TY - JOUR
T1 - Effects of side-chain packing on the formation of secondary structures in protein folding
AU - Yasuda, Satoshi
AU - Yoshidome, Takashi
AU - Oshima, Hiraku
AU - Kodama, Ryota
AU - Harano, Yuichi
AU - Kinoshita, Masahiro
N1 - Funding Information:
The computer program for the morphometric approach was developed with Roland Roth. We thank Koji Oda and Yuji Sugita for their help in the local minimization of the energy function and in the usage of the DSSP program, respectively. This work was supported by Grants-in-Aid for Scientific Research on Innovative Areas (Grant No. 20118004) from the Ministry of Education, Culture, Sports, Science and Technology of Japan, by the Grand Challenges in Next-Generation Integrated Nanoscience, MEXT, Japan, and by Kyoto University Pioneering Research Unit for Next Generation.
PY - 2010
Y1 - 2010
N2 - We have recently shown that protein folding is driven by the water-entropy gain. When the α -helix or Β -sheet is formed, the excluded volumes generated by the backbone and side chains overlap, leading to an increase in the total volume available to the translational displacement of water molecules. Primarily by this effect, the water entropy becomes higher. At the same time, the dehydration penalty (i.e., the break of hydrogen bonds with water molecules) is compensated by the formation of intramolecular hydrogen bonds. Hence, these secondary structures are very advantageous units, which are to be formed as much as possible in protein folding. The packing of side chains, which leads to a large increase in the water entropy, is also crucially important. Here we investigate the roles of the side-chain packing in the second structural preference in protein folding. For some proteins we calculate the hydration entropies of a number of structures including the native structure with or without side chains. A hybrid of the angle-dependent integral equation theory combined with the multipolar water model and the morphometric approach is employed in the calculation. Our major findings are as follows. For the structures without side chains, there is an apparent tendency that the water entropy becomes higher as the α -helix or Β -sheet content increases. For the structures with side chains, however, a higher content of α -helices or Β -sheets does not necessarily lead to larger entropy of water due to the effect of the side-chain packing. The thorough, overall packing of side chains, which gives little space in the interior, is unique to the native structure. To accomplish such specific packing, the α -helix and Β -sheet contents are prudently adjusted in protein folding.
AB - We have recently shown that protein folding is driven by the water-entropy gain. When the α -helix or Β -sheet is formed, the excluded volumes generated by the backbone and side chains overlap, leading to an increase in the total volume available to the translational displacement of water molecules. Primarily by this effect, the water entropy becomes higher. At the same time, the dehydration penalty (i.e., the break of hydrogen bonds with water molecules) is compensated by the formation of intramolecular hydrogen bonds. Hence, these secondary structures are very advantageous units, which are to be formed as much as possible in protein folding. The packing of side chains, which leads to a large increase in the water entropy, is also crucially important. Here we investigate the roles of the side-chain packing in the second structural preference in protein folding. For some proteins we calculate the hydration entropies of a number of structures including the native structure with or without side chains. A hybrid of the angle-dependent integral equation theory combined with the multipolar water model and the morphometric approach is employed in the calculation. Our major findings are as follows. For the structures without side chains, there is an apparent tendency that the water entropy becomes higher as the α -helix or Β -sheet content increases. For the structures with side chains, however, a higher content of α -helices or Β -sheets does not necessarily lead to larger entropy of water due to the effect of the side-chain packing. The thorough, overall packing of side chains, which gives little space in the interior, is unique to the native structure. To accomplish such specific packing, the α -helix and Β -sheet contents are prudently adjusted in protein folding.
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U2 - 10.1063/1.3319509
DO - 10.1063/1.3319509
M3 - Article
C2 - 20151761
AN - SCOPUS:76749168152
SN - 0021-9606
VL - 132
JO - Journal of Chemical Physics
JF - Journal of Chemical Physics
IS - 6
M1 - 065105
ER -