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Biomedical subjects

R Knippers

Publications and source records attributed to R Knippers.

At least 19 recordsLinked to original sources

A human homologue of the yeast replication protein Cdc21. Interactions with other Mcm proteins.

We present the amino acid sequence of the human homologue of the yeast replication protein Cdc21, a member of the Mcm family of nuclear proteins. Specific antibodies, raised against protein hCdc21, were used to investigate the expression of the protein through the cell cycle. The protein is highly phosphorylated in mitotic cells. The phosphorylated form of protein hCdc21 appears to be less tightly bound to nuclear structures than the underphosphorylated form suggesting that phosphorylation/dephosphorylation reactions may determine the nuclear distribution of the protein. Protein hCdc21 forms a stable trimeric complex with two novel human Mcm proteins, p85Mcm and p105Mcm. Protein BM28/Mcm2 is more loosely associated with the trimeric hCdc21 complex.

Amino Acid Sequence

Interactions of human nuclear proteins P1Mcm3 and P1Cdc46.

Human nuclear proteins P1Mcm3 and P1Cdc46 have high sequence similarities with the corresponding yeast proteins known to be required for the initiation of genome replication. Nuclei of proliferating HeLa cells contain relatively high amounts of P1Mcm3 (about 10(6) molecules/nucleus) of which only a small fraction is bound to a nuclear structure, most probably chromatin. At 0.5 M NaCl, the structure-bound nuclear protein can be partially solubilized as a dimer composed of P1Mcm3 and the related protein P1Cdc46. However, most protein P1Mcm3 is not bound to a nuclear structure and appears in the nucleoplasm. About 10% of protein P1Mcm3 in the soluble fraction is free and uncomplexed, and the remaining P1Mcm3 forms stable complexes with protein P1Cdc46. These P1Mcm3/Cdc46 complexes occur as dimers and in high-molecular-mass complexes (approximately 500 kDa). The high-molecular-mass complexes dissociate in 0.5 M NaCl and release P1Mcm3/Cdc46 dimers. It has frequently been proposed that the Mcm proteins may function as licensing factors for genome replication. Our data imply that the active form of an Mcm protein is not a monomer, but a protein complex that includes an Mcm3/Cdc46 dimer. DNA polymerase alpha is not a component of this complex.

Amino Acid Sequence

Coat protein of the Ectocarpus siliculosus virus.

Ectocarpus siliculosus virus, EsV, multiplies in sporangia and gametangia of the marine brown alga Ectocarpus siliculosus. We describe an improved method for the isolation of morphologically intact and infectious virus from diseased plants. We show that treatment of virus particles with high concentrations of CsCl results in a substantial loss of structural proteins. One of the proteins which resists CsCl treatment is glycoprotein-1, the largest of the three viral glycoproteins. We have isolated an EsV genomic fragment with an open reading frame encoding glycoprotein-1. The predicted amino acid sequence is rich in hydrophilic amino acids, but contains hydrophobic regions close to the amino and carboxy termini. A discrepancy between the molecular weight predicted from the coding region and the molecular weight determined by gel electrophoresis suggests that proteolytic processing is required for the maturation of the protein.

Amino Acid Sequence

Transcription factor Oct1 binds to the AT-rich segment of the simian virus 40 replication origin.

A cellular protein that binds to the AT-rich late segment of the simian virus 40 (SV40) origin of replication has been identified as transcription factor Oct1. This conclusion is based on the following observations: the late origin binding protein has a molecular mass of about 100 kDa, like factor Oct1, and shares other biochemical properties with Oct1; its binding to the origin is inhibited by antibodies directed against the POU domain of factor Oct1; the isolated POU domain of Oct1 specifically binds to the SV40 late origin region. Thus, the SV40 genome contains binding sites for transcription factor Oct1 in the origin of replication in addition to the previously characterized octamer sites in the viral promoter enhancer. Oct1, bound to the viral origin, negatively affects the DNA unwinding reaction catalyzed by the viral replication initiator T antigen, suggesting that Oct1 may have a role in the regulation of viral replication.

Antigens, Polyomavirus Transforming

The human topoisomerase I gene promoter is regulated by NF-IL6.

We investigated the expression of the human DNA topoisomerase I (hTOP1) gene in HeLa cells and in adenovirus-transformed 293 cells. A highly conserved proximal promoter element is essential for hTOP1 promoter activity in HeLa cells but not in 293 cells. This correlates with the presence of specific promoter-binding proteins in HeLa cells and their absence in 293 cells. We identified the HeLa binding protein by screening a cDNA expression library with the specific promoter site as a probe and demonstrate now that the activating protein is identical to the nuclear factor for interleukin-6 expression (NF-IL6), a member of the C/EBP family of transcription factors. Overexpression of NF-IL6 strongly stimulates hTOP1 promoter activity in HeLa cells, suggesting that NF-IL6 is a major hTOP1-regulating protein. Because of the presence of adenovirus protein E1A, 293 cells express the hTOP1 gene more efficiently than HeLa cells but do not contain NF-IL6 activity. E1A activation of the hTOP1 promoter is suppressed by NF-IL6 overexpression. This result supports previous observations concerning a functional interaction between viral protein E1A and NF-IL6. Finally, we show that hTOP1 gene expression in differentiating macrophages is correlated with the synthesis of NF-IL6-specific mRNA.

