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Deletions in epidermal keratins leading to alterations in filament organization in vivo and in intermediate filament assembly in vitro.

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 into a preexisting keratin filament network in vivo and assemble efficiently into 10-nm keratin filaments in vitro.

Amino Acid Sequence

Complementation of in vitro-assembled spliceosomes.

We describe the development and application of a system of in vitro-assembled splicing complexes that can be used for the identification of protein splicing factors which become associated with the spliceosome at the end of the assembly process ("late" splicing components). A splicing reaction performed in the presence of polyvinyl alcohol is interrupted after 15 to 20 minutes, before the appearance of splicing intermediates and products in significant amounts. Following low-speed centrifugation, a pellet is obtained containing splicing complexes that can be solubilized with 0.6 M-KCl. These complexes can be rapidly complemented for splicing in the presence of ATP and Mg2+ with protein factors that are present in HeLa cell nuclear extracts or in chromatographic extract fractions. Biochemical features of the complementation reactions, and conditions for reversible uncoupling of the two splicing steps, are described and discussed. These conditions are used to generate fully assembled spliceosomes in which splicing of the pre-mRNA can occur in the presence of ATP and Mg2+, but in the absence of nuclear extract ("autonomous splicing").

Adenosine Triphosphate

Characterization of hepatitis B virus capsid particle assembly in Xenopus oocytes.

Little is known about the assembly of the 28-nm nucleocapsid or core particle of hepatitis B virus. Here we show that this assembly process can be reconstituted in Xenopus oocytes injected with a synthetic mRNA encoding the hepatitis B virus capsid protein (p21.5). Injected oocytes produce both a nonparticulate p21.5 species (free p21.5) and capsid particles. We describe rapid and simple methods for fractionating these species on a small scale either with step gradients of 10 to 60% (wt/vol) sucrose or by centrifugation to pellet the particles, and we characterize the oocyte core particles. Free p21.5 exhibits chemical and physical properties distinctly different from those of particles. Free p21.5 is partially cleaved by proteinase K, whereas core particles are almost completely resistant to cleavage. This suggests that the carboxyl-terminal protamine region, the main target for proteases within p21.5, is exposed in free p21.5 but faces the interior of the p21.5 core particle. Finally, pulse-chase experiments demonstrated that free p21.5 can be chased almost quantitatively into core particles, establishing that free p21.5 is fully competent to form particles and represents an assembly intermediate on the pathway for core particle formation. However, core particle assembly appears very dependent on p21.5 concentration and is rapidly compromised if the p21.5 concentration is lowered. The advantages of oocytes for studying assembly are discussed.

Animals

Is microtubule assembly a biphasic process? A fluorimetric study using 4',6-diamidino-2-phenylindole as a probe.

The kinetics of microtubule assembly followed by turbidimetry usually describe an exponential process but hyperbolic or biphasic assembly curves have also been reported. A combination of turbidimetry, 4',6-diamidino-2-phenylindole (DAPI) fluorescence, electron microscopy, rapid sedimentation and wavelength dependence of scattered light have been used here to investigate these apparently biphasic kinetics of microtubule assembly. Experimental conditions have been developed under which the increase in DAPI fluorescence is a quantitative measurement of polymer formation which, in contrast to turbidity, does not depend on the size of the microtubules. Monophasic assembly curves were obtained when the increase in DAPI fluorescence was measured, whereas under the same conditions the turbidity change was a biphasic process. Biphasic turbidity curves are observed at low (less than 0.5 mM) magnesium ion concentration; the data are consistent with a rapid polymerization of tubulin into short polymers, followed by extensive length redistribution. The morphology of the early intermediates in microtubule assembly appears dependent on the concentration of Mg2+ ions.

Animals

Involvement of the N-terminal polypeptide of vimentin in the formation of intermediate filaments.

