TY - JOUR
T1 - Ratio of membrane proteins in total proteomes of prokaryota
AU - Sawada, Ryusuke
AU - Ke, Runcong
AU - Tsuji, Toshiyuki
AU - Sonoyama, Masashi
AU - Mitaku, Shigeki
PY - 2007
Y1 - 2007
N2 - The numbers of membrane proteins in the current genomes of various organisms provide an important clue about how the protein world has evolved from the aspect of membrane proteins. Numbers of membrane proteins were estimated by analyzing the total proteomes of 248 prokaryota, using the SOSUI system for membrane proteins (Hirokawa et al., Bioinformatics, 1998) and SOSUI-signal for signal peptides (Gomi et al., CBIJ, 2004). The results showed that the ratio of membrane proteins to total proteins in these proteomes was almost constant: 0.228. When amino acid sequences were randomized, setting the probability of occurrence of all amino acids to 5%, the membrane protein/total protein ratio decreased to about 0.085. However, when the same simulation was carried out, but using the amino acid composition of the above proteomes, this ratio was 0.218, which is nearly the same as that of the real proteomic systems. This fact is consistent with the birth, death and innovation (BDI) model for membrane proteins, in which transmembrane segments emerge and disappear in accordance with random mutation events.
AB - The numbers of membrane proteins in the current genomes of various organisms provide an important clue about how the protein world has evolved from the aspect of membrane proteins. Numbers of membrane proteins were estimated by analyzing the total proteomes of 248 prokaryota, using the SOSUI system for membrane proteins (Hirokawa et al., Bioinformatics, 1998) and SOSUI-signal for signal peptides (Gomi et al., CBIJ, 2004). The results showed that the ratio of membrane proteins to total proteins in these proteomes was almost constant: 0.228. When amino acid sequences were randomized, setting the probability of occurrence of all amino acids to 5%, the membrane protein/total protein ratio decreased to about 0.085. However, when the same simulation was carried out, but using the amino acid composition of the above proteomes, this ratio was 0.218, which is nearly the same as that of the real proteomic systems. This fact is consistent with the birth, death and innovation (BDI) model for membrane proteins, in which transmembrane segments emerge and disappear in accordance with random mutation events.
KW - Comparative proteomics
KW - Large-scale genome comparison
KW - Membrane protein prediction
KW - Protein world
KW - Sequence simulation
UR - https://www.scopus.com/pages/publications/34548746999
UR - https://www.scopus.com/pages/publications/34548746999#tab=citedBy
U2 - 10.2142/biophysics.3.37
DO - 10.2142/biophysics.3.37
M3 - Article
AN - SCOPUS:34548746999
SN - 1349-2942
VL - 3
SP - 37
EP - 45
JO - Biophysics
JF - Biophysics
ER -