Vaults bind directly to microtubules via their caps and not their barrels

被引:22
作者
Eichenmüller, B
Kedersha, N
Solovyeva, E
Everley, P
Lang, J
Himes, RH
Suprenant, KA
机构
[1] Univ Kansas, Dept Mol Biosci, Lawrence, KS 66045 USA
[2] Brigham & Womens Hosp, Div Rheumatol & Immunol, Boston, MA 02115 USA
来源
CELL MOTILITY AND THE CYTOSKELETON | 2003年 / 56卷 / 04期
关键词
ribonucleoprotein particles; multidrug resistance; cytoskeleton; VPARP; MVP; TEP1; RESISTANCE-RELATED PROTEIN; RIBONUCLEOPROTEIN-PARTICLES; DRUG-RESISTANCE; MULTIDRUG-RESISTANCE; ADP-RIBOSYLATION; TERMINAL DOMAIN; UP-REGULATION; IN-VITRO; TUBULIN; ALPHA;
D O I
10.1002/cm.10147
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Vaults are large (13 Mda) ribonucleoprotein particles that are especially abundant in multidrug resistant cancer cells and have been implicated in nucleocytoplasmic drug transport. To understand how these large barrel-shaped complexes are transported through the cytosol, we examined the association of vaults with microtubules both in vitro and in vivo. Within cells, a subpopulation of vaults clearly associates with microtubules, and these vaults remain associated with tubulin dimers/oligomers when microtubules are disassembled by nocodazole treatment. In vitro, a microtubule-pull down assay using highly purified rat vaults and reassembled microtubules reveals that vaults exhibit concentration-dependent binding to microtubules that does not require the carboxyl terminal end of tubulin. Remarkably, negative staining for electron microscopy reveals that vault binding to microtubules is mediated by the vault caps; more than 82% of bound vaults attach to the microtubule lattice with their long axes perpendicular to the long axis of the microtubule. Five to six vault particles were bound per micron of microtubule, with no crosslinking of microtubules observed, suggesting that only one end of the vault can bind microtubules. Taken together, the data support the model of vaults as barrel-shaped containers that transiently interact with microtubules.
引用
收藏
页码:225 / 236
页数:12
相关论文
共 47 条
[1]   THE EFFECTS OF DIMETHYL-SULFOXIDE ON THE KINETICS OF TUBULIN ASSEMBLY [J].
ALGAIER, J ;
HIMES, RH .
BIOCHIMICA ET BIOPHYSICA ACTA, 1988, 954 (03) :235-243
[2]  
Bateman A, 2002, NUCLEIC ACIDS RES, V30, P276, DOI [10.1093/nar/gkr1065, 10.1093/nar/gkh121, 10.1093/nar/gkp985]
[3]   The microtubule-associated protein tau cross-links to two distinct sites on each α and β tubulin monomer via separate domains [J].
Chau, MF ;
Radeke, MJ ;
de Inés, C ;
Barasoain, I ;
Kohlstaedt, LA ;
Feinstein, SC .
BIOCHEMISTRY, 1998, 37 (51) :17692-17703
[4]  
CHUGANI DC, 1993, J CELL SCI, V106, P23
[5]   Characterization of the sea urchin major vault protein: A possible role for vault ribonucleoprotein particles in nucleocytoplasmic transport [J].
Hamill, DR ;
Suprenant, KA .
DEVELOPMENTAL BIOLOGY, 1997, 190 (01) :117-128
[6]   Katanin, a microtubule-severing protein, is a novel AAA ATPase that targets to the centrosome using a WD40-containing subunit [J].
Hartman, JJ ;
Mahr, J ;
McNally, K ;
Okawa, K ;
Iwamatsu, A ;
Thomas, S ;
Cheesman, S ;
Heuser, J ;
Vale, RD ;
McNally, FJ .
CELL, 1998, 93 (02) :277-287
[7]   The major vault protein (MVP100) is contained in cholinergic nerve terminals of electric ray electric organ [J].
Herrmann, C ;
Volknandt, W ;
Wittich, B ;
Kellner, R ;
Zimmermann, H .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (23) :13908-13915
[8]   Recombinant major vault protein is targeted to neuritic tips of PC12 cells [J].
Herrmann, C ;
Golkaramnay, E ;
Inman, E ;
Rome, L ;
Volknandt, W .
JOURNAL OF CELL BIOLOGY, 1999, 144 (06) :1163-1172
[9]   A very early induction of major vault protein accompanied by increased drug resistance in U-937 cells [J].
Hu, Y ;
Stephen, AG ;
Cao, J ;
Tanzer, LR ;
Slapak, CA ;
Harrison, SD ;
Devanarayan, V ;
Dantzig, AH ;
Starling, JJ ;
Rome, LH ;
Moore, RE .
INTERNATIONAL JOURNAL OF CANCER, 2002, 97 (02) :149-156
[10]   Relationship of LRP-human major vault protein to in vitro and clinical resistance to anticancer drugs [J].
Izquierdo, MA ;
Scheffer, GL ;
Flens, MJ ;
Shoemaker, RH ;
Rome, LH ;
Scheper, RJ .
CYTOTECHNOLOGY, 1996, 19 (03) :191-197