The potential to form intermediate filaments of a 54 X 10(3) molecular weight (Mr) polypeptide derived from vimentin by cleavage by the intermediate filament-specific, Ca2+-activated proteinase was investigated. Under physiological conditions of assembly, the breakdown product did not form intermediate filaments. Electron microscopy revealed short, rod-like structures similar to those described by Geisler et al. for a 38 X 10(3) Mr alpha-helical core particle derived from desmin. Since the specific, Ca2+-activated proteinase degrades vimentin preferentially from its N terminus, this result suggests the involvement of the basic, N-terminal polypeptide of vimentin in the assembly of intermediate filaments. This was supported by the observation that arginine inhibits the formation of intermediate filaments from intact vimentin. Whereas lysine had very little effect on the assembly process, guanidinium hydrochloride was effective at the same concentration as arginine. On the basis of these findings, an affinity chromatography method for the identification and isolation of intermediate filament subunit proteins was developed. Beside vimentin, desmin, the 68 X 10(3) Mr neurofilament triplet protein, the glial fibrillary acidic protein and cytokeratins also bound to arginine methylester Sepharose 4B in a salt-stable manner and could be eluted with arginine. The 145 X 10(3) Mr neurofilament triplet protein exhibited reduced binding activity, whereas the 210 X 10(3) Mr subunit did not bind to the affinity matrix. Among the degradation products of vimentin produced by the specific, Ca2+-activated proteinase, only those with molecular weights higher than 40 X 10(3) bound to arginine methylester Sepharose 4B. The same applied to the high molecular weight degradation products of desmin with a protein-resistant 37 X 10(3) Mr polypeptide as the major component. The results suggest that arginine residues of the non-alpha-helical, N-terminal polypeptides of intermediate filament subunit proteins play an important role in filament assembly.

Animals

The yeast PRP19 protein is not tightly associated with small nuclear RNAs, but appears to associate with the spliceosome after binding of U2 to the pre-mRNA and prior to formation of the functional spliceosome.

We have previously shown that the yeast PRP19 protein is associated with the spliceosome during the splicing reaction by immunoprecipitation studies with anti-PRP19 antibody. We have extended such studies by using extracts depleted of specific splicing factors to investigate the step of the spliceosome assembly process that PRP19 is involved in. PRP19 was not associated with the splicing complexes formed in U2- or U6-depleted extracts but was associated with the splicing complex formed in heat-inactivated prp2 extracts. This finding indicates that PRP19 becomes associated with the splicing complexes after or concomitant with binding of the U6 small nuclear ribonucleoprotein particle (snRNP) to the precursor RNA and before formation of the functional spliceosome. We further analyzed whether PRP19 is an integral component of snRNPs. We have constructed a strain in which an epitope of nine amino acid residues recognized by a well-characterized monoclonal antibody, 12CA5, is linked to the carboxyl terminus of the wild-type PRP19 protein. Immunoprecipitation of the splicing extracts with anti-PRP19 antibody or precipitation of the extracts prepared from the epitope-tagged strain with the 12CA5 antibody did not precipitate significant amounts of snRNAs. Addition of micrococcal nuclease-treated extracts to the PRP19-depleted extract restored its splicing activity. These results indicate that PRP19 is not tightly associated with any of the snRNAs required for the splicing reaction. No non-snRNP protein factor has been demonstrated to participate in either step of the spliceosome assembly pathway that PRP19 might be involved in. Thus, PRP19 represents a novel splicing factor.

Antibodies, Monoclonal

[Synthesis of 10S particles in cells infected with aphthovirus].

In the present study, evidence is presented for the existence of a morphogenetic intermediary that may be a precursor of the procapsids in the assembling process. BHK21 clone 13S cells were infected with Aphthovirus A24 (Cruzeiro strain), and pulse-chase experiments were carried out using 3H-leucine. Cytoplasmic extracts were then prepared at appropriate times, and analyzed by sucrose-gradient ultracentrifugation. After preliminary assays (Fig. 1), working conditions were standardized so as to obtain maximal recovery of the morphogenetic intermediary, as well as consistency of results. Only in the presence of DOC-Brij58 and Mg++ could a 10S sedimentation coefficient peak be seen (Fig. 1 a). A heterogeneous zone, with 4,5-5S as sedimentation coefficient, was also observed. The degree of labeling in the region 4,5-5S compared with that in the 10S portion, depends on the time within the infectious cycle when cells were pulse-labeled. Maximal levels for the ratio 10S/4,5-5S are reached when pulse-labeling takes place at the time when the amount of RNA viral synthesis reaches 80% of its total value (Fig. 2). Similar experiments, performed with third passage bovine fetal kidney cells, were confirmatory of the presence of a structure sedimenting at 10S, as well as of a heterogeneous zone of 4,5-5S (Fig. 3). It would appear that assembling of Aphthoviruses is accomplished through an intermediary unit which differs from that found for other Picornaviruses, the latter being the result of the union of 12 pentamers. The capsid of Aphthoviruses, also composed of 60 identical sub-units, would instead derive from the joining of 20 trimers.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

The formation of a defective small subunit of the mitochondrial ribosomes in petite mutants of Saccharomyces cerevisiae.

