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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

Redistribution of nuclear envelope associated antigen during the mitotic cycle.

Murine hybridomas were generated to DNA/tight binding proteins complex isolated from the residual nuclear structure following a procedure analogous to that yielding "empty" shells of nuclear envelope. A monoclonal antibody designated 2A8 was selected because of its differential immunostaining of mitotic cells of a synchronized mouse fibroblast cell culture L-929. The target antigen was rendered insoluble by a sequence of extractions of isolated nuclei of diverse cell types with detergents, urea, DNase I and alkali thus reproducing some solubility properties of proteins constituting an operationally defined residual nuclear matrix. The cognate polypeptide was localized on a subset of proteins of M(r) 58-65 kDa, 70 kDa in isolated fibroblast nuclear matrices. The functional implication of the antigen in mitosis-related disassembly-assembly process of the nuclear matrix/envelope was detected. At prophase the antibody decorated the nuclear periphery and nuclear envelope fixed inward filaments. A fibrous network of cytoplasmic localization was stained in metaphase. At anaphase the antigen was dispositioned into peripheral fibrogranular clusters of polar orientation predominantly on one side of the nucleus. Proceeding to telophase a spreading fluorescence was manifested over the entire contour of the nuclear periphery to delineate the reforming nucleus. By immunogold electron microscopy of interphase cells the antigen was identified as evenly distributed in chromatin and interchromatin regions. At initiation of chromosome condensation in mitosis the label was detected predominantly in the chromosomal area.

Animals

Two-dimensional crystallization of the light-harvesting complex from Rhodospirillum rubrum.

Homogeneous detergent-solubilized B873 light-harvesting complexes from a carotenoid-less mutant of the purple non-sulfur bacterium, Rhodospirillum rubrum G9, were reassembled spontaneously into two-dimensional (2D) hexagonal arrays during extensive and controlled dialysis. As the complexes contain only 1 to 2 mol phospholipid per mol alpha beta dimer, the arrays formed by a self assembly process are primary due to protein-protein interactions. The hexagonal lattices were analyzed by negative stain electron microscopy and digital image processing. They exhibited a unit cell size of 12.3 nm, in close agreement with the particle diameter of the active photo-unit in native chromatophore membranes. The unit cell contains a central 5 nm stain-filled depression, embraced by a ring with an outer diameter of 10 nm.

Crystallization

DNA-protein cooperativity in the assembly and stabilization of mu strand transfer complex. Relevance of DNA phasing and att site cleavage.

The requirements for negatively supercoiled DNA substrates, the cis-acting transposition enhancer and the Escherichia coli HU protein during the phage Mu transposition reaction are relaxed under DMSO-assay conditions. We have used these modified assay conditions to extend studies on the transposition pathway. We show here that linear DNA fragments containing the right end of Mu (attR) and Mu A protein mutually promote the assembly of "high-order" complexes held together by non-covalent protein-DNA and protein-protein interactions. A large subset of these complexes is competent in mediating strand transfer. DNA fragments containing the left end of Mu (attL) as well as non-Mu DNA can be used as targets during strand transfer. The R1 and R2 subsites within attR are required, but R3 is dispensable, in the protein-DNA oligomerization steps as well as in the strand transfer reaction. Proper phasing and spacing between R1 and R2 are central to the reaction. A single base-pair change in the terminal nucleotide that renders attR non-cleavable prevents the assembly of stable high-order complexes, showing that strand cleavage and stabilization of high-order complexes are tightly coupled events. Conversely, pre-cleavage at the attL site allows it to function in the assembly process, albeit at a much lower efficiency than attR. In the presence of HU, the reactivity of pre-cleaved attL is enhanced significantly.

Attachment Sites, Microbiological

The ribosomal DNA loci in Plasmodium falciparum accumulate mutations independently.

Homogeneity of rDNA sequence within a cell is maintained by mechanisms working at the DNA level. The imperative to maintain homogeneity is thought to result from pressure to maintain the sequence of the rRNA transcript. We have investigated the extent of sequence variation within and between members of a species that is unable to utilize some standard mechanisms of rDNA sequence correction. We have compared the sequence of the internal transcribed spacer (ITS1) located between the 18 S rRNA and 5.8 S rRNA genes of five different loci of a single Plasmodium falciparum genotype. The ITS1 sequences are identical at 80 to 91% of the positions among the three asexually expressed genes (A-types) and 75% between the two genes expressed during sporogony (S-types), with only 42 to 57% identity between the types. This is rather startling in that the differences described here for a single genome are greater than those normally seen when comparing rDNA units from distantly related organisms. We observe an apparent conservation of secondary structure within ITS1 sequences from the different transcription units, which would reflect a level of selection at the rRNA but the organism seems to be quite tolerant of primary sequence variation. Investigation of the mature coding region within the 18 S rRNA genes did not reveal sequence variation within A- and S-types from a single genotype. However, comparison of the 18 S rRNA coding region from 17 geographically distinct strains reveals up to 10% sequence variation within a 400 nucleotide region. Hence homogeneity of rRNA units within a species does not seem to be an imperative driven totally by selection at the RNA level. The extraordinary maintenance of homogeneity within rDNA units normally seen within a species appears to have significance beyond those that can be ascribed to the events involved in processing, assembly and function of the ribosome.

