Differential use of signal peptides and membrane domains is a common occurrence in the protein output of transcriptional units

被引:32
作者
Davis, Melissa J.
Hanson, Kelly A.
Clark, Francis
Fink, J. Lynn
Zhang, Fasheng
Kasukawa, Takeya
Kai, Chikatoshi
Kawai, Jun
Carninci, Piero
Hayashizaki, Yoshihide
Teasdale, Rohan D. [1 ]
机构
[1] Univ Queensland, Inst Mol Biosci, St Lucia, Qld, Australia
[2] Univ Queensland, ARC Ctr Bioinformat, St Lucia, Qld, Australia
[3] Univ Queensland, Adv Computat Modeling Ctr, St Lucia, Qld, Australia
[4] RIKEN, Yokohama Inst, Genome Explorat Res Grp, Genome Network Project Core Grp,Genome Sci Ctr, Yokohama, Kanagawa, Japan
[5] RIKEN, Genome Sci Lab, Discovery Res Inst, Wako, Saitama 35101, Japan
来源
PLOS GENETICS | 2006年 / 2卷 / 04期
关键词
D O I
10.1371/journal.pgen.0020046
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Membrane organization describes the orientation of a protein with respect to the membrane and can be determined by the presence, or absence, and organization within the protein sequence of two features: endoplasmic reticulum signal peptides and alpha-helical transmembrane domains. These features allow protein sequences to be classified into one of five membrane organization categories: soluble intracellular proteins, soluble secreted proteins, type I membrane proteins, type II membrane proteins, and multi- spanning membrane proteins. Generation of protein isoforms with variable membrane organizations can change a protein's subcellular localization or association with the membrane. Application of MemO, a membrane organization annotation pipeline, to the FANTOM3 Isoform Protein Sequence mouse protein set revealed that within the 8,032 transcriptional units ( TUs) with multiple protein isoforms, 573 had variation in their use of signal peptides, 1,527 had variation in their use of transmembrane domains, and 615 generated protein isoforms from distinct membrane organization classes. The mechanisms underlying these transcript variations were analyzed. While TUs were identified encoding all pairwise combinations of membrane organization categories, the most common was conversion of membrane proteins to soluble proteins. Observed within our highconfidence set were 156 TUs predicted to generate both extracellular soluble and membrane proteins, and 217 TUs generating both intracellular soluble and membrane proteins. The differential use of endoplasmic reticulum signal peptides and transmembrane domains is a common occurrence within the variable protein output of TUs. The generation of protein isoforms that are targeted to multiple subcellular locations represents a major functional consequence of transcript variation within the mouse transcriptome.
引用
收藏
页码:554 / 563
页数:10
相关论文
共 57 条
  • [1] Protein ectodomain shedding
    Arribas, J
    Borroto, A
    [J]. CHEMICAL REVIEWS, 2002, 102 (12) : 4627 - 4637
  • [2] ATURALIYA RN, 2006, IN PRESS TRAFFIC
  • [3] GOstat: find statistically overrepresented Gene Ontologies within a group of genes
    Beissbarth, T
    Speed, TP
    [J]. BIOINFORMATICS, 2004, 20 (09) : 1464 - 1465
  • [4] ALTERNATIVE PROMOTER USAGE OF THE FOS-RESPONSIVE GENE FIT-1 GENERATES MESSENGER-RNA ISOFORMS CODING FOR EITHER SECRETED OR MEMBRANE-BOUND PROTEINS RELATED TO THE IL-1 RECEPTOR
    BERGERS, G
    REIKERSTORFER, A
    BRASELMANN, S
    GRANINGER, P
    BUSSLINGER, M
    [J]. EMBO JOURNAL, 1994, 13 (05) : 1176 - 1188
  • [5] Inhibin binding protein in rats: Alternative transcripts and regulation in the pituitary across the estrous cycle
    Bernard, DJ
    Woodruff, TK
    [J]. MOLECULAR ENDOCRINOLOGY, 2001, 15 (04) : 654 - 667
  • [6] Predicting the transmembrane secondary structure of ligand-gated ion channels
    Bertaccini, E
    Trudell, JR
    [J]. PROTEIN ENGINEERING, 2002, 15 (06): : 443 - 453
  • [7] MGD: the Mouse Genome Database
    Blake, JA
    Richardson, JE
    Bult, RJ
    Kadin, JA
    Eppig, JT
    [J]. NUCLEIC ACIDS RESEARCH, 2003, 31 (01) : 193 - 195
  • [8] The transcriptional landscape of the mammalian genome
    Carninci, P
    Kasukawa, T
    Katayama, S
    Gough, J
    Frith, MC
    Maeda, N
    Oyama, R
    Ravasi, T
    Lenhard, B
    Wells, C
    Kodzius, R
    Shimokawa, K
    Bajic, VB
    Brenner, SE
    Batalov, S
    Forrest, ARR
    Zavolan, M
    Davis, MJ
    Wilming, LG
    Aidinis, V
    Allen, JE
    Ambesi-Impiombato, X
    Apweiler, R
    Aturaliya, RN
    Bailey, TL
    Bansal, M
    Baxter, L
    Beisel, KW
    Bersano, T
    Bono, H
    Chalk, AM
    Chiu, KP
    Choudhary, V
    Christoffels, A
    Clutterbuck, DR
    Crowe, ML
    Dalla, E
    Dalrymple, BP
    de Bono, B
    Della Gatta, G
    di Bernardo, D
    Down, T
    Engstrom, P
    Fagiolini, M
    Faulkner, G
    Fletcher, CF
    Fukushima, T
    Furuno, M
    Futaki, S
    Gariboldi, M
    [J]. SCIENCE, 2005, 309 (5740) : 1559 - 1563
  • [9] Categorization and characterization of transcript-confirmed constitutively and alternatively spliced introns and exons from human
    Clark, F
    Thanaraj, TA
    [J]. HUMAN MOLECULAR GENETICS, 2002, 11 (04) : 451 - 464
  • [10] A novel candidate gene for mouse and human preaxial polydactyly with altered expression in limbs of Hemimelic extra-toes mutant mice
    Clark, RM
    Marker, PC
    Kingsley, DM
    [J]. GENOMICS, 2000, 67 (01) : 19 - 27