The involvement of mitochondrial protein synthesis in the assembly of the mitochondrial ribosomes was investigated by studying the extent to which the assembly process can proceed in petite mutants of Saccharomyces cerevisiae which lack mitochondrial protein synthetic activity due to the deletion of some tRNA genes and/or one of the rRNA genes on the mtDNA. Petite strains which retain the 15-S rRNA gene can synthesize this rRNA species, but do not contain any detectable amounts of the small mitochondrial ribosomal subunit. Instead, a ribonucleoparticle with a sedimentation coefficient of 30 S (instead of 37 S) was observed. This ribonucleoparticle contained all the small ribosomal subunit proteins with the exception of the var1 and three to five other proteins, which indicates that the 30-S ribonucleoparticle is related to the small mitochondrial ribosomal subunit (37 S). Reconstitution experiments using the 30-S particle and the large mitochondrial ribosomal subunit from a wild-type yeast strain indicate that the 30-S particle is not active in translating the artificial message poly(U). The large mitochondrial ribosomal subunit was present in petite strains retaining the 21-S rRNA gene. The petite 54-S subunit is biologically active in the translation of poly(U) when reconstituted with the small subunit (37 S) from a wild-type strain. The above results indicate that mitochondrial protein synthetic activity is essential for the assembly of the mature small ribosomal subunit, but not for the large subunit. Since the var1 protein is the only mitochondrial translation product known to date to be associated with the mitochondrial ribosomes, the results suggest that this protein is essential for the assembly of the mature small subunit.

DNA, Mitochondrial

Flexibility in tobacco mosaic virus.

Tobacco mosaic virus (TMV) particles are rod-like, 300 nm long and 18 nm in diameter. TMV consists of 2140 protein subunits, each with a relative molecular mass of 17420 (158 residues), arranged on a helix of pitch 2.3 nm with 16 1/3 subunits per turn. Winding through this helix is a single strand of RNA 6400 nucleotides long. Three bases are bound to each protein subunit. TMV has a central hole of diameter 4.0 nm. Assembly of TMV occurs by the threading of the RNA through the central hole of the growing rodlet of viral coat protein and involves a preassembled double disk as intermediate. Given the structure of the subunit, such a mechanism requires that the segment of polypeptide chain which separates the nucleic acid binding site from the lumen of the cylinder should be able to move out of the way during the assembly process. Evidence from diffraction studies and from proton nuclear magnetic resonance spectroscopy points to a segment of about 20 amino acid residues being very flexible in the disk. In the helical virus these residues take on a well-defined conformation which completely shields the nucleic acid from the central channel.

Magnetic Resonance Spectroscopy

Surface expression of the T cell receptor complex requires charged residues within the alpha chain transmembrane region.

The T cell receptor (TcR) complex is a multi-subunit glycoprotein comprising at least five transmembrane polypeptides. An unusual characteristic of each of the transbilayer domains is the presence of charged amino acids. To examine the importance of these residues for the association and consequent surface expression of the components of the complex, a TcR alpha chain containing either charged or neutral residues within its transbilayer segment was introduced into the human T cell line MOLT-4, and the appearance of the TcR complex at the cell surface was assayed. Surface expression was observed only in MOLT-4 cells transfected with the alpha chain containing charged transbilayer residues. Thus, these residues most probably play a crucial role in the assembly process.

Amino Acids

The mechanism of self-assembly of the multi-enzyme complex tryptophan synthase from Escherichia coli.