Animals

The elastic I-band region of titin is assembled in a "modular" fashion by weakly interacting Ig-like domains.

The vertebrate striated muscle protein titin is thought to play a critical rôle in myofibril assembly and passive tension. The recently determined complete primary structure of titin revealed a modular architecture that opens the way to a structural characterisation and the understanding of essential properties of this molecule through dissection into units that are structurally and/or functionally relevant. To understand the assembly process of titin, and ultimately the molecular basis of its elastic behaviour, we studied the thermodynamic properties of module pairs, the smallest structural unit that includes a module-module interface. Thus, selected module pairs and their component single modules from the I-band part of the titin molecule were expressed in Escherichia coli and their heat-induced and denaturant-induced unfolding was investigated with a combination of techniques (circular dichroism, fluorescence spectroscopy and nuclear magnetic resonance). The stabilities of single modules and pairs were determined from denaturation experiments. The module interface was also modelled on the basis of the sequence alignment of all approximately 40 immunoglobulin like modules from the I-band and the known structure of one of them. Our results show that all modules and module pairs examined are independently folded in solution. When covalently linked, although weakly interacting, they still behave as autonomous co-operative units upon unfolding. These observations lead us to suggest that folding of titin in vitro is a hierarchical event and that weak interactions between its adjacent modules must only partly account for its presumed elastic function.

Amino Acid Sequence

Modeling supra-molecular helices: extension of the molecular surface recognition algorithm and application to the protein coat of the tobacco mosaic virus.

Geometric matching of molecular surfaces appears to be essential for the formation of binary molecular complexes and of supra-molecular aggregates. The structure of a binary complex is characterized by the best geometric match, whereas the structure of an aggregate is characterized by the best combined match, i.e. the sum of all the internal matches in the system. We describe a method to identify and quantify the binary matches between molecules and then use them to form the supra-molecular helices and evaluate them. This method is applied to the single protein subunit of tobacco mosaic virus. It successfully predicts the structure of the helical protein coat of the virus and the structure of the disk that is formed as the initial step in the virus assembly process. It also predicts structural intermediates, between disk and helix, which explain how the disk can transform into a helix without dissociating into subunits.

Algorithms

A genetical theory of species selection.

Species selection, differential rates of speciation or extinction resulting from species level characters, is often invoked as the main mechanism of macroevolution that is not simply an extension of microevolutionary processes. So long as we are careful in defining "species", the logic of species selection is sound. This does not mean, however, that this process can influence evolutionary dynamics under realistic conditions. The principal challenge to the efficacy of species selection as an evolutionary mechanism is the idea that selection between individuals within species will be so much more efficient as to swamp out any effects of selection between species. To assess this, a genetic model is constructed that includes simultaneous selection within and between species, and this is used to ask: under what conditions could species selection influence evolutionary dynamics, even in the face of opposing selection between individuals? The model shows that the efficacy of species selection is strongly determined by the time between speciation events (measured in individual generations), the mutation rate of the character under consideration, and the initial size of a newly formed reproductively isolated population. Data indicate that a few studied lineages have shown sufficiently high speciation rates to make species selection an important mechanism in the evolution of characters with mutation rates on the order of 10(-6) per generation. Quantitative characters, such as body size, generally change too readily for species selection to be relevant to their evolution. Complex characters, however, may be good candidates to be influenced by species selection. The interaction of selection within and between species can be subtle, with individual selection looking, from the standpoint of a species, very much like development of an individual. Furthermore, selection between individuals may be the main process assembling complex adaptations, while species selection allows them to persist over long periods of time.

Animals

Isoprenylation of large hepatitis delta antigen is necessary but not sufficient for hepatitis delta virus assembly.

