The relationship of bovine intermediate filament proteins A comparative analysis of glial fibrillary acidic protein, desmin and the neurofilament 70 kDa protein

Author(s):  
E.Eileen Gardner ◽  
David C. Ruege ◽  
Doris Dahl
1994 ◽  
Vol 107 (8) ◽  
pp. 2299-2311 ◽  
Author(s):  
W.J. Chen ◽  
R.K. Liem

All intermediate filament proteins consist of an alpha-helical rod domain flanked by non-helical N-terminal head and C-terminal tail domains. The roles of the non-helical domains of various intermediate filament proteins in the assembly and co-assembly of higher-order filamentous structures have been studied by many groups but with quite contradictory results. Type III intermediate filaments are unique in that they can form homopolymers both in vitro and in vivo. The expression and assembly characteristics of carboxy- and amino-terminal deletion mutants of glial fibrillary acidic protein (GFAP), an astrocyte-specific type III intermediate filament protein, were examined by transient transfections of either vimentin-positive or vimentin-negative variants of human adrenocarcinoma-derived SW13 cell lines. Whereas complete deletion of the C-terminal tail domain of GFAP results in the formation of polymorphic aggregates, both intranuclear and cytoplasmic in self-assembly experiments, efficient co-assembly of these tail-less GFAP mutants with vimentin can be achieved as long as the KLLEGEE sequence at the C-terminal end of the rod domain is preserved. Up to one-fifth of the C-terminal end of the tail domain can be deleted without affecting the capability of GFAP to self-assemble. The highly conserved RDG-containing motif in the tail domain may be important for self-assembly but is not sufficient. The entire head domain seems to be required for self-assembly. All N-terminal deletion mutants of GFAP share the same phenotype of diffuse cytoplasmic staining when expressed in vimentin-negative SW13 cells. Although co-assembly with vimentin can still be achieved with completely head-less GFAP, preservation of some of the head domain greatly enhanced the efficiency. Our results form the basis for further, more detailed mapping of the essential regions in filament assembly of GFAP and other type III IFs.


1989 ◽  
Vol 93 (1) ◽  
pp. 71-83
Author(s):  
R.A. Quinlan ◽  
R.D. Moir ◽  
M. Stewart

We have expressed in Escherichia coli a 1258 bp cDNA fragment corresponding to 97% of mouse glial fibrillary acidic protein (GFAP), the principal intermediate filament protein of astrocytes. High levels of expression were obtained, as a fusion protein with 32 residues of the bacteriophage lambda cII protein, using the pLcII expression vector system of K. Nagai and H.-C. Thogersen. Although removal of the cII protein fragment by proteolysis using factor X proved difficult, a protein corresponding to most of the cDNA fragment was obtained by cleaving at the endogenous thrombin site near the middle of the N-terminal non-helical domain of GFAP. A shorter 1047 bp fragment, in which the C-terminal non-helical domain of GFAP was deleted, was also produced using oligonucleotide-directed site-specific mutagenesis of the original cDNA clone. After proteolysis with thrombin, this material gave a fragment that corresponded to the alpha-helical coiled-coil rod region of the GFAP molecule, together with a portion of the non-helical N-terminal domain. The fragments produced were characterized both biochemically and ultrastructurally, and appeared to retain the conformation of native GFAP. Crosslinking showed that all fragments formed molecules containing two chains (‘dimers’) that associated to form four-chain molecular dimers (‘tetramers’) analogous to those formed by intact intermediate filament proteins. Shadowed preparations showed the presence of rod-like particles that closely resembled those observed for other intermediate filament proteins and proteolytically prepared rod domains. Remarkably, the fusion protein produced from the entire 1258 bp cDNA fragment and the cII peptide was able to form filaments that closely resembled those produced by native GFAP. However, fragments in which either the cII peptide or the C-terminal non-helical domain were removed, or in which both were removed, failed to form filaments under standard assembly conditions. Although preliminary in nature, these results suggest that both N- and C-terminal non-helical domains may have a role in intermediate filament formation. Moreover, the fragment corresponding approximately to the GFAP rod formed paracrystals similar to those observed with other coiled-coil proteins. The molecules in these paracrystals were arranged antiparallel with the two molecules in the unit cell, which may correspond to the four-chain molecular dimer (tetramer), overlapping by approximately two-thirds of their length.


2015 ◽  
Vol 29 (12) ◽  
pp. 4815-4828 ◽  
Author(s):  
Kirsten A. Wunderlich ◽  
Naoyuki Tanimoto ◽  
Antje Grosche ◽  
Eberhart Zrenner ◽  
Milos Pekny ◽  
...  

FEBS Letters ◽  
1995 ◽  
Vol 358 (2) ◽  
pp. 185-188 ◽  
Author(s):  
Martin Kooijman ◽  
Herbert van Amerongen ◽  
Peter Traub ◽  
Rienk van Grondelle ◽  
Michael Bloemendal

Author(s):  
V. Jagadha ◽  
W.C. Halliday ◽  
L.E. Becker

ABSTRACT:Fourteen pure oligodendrogliomas were studied by light- and electronmicroscopy and immunohistochemistry to examine glial fibrillary acidic protein (GFAP) positivity in the tumors. To compare the immunohistochemical staining patterns of neoplastic oligodendroglia and immature oligodendroglia, myelination glia in the white matter of eight normal brains from children under 6 months of age were studied. The tumors possessed light microscopic and ultrastructural features characteristic of oligodendrogliomas. Microtubules were found in the cytoplasm of nine tumors on electronmicroscopy. In one, intermediate filaments and microtubules were observed in occasional tumor cells with polygonal crystalline structures in the cytoplasm. Using the peroxidase-antiperoxidase technique, all specimens were stained for GFAP, vimentin, S-100 and neuron-specific enolase (NSE). In nine tumors, variable numbers of cells with an oligodendroglial morphology reacted positively for GFAP. All tumors were positive for S-100 and negative for vimentin and NSE. The myelination glia in the eight normal brains stained positively for GFAP but not for vimentin. Vimentin is expressed by developing, reactive and neoplastic astrocytes. Thus, GFAP positivity combined with vimentin negativity in both neoplastic and immature oligodendroglia suggests that GFAP positivity in oligodendrogliomas may reflect the transient expression of this intermediate filament by immature oligodendroglia.


1986 ◽  
Vol 6 (5) ◽  
pp. 1529-1534 ◽  
Author(s):  
S A Lewis ◽  
N J Cowan

The origin of introns and their role (if any) in gene expression, in the evolution of the genome, and in the generation of new expressed sequences are issues that are understood poorly, if at all. Multigene families provide a favorable opportunity for examining the evolutionary history of introns because it is possible to identify changes in intron placement and content since the divergence of family members from a common ancestral sequence. Here we report the complete sequence of the gene encoding the 68-kilodalton (kDa) neurofilament protein; the gene is a member of the intermediate filament multigene family that diverged over 600 million years ago. Five other members of this family (desmin, vimentin, glial fibrillary acidic protein, and type I and type II keratins) are encoded by genes with six or more introns at homologous positions. To our surprise, the number and placement of introns in the 68-kDa neurofilament protein gene were completely anomalous, with only three introns, none of which corresponded in position to introns in any characterized intermediate filament gene. This finding was all the more unexpected because comparative amino acid sequence data suggest a closer relationship of the 68-kDa neurofilament protein to desmin, vimentin, and glial fibrillary acidic protein than between any of these three proteins and the keratins. It appears likely that an mRNA-mediated transposition event was involved in the evolution of the 68-kDa neurofilament protein gene and that subsequent events led to the acquisition of at least two of the three introns present in the contemporary sequence.


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