The alpha subunit is bound with negative cooperativity to the holo beta 2 subunit of tryptophan synthase in phosphate buffer. Thus it is feasible to measure separately the rates of formation both of the stable alpha beta 2 subcomplex from beta 2, and of the mature alpha 2 beta 2 complex from alpha beta 2, using stopped-flow techniques. Addition of each alpha subunit proceeds in two steps; an initial alpha beta protomer is formed rapidly, which subsequently isomerizes slowly to the equilibrium state. The rates of dissociation of both the alpha beta 2 and alpha 2 beta 2 complexes were measured by trapping released alpha subunit with enzymically inactive reduced beta 2 subunit. The reversal of the slow isomerization both determines the rate of dissociation, and accounts for the high overall affinity of the beta protomer for the alpha subunit. The data fit to a sequential assembly mechanism consisting of seven protein species and yields values for most of the rate constants and all of the microscopic equilibrium constants. Negative cooperativity arises from a weaker initial binding of the second alpha subunit, as expressed by its larger off-constant, possibly due to steric hindrance. The kinetics of binding of L-serine and indolepropanol phosphate during the assembly process shows that the beta protomer is already partially activated in the initial alpha beta complex. Full activation is achieved in the slow isomerization reaction. In contrast, the alpha subunit gains high affinity for indolepropanol phosphate only in the isomerization reaction. These observations indicate that the isomerization involves synchronous conformation changes of both alpha and beta protomers.

Bacterial Proteins

Assembly of transfected DNA into chromatin: structural changes in the origin-promoter-enhancer region upon replication.

Chimeric SV40 DNA containing only the early region, or plasmid DNA harboring the origin-promoter-enhancer region of SV40, when introduced into CV-1 or Cos-1 monkey cells by DEAE-dextran mediated transfer are rapidly assembled in a typical chromatin structure revealed by the generation of a regular 190 bp repeat ladder after micrococcal nuclease digestion. DNA replication is not required for this assembly process. Chromatin-specific DNase I hypersensitive sites are observed in the enhancer region of these minichromosomes. The pattern of the sites differs between non-replicating and post-replicated chromatin. The latter is identical to that observed in the lytic cycle. The presence of large T antigen is not sufficient for the shift in the structure of the chromatin. These experiments suggest that replication can modulate protein-DNA interactions during viral infection or upon cell differentiation.

Animals

Both hydrophobic domains of M13 procoat are required to initiate membrane insertion.

M13 procoat protein has two hydrophobic domains, one in the leader peptide and one which anchors the mature coat protein in the membrane. Disruption of the membrane anchor region by insertion of arginyl residues does not yield periplasmic coat protein. Instead, the rate of membrane assembly is slowed greater than 100-fold (t1/2 less than 5 s for wild-type, t1/2 greater than 10 min for mutant). The hydrophobic region of mature coat protein not only functions as a membrane anchor, but has an important role in the membrane assembly process per se.

Amino Acid Sequence

Isolation of scid pre-B cells that rearrange kappa light chain genes: formation of normal signal and abnormal coding joins.

Consistent with an ordered immunoglobulin (Ig) gene assembly process during precursor (pre-) B cell differentiation, we find that most Abelson murine leukemia virus (A-MuLV)-transformed pre-B cells derived from scid (severe combined immune deficient) mice actively form aberrant rearrangements of their Ig heavy chain locus but do not rearrange endogenous kappa light chain variable region gene segments. However, we have identified several scid A-MuLV transformants that transcribe the germline Ig kappa light chain constant region and actively rearrange the kappa variable region gene locus. In one case progression to the stage of kappa light chain gene rearrangement did not require expression of Ig mu heavy chains; furthermore, this progression could not be efficiently induced following expression of mu heavy chains from an introduced vector. As observed in pre-B cell lines from normal mice, attempted V kappa-to-J kappa rearrangements in scid transformants occur by inversion at least as frequently as by deletion. The inverted rearrangements result in retention of both products of the recombination event in the chromosome, thus allowing their examination. scid kappa coding sequence joins are aberrant and analogous in structure to previously described scid heavy chain coding joins. In contrast, the recognition signals that flank involved coding segments frequently are joined precisely back-to-back in normal fashion. The scid VDJ recombinase defect therefore does not significantly impair recognition of, site-specific cutting at, or juxtaposition and appropriate ligation of signal sequences. Our finding that the scid defect prevents formation of correct coding but not signal joins distinguishes these events mechanistically.

Abelson murine leukemia virus

In vivo iodination of a misfolded proinsulin reveals co-localized signals for Bip binding and for degradation in the ER.

