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M Go

Publications and source records attributed to M Go.

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Relationship between mutability, polarity and exteriority of amino acid residues in protein evolution.

A systematic study was carried out on mutability of amino acid residues in evolving proteins in relation to their polarity and location within three-dimensional structure of proteins. Exteriority of residue sites is quantitatively defined as accessibility based on their static accessible surface area to solvent water molecule. Residue sites are classified into interior and exterior depending on their accessibility. More frequent substitution on exterior sites is confirmed to be general in eight sets of homologous protein families regardless of their biological functions and of presence or absence of a prosthetic group. Virtually all types of amino acid residues are found to have higher mutabilities on the exterior than in the interior. No correlation between mutability and polarity was observed of amino acid residues in the interior and on the exterior, respectively. Amino acid residues are classified into three depending on their polarity, polar (Arg, Lys, His, Gln, Asn, Asp and Glu), weak polar (Ala, Pro, Gly, Thr and Ser) and nonpolar (Cys, Val, Met, Ile, Leu, Phe, Tyr and Trp). Amino acid replacements during protein evolution are very conservative; 88% and 76% of them in the interior and on the exterior, respectively, are within the same group of the three. Inter-group replacements are such that weak polar residues are replaced more often by nonpolar residues in the interior and more often by polar residues on the exterior.

Amino Acids

Volume and polarity changes accompanied by amino acid substitutions in protein evolution.

We evaluated the volume and polarity changes accompanied by amino acid substitutions along branches of the phylogenetic trees of cytochrome c, myoglobin and hemoglobin alpha and beta chains. In most cases the volume changes accompanied by the substitutions were found to be much larger than the volume of cavities existing in the interior of X-ray-analysed proteins. This implies that the interior of the proteins is very flexible and the necessary space for a larger amino acid residue substitution can be provided by adjusting nearby structures. Also, the volume and polarity changes are not particularly dependent on whether the substituted site is located in the exterior or interior of the proteins. This result supports the concept of the covarions by Fitch and Markowitz, when combined with the known fact that the exterior sites are more variable than the interior ones during protein evolution.

Amino Acids

Helix probability profiles of denatured proteins and their correlation with native structures.

The Zimm-Bragg formulation for the one-dimensional Ising model is applied to denatured proteins in order to compute helix probability profiles with different sigma and s parameters for the various amino acids; the latter are in principle determinable from melting curves for helix-coil transitions in random copolymers of amino acids. Using a tentative assignment of sigma and s values, we found a correlation for the propensity of a residue to be helical in the denatured protein and its occurrence in a helical region in the globular structure of the corresponding native protein. Thus, these incipient helical regions in the denatured chain may serve to nucleate the folding to form the native protein. Short-range interactions appear to determine the tendency for a residue to be helical or not, whereas long-range interactions may serve to carry out the nucleation and refolding processes.

Amino Acids