Mutant rab8 impairs docking and fusion of rhodopsin-bearing post-Golgi membranes and causes cell death of transgenic Xenopus rods

被引:190
作者
Moritz, OL [1 ]
Tam, BM
Hurd, LL
Peränen, J
Deretic, D
Papermaster, DS
机构
[1] Univ Connecticut, Ctr Hlth, Dept Neurosci, Farmington, CT 06032 USA
[2] Univ Helsinki, Inst Biotechnol, FIN-00014 Helsinki, Finland
[3] Univ Michigan, Dept Ophthalmol & Visual Sci, Ann Arbor, MI 48105 USA
[4] Univ Michigan, Dept Dev & Cell Biol, Ann Arbor, MI 48105 USA
关键词
D O I
10.1091/mbc.12.8.2341
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Rab8 is a GTPase involved in membrane trafficking. In photoreceptor cells, rab8 is proposed to participate in the late stages of delivery of rhodopsin-containing post-Golgi membranes to the plasma membrane near the base of the connecting cilium. To test the function of rab8 in vivo, we generated transgenic Xenopus laevis expressing wild-type, constitutively active (Q67L), and dominant negative (T22N) forms of canine rab8 in their rod photoreceptors as green fluorescent protein (GFP) fusion proteins. Wild-type and constitutively active GFP-rab8 proteins were primarily associated with Golgi and post-Golgi membranes, whereas the dominant negative protein was primarily cytoplasmic. Expression of wild-type GFP-rab8 had minimal effects on cell survival and intracellular structures. In contrast, GFP-rab8T22N caused rapid retinal degeneration. In surviving peripheral rods, tubulo-vesicular structures accumulated at the base of the connecting cilium. Expression of GFP-rab8Q67L induced a slower retinal degeneration in some tadpoles. Transgene effects were transmitted to F1 offspring. Expression of the GFP-rab8 fusion proteins appears to decrease the levels of endogenous rab8 protein. Our results demonstrate a role for rab8 in docking of post-Golgi membranes in rods, and constitute the first report of a transgenic X. laevis model of retinal degenerative disease.
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页码:2341 / 2351
页数:11
相关论文
共 52 条
[1]  
Adler R., 1986, RETINA MODEL CELL BI, P297, DOI [10.1016/B978-0-12-044275-1.50014-4, DOI 10.1016/B978-0-12-044275-1.50014-4]
[2]   Characterization of the Xenopus rhodopsin gene [J].
Batni, S ;
Scalzetti, L ;
Moody, SA ;
Knox, BE .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (06) :3179-3186
[3]  
BERSON EL, 1993, INVEST OPHTH VIS SCI, V34, P1659
[4]   TURNOVER OF ROD PHOTORECEPTOR OUTER SEGMENTS .2. MEMBRANE ADDITION AND LOSS IN RELATIONSHIP TO LIGHT [J].
BESHARSE, JC ;
HOLLYFIELD, JG ;
RAYBORN, ME .
JOURNAL OF CELL BIOLOGY, 1977, 75 (02) :507-527
[5]   A genomic perspective on membrane compartment organization [J].
Bock, JB ;
Matern, HT ;
Peden, AA ;
Scheller, RH .
NATURE, 2001, 409 (6822) :839-841
[6]  
DERETIC D, 1993, J CELL SCI, V106, P803
[7]   POLARIZED SORTING OF RHODOPSIN ON POST-GOLGI MEMBRANES IN FROG RETINAL PHOTORECEPTOR CELLS [J].
DERETIC, D ;
PAPERMASTER, DS .
JOURNAL OF CELL BIOLOGY, 1991, 113 (06) :1281-1293
[8]  
DERETIC D, 1995, J CELL SCI, V108, P215
[9]   Post-Golgi trafficking of rhodopsin in retinal photoreceptors [J].
Deretic, D .
EYE, 1998, 12 (3) :526-530
[10]   Regulation of sorting and post-Golgi trafficking of rhodopsin by its C-terminal sequence QVS(A)PA [J].
Deretic, D ;
Schmerl, S ;
Hargrave, PA ;
Arendt, A ;
McDowell, JH .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (18) :10620-10625