A dynein light chain is essential for the retrograde particle movement of intraflagellar transport (IFT)

被引:332
作者
Pazour, GJ [1 ]
Wilkerson, CG [1 ]
Witman, GB [1 ]
机构
[1] Univ Massachusetts, Med Ctr, Dept Cell Biol, Shrewsbury, MA 01545 USA
关键词
D O I
10.1083/jcb.141.4.979
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Several enzymes, including cytoplasmic and flagellar outer arm dynein, share an M(r)8,000 light chain termed LC8. The function of this chain is unknown, but it is highly conserved between a wide variety of organisms. We have identified deletion alleles of the gene (fla14) encoding this protein in Chlamydomonas reinhardtii. These mutants have short, immotile flagella with deficiencies in radial spokes, in the inner and outer arms, and in the beak-like projections in the B tubule of the outer doublet microtubules. Most dramatically, the space between the doublet microtubules and the flagellar membrane contains an unusually high number of rafts, the particles translocated by intraflagellar transport (IFT) (Kozminski, K.G., P.L. Beech, and J.L. Rosenbaum. 1995. J. Cell Biol. 131:1517-1527). IFT is a rapid bidirectional movement of rafts under the flagellar membrane along axonemal microtubules. Anterograde IFT is dependent on a kinesin whereas the motor for retrograde IFT is unknown. Anterograde IFT is normal in the LC8 mutants but retrograde IFT is absent; this undoubtedly accounts for the accumulation of rafts in the flagellum. This is the first mutation shown to specifically affect retrograde IFT; the fact that LC8 loss affects retrograde IFT strongly suggests that cytoplasmic dynein is the motor that drives this process. Concomitant with the accumulation of rafts, LC8 mutants accumulate proteins that are components of the 15-16S IFT complexes (Cole, D.G., D.R. Deiner, A.L. Himelblau, P.L. Beech, J.C. Fuster, and J.L. Rosenbaum. 1998. J. Cell Biol. 141:993-1008), confirming that these complexes are subunits of the rafts. Polystyrene microbeads are still translocated on the surface of the flagella of LC8 mutants, indicating that the motor for flagellar surface motility is different than the motor for retrograde IFT.
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页码:979 / 992
页数:14
相关论文
共 64 条
[1]   SENSORY CONTROL OF DAUER LARVA FORMATION IN CAENORHABDITIS-ELEGANS [J].
ALBERT, PS ;
BROWN, SJ ;
RIDDLE, DL .
JOURNAL OF COMPARATIVE NEUROLOGY, 1981, 198 (03) :435-451
[2]  
Beech PL, 1996, J CELL SCI, V109, P889
[3]   Dimerization of the highly conserved light chain shared by dynein and myosin V [J].
Benashski, SE ;
Harrison, A ;
PatelKing, RS ;
King, SM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (33) :20929-20935
[4]   GAMETIC DIFFERENTIATION IN CHLAMYDOMONAS-REINHARDTII .2. FLAGELLAR MEMBRANES AND AGGLUTINATION REACTION [J].
BERGMAN, K ;
GOODENOUGH, UW ;
GOODENOUGH, DA ;
JAWITZ, J ;
MARTIN, H .
JOURNAL OF CELL BIOLOGY, 1975, 67 (03) :606-622
[5]  
BLOCH MA, 1995, J CELL SCI, V108, P3541
[6]  
BLOODGOOD RA, 1989, CILIARY FLAGELLAR ME, P91
[7]   BENDING PATTERNS OF CHLAMYDOMONAS FLAGELLA .4. MUTANTS WITH DEFECTS IN INNER AND OUTER DYNEIN ARMS INDICATE DIFFERENCES IN DYNEIN ARM FUNCTION [J].
BROKAW, CJ ;
KAMIYA, R .
CELL MOTILITY AND THE CYTOSKELETON, 1987, 8 (01) :68-75
[8]   Chlamydomonas kinesin-II-dependent intraflagellar transport (IFT):: IFT particles contain proteins required for ciliary assembly in Caenorhabditis elegans sensory neurons [J].
Cole, DG ;
Diener, DR ;
Himelblau, AL ;
Beech, PL ;
Fuster, JC ;
Rosenbaum, JL .
JOURNAL OF CELL BIOLOGY, 1998, 141 (04) :993-1008
[9]  
Collet J, 1998, GENETICS, V148, P187
[10]  
Criswell PS, 1996, J CELL SCI, V109, P1891