Alternative splicing of the human Rab6A gene generates two close but functionally different isoforms

被引:97
作者
Echard, A
Opdam, FJM
de Leeuw, HJPC
Jollivet, F
Savelkoul, P
Hendriks, W
Voorberg, J
Goud, B
Fransen, JAM [1 ]
机构
[1] Univ Nijmegen, Inst Cellular Signaling, Dept Cell Biol, NL-6500 HB Nijmegen, Netherlands
[2] Inst Curie, Unite Mixte Rech 144, CNRS, F-75248 Paris 05, France
[3] Netherlands Red Cross, Blood Transfus Serv, Cent Lab, Dept Blood Coagulat, NL-1066 CX Amsterdam, Netherlands
关键词
D O I
10.1091/mbc.11.11.3819
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Analysis of the human Rab6A gene structure reveals the presence of a duplicated exon, and incorporation of either of the two exons by alternative splicing is shown to generate two Rab6 isoforms named Rab6A and Rab6A', which differ in only three amino acid residues located in regions flanking the PM3 GTP-binding domain of the proteins. These isoforms are ubiquitously expressed at similar levels, exhibit the same GTP-binding properties, and are localized to the Golgi apparatus. Overexpression of the GTP-bound mutants of Rab6A (Rab6A Q72L) or Rab6A' (Rab6A' Q72L) inhibits secretion in HeLa cells, but overexpression of Rab6A' Q72L does not induce the redistribution of Golgi proteins into the endoplasmic reticulum. This suggests that Rab6A' is not able to stimulate Golgi-to-endoplasmic reticulum retrograde transport, as described previously for Rab6A. In addition, Rab6A' interacts with two Rab6A partners, GAPCenA and "clone 1," but not: with the kinesin-like protein Rabkinesin-6, a Golgi-associated Rab6A effector. Interestingly, we found that the functional differences between Rab6A and Rab6A' are contingent on one amino acid (T or A at position 87). Therefore, limited amino acid substitutions within a Rab protein introduced by alternative splicing could represent a mechanism to generate functionally different isoforms that interact with distinct sets of effectors.
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页码:3819 / 3833
页数:15
相关论文
共 55 条
[51]   Rab6 coordinates a novel Golgi to ER retrograde transport pathway in live cells [J].
White, J ;
Johannes, L ;
Mallard, F ;
Girod, A ;
Grill, S ;
Reinsch, S ;
Keller, P ;
Tzschaschel, B ;
Echard, A ;
Goud, B ;
Stelzer, EHK .
JOURNAL OF CELL BIOLOGY, 1999, 147 (04) :743-759
[52]   NUCLEOTIDE-SEQUENCE OF THE MOUSE YPTL GENE ENCODING A RAS-RELATED GTP-BINDING PROTEIN [J].
WICHMANN, H ;
DISELA, C ;
HAUBRUCK, H ;
GALLWITZ, D .
NUCLEIC ACIDS RESEARCH, 1989, 17 (16) :6737-6738
[53]   COMPARISON OF THE BIOCHEMICAL-PROPERTIES OF UNPROCESSED AND PROCESSED FORMS OF THE SMALL GTP-BINDING PROTEIN, RAB6P [J].
YANG, C ;
MOLLAT, P ;
CHAFFOTTE, A ;
MCCAFFREY, M ;
CABANIE, L ;
GOUD, B .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1993, 217 (03) :1027-1037
[54]   Rab17 regulates membrane trafficking through apical recycling endosomes in polarized epithelial cells [J].
Zacchi, P ;
Stenmark, H ;
Parton, RG ;
Orioli, D ;
Lim, F ;
Giner, A ;
Mellman, I ;
Zerial, M ;
Murphy, C .
JOURNAL OF CELL BIOLOGY, 1998, 140 (05) :1039-1053
[55]   Structure and expression of the mouse S10 gene [J].
Zheng, JY ;
Koda, T ;
Arimura, Y ;
Kishi, M ;
Kakinuma, M .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE STRUCTURE AND EXPRESSION, 1997, 1351 (1-2) :47-50