The signal for degradation of proteins in the endoplasmic reticulum (ER) is thought to be the exposure of internal domains which are buried when the protein has adopted its correct conformation and which are also exposed in assembly intermediates. This raises the question of why the intermediates are not degraded. We developed a system based on the peroxidase-catalyzed iodination of tyrosine residues which continuously monitors the exposure of internal domains of proinsulin. In CHO cells this system discriminated between assembly intermediates of wild type (wt) proinsulin and misfolded proinsulin, as shown by the exclusive iodination of a misfolded mutant which was finally degraded in the ER. Iodination in vitro showed that the assembly intermediates of wt proinsulin also exposed internal domains. This iodination was inhibited by the addition of the molecular chaperone Bip which was co-immunoprecipitated with proinsulin in CHO cells. The results obtained with the mutant proinsulin support the assumption that exposed internal domains represent the signal for degradation in the ER. Observations of wt proinsulin show that Bip masks internal domains of normal assembly intermediates during the entire assembly process, thereby suppressing their degradation. We propose that internal domains contain co-localized signals for Bip binding and for degradation.

Adenosine Triphosphate

The oral apparatus of Tetrahymena pyriformis, strain WH-6. II. Cytochalasin B inhibition of oral apparatus morphogenesis.

The effects of cytochalasin B on oral apparatus morphogenesis and cell division were studied in synchronized Tetrahymena pyriformis, strain WH-6 syngen 1. Cytochalasin B brought about the rapid arrest of oral apparatus primordium development when added prior to the completion of oral apparatus membranelle differentiation. Cells arrested in development did not divide. When cytochalasin B was added after this transition point, oral apparatus morphogenesis and cell division were completed. The effects of cytochalasin B could be reversed by washing it from the medium. Even though cytochalasin B (at 400 mug/ml) reduced protein synthesis by 30%, the data are consistent with the interpretation that cytochalasin B prevents an assembly process during the membranelle differentiation phase of oral apparatus development.

Animals

Reassembly of the 66 kD neurofilament protein in vitro following isolation and purification from bovine spinal cord.

NF-66, also known as alpha-internexin, has been characterized as a 66 kD mammalian neurofilament (NF) protein whose expression in developing rat brain precedes that of the low molecular weight NF protein (NF-L). NF-66 is thought to assemble into 10 nm diameter intermediate filaments in vitro, although the precise nature of the assembly process remains obscure. Likewise, the ability of NF-66 to polymerize with the low (NF-L), middle (NF-M), and high (NF-H) M(r)NF proteins has not been defined. This investigation describes the reassembly of bovine NF-66 regarding its formation into 10 nm diameter filaments as well as its potential for polymerization with other type IV intermediate filaments. NF-66 and the NF triplet proteins were isolated from bovine spinal cord using established biochemical extraction and isolation procedures (Balin et al., Brain Res 556:181-195, 1991), and purified by a combination of high performance liquid chromatography (HPLC) (DEAE anion exchange and hydroxylapatite column chromatography) and gel elution strategies. In vitro reassembly experiments revealed that NF-66 formed approximately 10 nm diameter filaments of varying length; immunoelectron microscopy demonstrated labeling of these filaments by a monoclonal antibody to intermediate filament antigen (IFA), a polyclonal antibody against rat NF-66 and by a monoclonal antibody generated against the core region of NF-M but cross-reactive with NF-66. This report is the first investigation to look at the in vitro interaction between NF-66 and other type IV intermediate filament proteins (NF-H, -M, and -L) and establishes that NF-66 forms heteropolymeric filaments with these other neurofilament proteins, as confirmed by double immunolabeling. These studies suggest that NF-66 could provide a nucleation site for the polymerization of later-expressed proteins during neuronal development.

Animals

Comparison of the dynamics of the membrane-bound form of fd coat protein in micelles and in bilayers by solution and solid-state nitrogen-15 nuclear magnetic resonance spectroscopy.

Solid-state and solution 15N nuclear magnetic resonance experiments on uniformly and specifically 15N labeled coat protein in phospholipid bilayers and in detergent micelles are used to describe the dynamics of the membrane-bound form of the protein. The residues in the N- and C-terminal portions of the coat protein in both phospholipid bilayers and in detergent micelles are mobile, while those in the hydrophobic midsection are immobile. There is evidence for a gradient of mobility in the C-terminal region of the coat protein in micelles; at 25 degrees C only the last two residues are mobile on the 10(9)-Hz timescale, while the last six to eight residues appear to be mobile on slower timescales and highly mobile at higher temperatures. Since all of the C-terminal residues are immobile in the virus particles, the mobility of these residues in the membrane-bound form of the protein may be important for the formation of protein-DNA interactions in the assembly process.

1,2-Dipalmitoylphosphatidylcholine