The zebrafish mutant vps18 as a model for vesicle-traffic related hypopigmentation diseases

被引:43
作者
Maldonado, Ernesto [1 ]
Hernandez, Fabiola
Lozano, Carlos
Castro, Marta E.
Navarro, Rosa E.
机构
[1] Univ Nacl Autonoma Mexico, Inst Fisiol Celular, Dept Mol Genet, Mexico City, DF, Mexico
[2] Univ Nacl Autonoma Mexico, Inst Fisiol Celular, Dept Biol Celular, Mexico City, DF, Mexico
来源
PIGMENT CELL RESEARCH | 2006年 / 19卷 / 04期
关键词
zebrafish; Vps18; mutant; hypopigmentation; lysosome-related organelles; melanosome;
D O I
10.1111/j.1600-0749.2006.00320.x
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Hypopigmentation is a characteristic of several diseases associated with vesicle traffic defects, like the Hermansky-Pudlak, Chediak-Higashi, and Griscelli syndromes. Hypopigmentation is also a characteristic of the zebrafish mutant vps18(hi2499A), which is affected in the gene vps18, a component of the homotypic fusion and protein sorting complex that is involved in tethering during vesicular traffic. Vps18, as part of this complex, participates in the formation of early endosomes, late endosomes, and lysosomes. Here, we show that Vps18 is also involved in the formation of melanosomes. In the zebrafish mutant vps18(hi2499A) the retroviral insertion located at exon 4 of vps18, leads to the formation of two abnormal splicing variants lacking the coding sequence for the clathrin repeat and the RING finger conserved domains. A deficiency of Vps18 in zebrafish larvae results in hepatomegaly and skin hypopigmentation. We also observed a drastic reduction in the number of melanosomes in the eye's retinal pigmented epithelium along with the accumulation of immature melanosomes. A significant reduction in the vps18(hi2499A) larvae visual system capacity was found using the optokinetic response assay. We propose that the insertional mutant vps18(hi2499A) can be used as a model for studying hypopigmentation diseases in which vesicle traffic problems exist.
引用
收藏
页码:315 / 326
页数:12
相关论文
共 59 条
[1]   Dissecting hematopoiesis and disease using the zebrafish [J].
Amatruda, JF ;
Zon, LI .
DEVELOPMENTAL BIOLOGY, 1999, 216 (01) :1-15
[2]  
Amsterdam A, 2004, METHOD CELL BIOL, V77, P3
[3]   Many ribosomal protein genes are cancer genes in zebrafish [J].
Amsterdam, A ;
Sadler, KC ;
Lai, K ;
Farrington, S ;
Bronson, RT ;
Lees, JA ;
Hopkins, N .
PLOS BIOLOGY, 2004, 2 (05) :690-698
[4]   Identification of 315 genes essential for early zebrafish development [J].
Amsterdam, A ;
Nissen, RM ;
Sun, ZX ;
Swindell, EC ;
Farrington, S ;
Hopkins, N .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (35) :12792-12797
[5]   Quantifying the ontogeny of optokinetic and vestibuloocular behaviors in zebrafish, medaka, and goldfish [J].
Beck, JC ;
Gilland, E ;
Tank, DW ;
Baker, R .
JOURNAL OF NEUROPHYSIOLOGY, 2004, 92 (06) :3546-3561
[6]   The mechanisms of vesicle budding and fusion [J].
Bonifacino, JS ;
Glick, BS .
CELL, 2004, 116 (02) :153-166
[7]   A BEHAVIORAL SCREEN FOR ISOLATING ZEBRAFISH MUTANTS WITH VISUAL-SYSTEM DEFECTS [J].
BROCKERHOFF, SE ;
HURLEY, JB ;
JANSSENBIENHOLD, U ;
NEUHAUSS, SCF ;
DRIEVER, W ;
DOWLING, JE .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (23) :10545-10549
[8]   High-throughput selection of retrovirus producer cell lines leads to markedly improved efficiency of germ line-transmissible insertions in zebra fish [J].
Chen, WB ;
Burgess, S ;
Golling, G ;
Amsterdam, A ;
Hopkins, N .
JOURNAL OF VIROLOGY, 2002, 76 (05) :2192-2198
[9]  
Chen WB, 2001, DEVELOPMENT, V128, P2385
[10]   Maternal control of vertebrate development before the midblastula transition: Mutants from the zebrafish I [J].
Dosch, R ;
Wagner, DS ;
Mintzer, KA ;
Runke, G ;
Wiemelt, AP ;
Mullins, MC .
DEVELOPMENTAL CELL, 2004, 6 (06) :771-780