Hepatitis delta virus (HDV) encodes two proteins, the small hepatitis delta antigen (SHDAg) and large hepatitis delta antigen (LHDAg). Both proteins are identical except for the presence of additional 19 amino acids at the C terminus of LHDAg. While SHDAg is required for HDV RNA replication, LHDAg inhibits replication and is required together with hepatitis B surface antigen for the assembly of HDV. The C-terminal last 4 amino acids of LHDAg (Cys-Arg-Pro-Gln) is an isoprenylation motif. It has previously been shown that the mutation of the Cys inhibited the assembly of HDV. In order to discern whether this effect is due to change of amino acid residue or abolition of isoprenylation, we constructed several LHDAg mutants of the terminal three amino acid residues and tested their abilities to be packaged with HBsAg by cotransfection experiments. We also made GST-fusion proteins of these mutants and tested their abilities to be isoprenylated in rabbit reticulocyte lysate system. We found that some, but not all, of the substitutions of the amino acid residues other than the Cys also inhibited isoprenylation and that the status of isoprenylation of these mutant proteins correlated well with their abilities to be packaged with HBsAg into virions. This result indicates that isoprenylation, rather than the primary amino acid sequence, is required for LHDAg packaging. Furthermore, we found that the attachment of an isoprenylation motif to SHDAg did not enable it to be packaged with HBsAg and that the deletions of any 5 amino acids in the last 15 amino acids (amino acids 196 to 210) unique to the LHDAg abolished the packaging ability. In contrast, the deletion of 33 amino acids (amino acids 163 to 195) upstream of the last C-terminal 19 amino acids of LHDAg did not interfere with its packaging ability. Therefore, we conclude that the 15 amino acids upstream of the isoprenylation site of LHDAg are also essential for HDV assembly, and a large portion of the alleged C-terminal Pro/Gly-rich region (amino acids 146 to 195) is not required for the assembly process.

Amino Acid Sequence

Characterization of hepatitis B virus core mutants that inhibit viral replication.

We have generated and functionally characterized dominant negative core protein variants of the hepadnaviruses to determine their effects on "wild type" viral replication. Plasmids expressing these constructs were introduced into hepatoma cell lines by transient transfection and effects on wild type woodchuck hepatitis virus (WHV) and hepatitis B virus (HBV) replication were evaluated by Southern blot analysis of purified viral core particles. WHV and HBV constructs expressing a truncated core protein fused in frame with the C-terminus of the small surface protein were found to inhibit viral replication by 90-95% due to disruption of the viral nucleocapsid assembly process and preventing encapsidation of pregenomic RNA. The antiviral effects were found to be specific for the targeted virus. These results demonstrate that mutants of hepadnaviral core protein may represent a novel class of antiviral agents.

DNA Replication

The NS2 polypeptide of parvovirus MVM is required for capsid assembly in murine cells.

Mutants of minute virus of mice (MVM) which express truncated forms of the NS2 polypeptide are known to exhibit a host range defect, replicating productively in transformed human cells but not in cells from their normal murine host. To explore this deficiency we generated viruses with translation termination codons at various positions in the second exon of NS2. In human cells these mutants were viable, but showed a late defect in progeny virion release which put them at a selective disadvantage compared to the wildtype. In murine cells, however, duplex viral DNA amplification was reduced to 5% of wildtype levels and single-strand DNA synthesis was undetectable. These deficiencies could not be attributed to a failure to initiate infection or to a generalized defect in viral gene expression, since the viral replicator protein NS1 was expressed to normal or elevated levels early in infection. In contrast, truncated NS2 gene products failed to accumulate, so that each mutant exhibited a similar NS2-null phenotype. Expression of the capsid polypeptides VP1 and VP2 and their subsequent assembly into intact particles were examined in detail. Synchronized infected cell populations labeled under pulse-chase conditions were analyzed by differential immunoprecipitation of native or denatured extracts using antibodies which discriminated between intact particles and isolated polypeptide chains. These analyses showed that at early times in infection, capsid protein synthesis and stability were normal, but particle assembly was impaired. Unassembled VP proteins were retained in the cell for several hours, but as the unprocessed material accumulated, capsid protein synthesis progressively diminished, so that at later times relatively few VP molecules were synthesized. Thus in NS2-null infections of mouse cells there is a major primary defect in the folding or assembly processes required for effective capsid production.

Amino Acid Sequence

Isolation of Drosophila flightless mutants which affect myofibrillar proteins of indirect flight muscle.

A large number of dominant flightless mutants of Drosophila were chemically induced, and their thorax proteins were examined by chemically induced, and their thorax proteins were examined by means of two-dimensional gel electrophoresis (O'Farrell 1975). Among them, 26 lines were found to have deficiency or reduction of some of myofibrillar proteins in indirect flight muscle (IFM). The gel patterns of the mutants could be classified into eleven groups. In general, more than a few polypeptides were either absent or reduced in each mutant line. Although the mutations affect myofibrillar proteins in apparently complex and diverse ways, logical correlations were found among the changes. There are pairs of proteins which always change together when a number of mutants are compared. There are also many pairs in which presence of one protein is necessary, but not sufficient for presence of the other. This suggests that absence of one component leads to disappearance or reduction of others which are either spatially or functionally related to the former. The correlation is possibly due to a hierarchy of the proteins in the myofibrillar assembly processes. Chromosomal loci of eleven typical mutants were examined, and it was found that most of them are located in two small regions of the second and the third chromosomes. IFM myofibrils of these mutants are either abnormal or absent in homozygotes as well as in heterozygotes.

