DELETIONS IN EPIDERMAL KERATINS LEADING TO ALTERATIONS IN FILAMENT ORGANIZATION INVIVO AND IN INTERMEDIATE FILAMENT ASSEMBLY INVITRO

被引:141
作者
COULOMBE, PA [1 ]
CHAN, YM [1 ]
ALBERS, K [1 ]
FUCHS, E [1 ]
机构
[1] UNIV CHICAGO, HOWARD HUGHES MED INST, DEPT BIOCHEM & MOLEC BIOL, CHICAGO, IL 60637 USA
关键词
D O I
10.1083/jcb.111.6.3049
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
To investigate the sequences important for assembly of keratins into 10-nm filaments, we used a combined approach of (a) transfection of mutant keratin cDNAs into epithelial cells in vivo, and (b) in vitro assembly of mutant and wild-type keratins. Keratin K14 mutants missing the nonhelical carboxy- and amino-terminal domains not only integrated without perturbation into endogenous keratin filament networks in vivo, but they also formed 10-nm filaments with K5 in vitro. Surprisingly, keratin mutants missing the highly conserved L L E G E sequence, common to all intermediate filament proteins and found at the carboxy end of the alpha-helical rod domain, also assembled into filaments with only a somewhat reduced efficiency. Even a carboxy K14 mutant missing approximately 10% of the rod assembled into filaments, although in this case filaments aggregated significantly. Despite the ability of these mutants to form filaments in vitro, they often perturbed keratin filament organization in vivo. In contrast, small truncations in the amino-terminal end of the rod domain more severely disrupted the filament assembly process in vitro as well as in vivo, and in particular restricted elongation. For both carboxy and amino rod deletions, the more extensive the deletion, the more severe the phenotype. Surprisingly, while elongation could be almost quantitatively blocked with large mutations, tetramer formation and higher ordered lateral interactions still occurred. Collectively, our in vitro data (a) provide a molecular basis for the dominance of our mutants in vivo, (b) offer new insights as to why different mutants may generate different phenotypes in vivo, and (c) delineate the limit sequences necessary for K14 to both incorporate properly onto a preexisting keratin filament network in vivo and assemble efficiently into 10-nm keratin filaments in vitro.
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页码:3049 / 3064
页数:16
相关论文
共 55 条
[1]   THE NUCLEAR LAMINA IS A MESHWORK OF INTERMEDIATE-TYPE FILAMENTS [J].
AEBI, U ;
COHN, J ;
BUHLE, L ;
GERACE, L .
NATURE, 1986, 323 (6088) :560-564
[2]   UNIFYING PRINCIPLES IN INTERMEDIATE FILAMENT (IF) STRUCTURE AND ASSEMBLY [J].
AEBI, U ;
HANER, M ;
TRONCOSO, J ;
EICHNER, R ;
ENGEL, A .
PROTOPLASMA, 1988, 145 (2-3) :73-81
[3]   SUBERIMIDATE CROSSLINKING SHOWS THAT A ROD-SHAPED, LOW CYSTINE, HIGH HELIX PROTEIN PREPARED BY LIMITED PROTEOLYSIS OF REDUCED WOOL HAS 4 PROTEIN CHAINS [J].
AHMADI, B ;
SPEAKMAN, PT .
FEBS LETTERS, 1978, 94 (02) :365-367
[4]   THE EXPRESSION OF MUTANT EPIDERMAL KERATIN CDNAS TRANSFECTED IN SIMPLE EPITHELIAL AND SQUAMOUS-CELL CARCINOMA LINES [J].
ALBERS, K ;
FUCHS, E .
JOURNAL OF CELL BIOLOGY, 1987, 105 (02) :791-806
[5]   EXPRESSION OF MUTANT KERATIN CDNAS IN EPITHELIAL-CELLS REVEALS POSSIBLE MECHANISMS FOR INITIATION AND ASSEMBLY OF INTERMEDIATE FILAMENTS [J].
ALBERS, K ;
FUCHS, E .
JOURNAL OF CELL BIOLOGY, 1989, 108 (04) :1477-1493
[6]   AMINO-ACID-SEQUENCE AND GENE ORGANIZATION OF CYTOKERATIN NO-19, AN EXCEPTIONAL TAIL-LESS INTERMEDIATE FILAMENT PROTEIN [J].
BADER, BL ;
MAGIN, TM ;
HATZFELD, M ;
FRANKE, WW .
EMBO JOURNAL, 1986, 5 (08) :1865-1875
[7]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[8]  
Chou P Y, 1978, Adv Enzymol Relat Areas Mol Biol, V47, P45
[9]   PHOSPHORYLATION AND DISASSEMBLY OF INTERMEDIATE FILAMENTS IN MITOTIC CELLS [J].
CHOU, YH ;
ROSEVEAR, E ;
GOLDMAN, RD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1989, 86 (06) :1885-1889
[10]   ELUCIDATING THE EARLY STAGES OF KERATIN FILAMENT ASSEMBLY [J].
COULOMBE, PA ;
FUCHS, E .
JOURNAL OF CELL BIOLOGY, 1990, 111 (01) :153-169