamine is transferred from the major to the minor groove also lead to the same conclusion. We find that the protamine located in the major groove better utilizes the DNA backbone as the binding site and represents the best compromise between enthalpy and entropy gain.
UR - https://www.scopus.com/pages/publications/85103682281
U2 - 10.1021/acs.jpcb.0c09166
DO - 10.1021/acs.jpcb.0c09166
M3 - Article
C2 - 33754735
AN - SCOPUS:85103682281
SN - 1520-6106
VL - 125
SP - 3032
EP - 3044
JO - Journal of Physical Chemistry B
JF - Journal of Physical Chemistry B
IS - 12
ER -