Animals

Molecular dissection of the flagellum-specific anti-sigma factor, FlgM, of Salmonella typhimurium.

In the flagellar regulon of Salmonella typhimurium, the flagellar operons are divided into three classes, 1, 2 and 3, with respect to transcriptional hierarchy. Class 3 operons are controlled positively by FliA, a flagellum-specific sigma factor, and negatively by FlgM, an anti-sigma factor which binds to FliA and inhibits its activity. The sequential expression of flagellar operons is coupled to the assembly process of flagellar structures. This coupling is achieved by the fact that FlgM is exported out of the cell through the flagellar structures that are formed by the functions of the class 1 and 2 genes. Therefore, FlgM has a dual function: it can bind to FliA and is capable of being exported through the flagellar structure. In this study, using a set of deletion mutants of flgM in high-expression plasmids, we demonstrated that polypeptides containing the C-terminal portion of FlgM could inhibit the FliA-dependent transcription of the class 3 genes. Loss of amino acids near the N-terminus eliminated the export of the protein, while loss of C-terminal amino acids did not affect this function. These results indicate that the domain essential for export lies in the N-terminal region and that for FliA-binding in the C-terminal region.

Amino Acid Sequence

Outer membrane protein PhoE as a carrier for the exposure of foreign antigenic determinants at the bacterial cell surface.

PhoE protein is an abundant outer membrane protein of the Escherichia coli K-12 outer membrane. This protein can be used as an exposure system to produce foregin antigenic determinants and for their transport to the bacterial cell surface. The system is very flexible, since insertions varying in length and nature could be made in different cell surface-exposed regions of PhoE, without interfering with the assembly process of the mutant proteins into the outer membrane. Two antigenic determinants of the structural VP1 protein of foot-and-mouth disease virus were inserted in different combinations in four cell surface-exposed regions of PhoE. The epitopes were exposed at the bacterial cell surface and they keep their antigenic and immunogenic properties in this PhoE-associated conformation. Immunization of guinea pigs with one hybrid protein, containing a combination of the two epitopes inserted in the fourth exposed region, resulted in complete protection against challenge with the virus. A T-cell epitope of the 65 kDa heat shock protein of Mycobacterium tuberculosis was inserted in the fourth exposed region of PhoE and in vitro proliferation of two T-cell specific clones was demonstrated. Thus, the PhoE exposure system has been shown to be suitable for presentation of both B-cell and T-cell determinants to the immune system. Furthermore, good expression of the hybrid protein in attenuated Salmonella strains, which can be used as live oral vaccines, was shown.

Amino Acid Sequence

The cytochrome c reductase/oxidase respiratory pathway of Paracoccus denitrificans: genetic and functional studies.

Data are presented on three components of the quinol oxidation branch of the Paracoccus respiratory chain: cytochrome c reductase, cytochrome c552, and the a-type terminal oxidase. Deletion mutants in the bc1 and the aa3 complex give insight into electron pathways, assembly processes, and stability of both redox complexes, and, moreover, are an important prerequisite for future site-directed mutagenesis experiments. In addition, evidence for a role of cytochrome c552 in electron transport between complex III and IV is presented.

Cytochrome c Group

Single-stranded DNA binding protein encoded by the filamentous bacteriophage M13: structural and functional characteristics.

The single-stranded DNA binding protein, or gene V protein (gVp), encoded by gene V of the filamentous bacteriophage M13 is a multifunctional protein that not only regulates viral DNA replication but also gene expression at the level of mRNA translation. It furthermore is implicated as a scaffolding and/or chaperone protein during the phage assembly process at the hostcell membrane. The protein is 87 amino acids long and its biological functional entity is a homodimer. In this manuscript a short description of the life cycle of filamentous phages is presented and our current knowledge of the major functional and structural properties and characteristics of gene V protein are reviewed. In addition models of the superhelical complexes gVp forms with ssDNA are described and their (possible) biological meaning in the infection process are discussed. Finally it is described that the 'DNA binding loop' of gVp is a recurring motif in many ssDNA binding proteins and that the fold of gVp is shared by a large family of evolutionarily conserved gene regulatory proteins.

Amino Acid Sequence