Adenoviruses, Human

Expression, phosphorylation and nuclear localization of the human P1 protein, a homologue of the yeast Mcm 3 replication protein.

The human protein P1 belongs to a newly discovered class of mammalian nuclear proteins with high sequence homology to yeast replication proteins. We present the entire amino acid sequence of the human protein P1 as predicted from the cDNA sequence, and show that P1 shares three central regions of high sequence similarity (about 75%) and a highly hydrophilic carboxy-terminal region with the yeast Mcm3 replication protein. The human genome most probably contains one P1 gene which is activated when HeLa cells progress to S phase, as shown by a several-fold increase in P1-specific mRNA. However, the amounts of P1 protein do not detectably change during this period, but P1 protein becomes phosphorylated at the beginning of S phase. In contrast to the yeast Mcm proteins, which disappear from nuclei after initiation of DNA replication, protein P1 remains in the nucleus during and after S phase. P1 is dispersed in mitotic cells and may be excluded from binding to chromosomes.

Amino Acid Sequence

Re-replication of SV40 minichromosomes is inhibited at the stage of chain elongation.

The template activities of protein-free SV40 DNA and SV40 minichromosomes for DNA re-replication are compared in in vitro replication assays. Density substitution experiments and two-dimensional gel electrophoresis show that protein-free DNA can replicate for at least two cycles whereas salt-treated minichromosomes replicate only once. Re-replication of minichromosomes is blocked at the stage of replicative chain elongation suggesting that replicatively assembled chromatin has structural features that prevent a second round of replication.

Chromosomes

Minichromosome replication in vitro: inhibition of re-replication by replicatively assembled nucleosomes.

Single-stranded circular DNA, containing the SV40 origin sequence, was used as a template for complementary DNA strand synthesis in cytosolic extracts from HeLa cells. In the presence of the replication-dependent chromatin assembly factor CAF-1, defined numbers of nucleosomes were assembled during complementary DNA strand synthesis. These minichromosomes were then induced to semiconservatively replicate by the addition of the SV40 initiator protein T antigen (re-replication). The results indicate that re-replication of minichromosomes appears to be inhibited by two independent mechanisms. One acts at the initiation of minichromosome re-replication, and the other affects replicative chain elongation. To directly demonstrate the inhibitory effect of replicatively assembled nucleosomes, two types of minichromosomes were prepared: (i) post-replicative minichromosomes were assembled in a reaction coupled to replication as above; (ii) pre-replicative minichromosomes were assembled independently of replication on double-stranded DNA. Both types of minichromosomes were used as templates for DNA replication under identical conditions. Replicative fork movement was found to be impeded only on post-replicative minichromosome templates. In contrast, pre-replicative minichromosomes allowed one unconstrained replication cycle, but re-replication was inhibited due to a block in fork movement. Thus, replicatively assembled chromatin may have a profound influence on the re-replication of DNA.

Centrifugation

Single-stranded regions in the genome of the Ectocarpus siliculosus virus.

The double-stranded DNA genome of the Ectocarpus siliculosus virus, EsV, is interrupted by numerous single-stranded gaps. We have investigated whether single-stranded regions occur at random or at specific sites. A brief treatment with a single-strand-specific endonuclease dissected the genome into two large fragments, but more extensive treatment produced a spectrum of nuclease-resistant fragments, mainly 10 to 70 kb in size. Native EsV DNA was also used as a substrate for gap-filling DNA synthesis. Restriction analysis revealed that essentially all of the 60 or more SacI restriction fragments became labeled but a few fragments were more intensely labeled than others. The EsV genome may contain a few extended single-stranded regions at fixed sites in addition to numerous single-stranded regions probably occurring at random and varying sites.

Chromosome Mapping

Conserved regulatory elements in the type I DNA topoisomerase gene promoters of mouse and man.

The gene for mammalian type I DNA topoisomerase is constitutively expressed, but also regulated by a number of external stimuli. We compared the nucleotide sequences of the human and the mouse topoisomerase I gene promoters because promoter elements, essential for basic as well as regulated gene expression, should be conserved during evolution. We found that proximal upstream sequences are highly conserved and include potential binding sites for ubiquitous transcription factors, a regulatory CRE site as well as two novel promoter elements that have been shown to be important for the expression of the human gene. The more distal parts of the upstream sequences are less well conserved but include two regions that are almost identical in the human and the mouse gene. One of these regions contains a binding site for a basic-helix-loop-helix/leucine-zipper protein, and the other contains an AT-rich element with the potential for DNA bending.

Animals

The human EPRS locus (formerly the QARS locus): a gene encoding a class I and a class II aminoacyl-tRNA synthetase.

Glutamyl-tRNA synthetase and prolyl-tRNA synthetase belong to different classes of aminoacyl-tRNA synthetases that are thought to have evolved along independent evolutionary pathways. However, both enzymes are on one polypeptide chain encoded by a single human gene, the EPRS locus, which is transcribed as one long mRNA. We report the structure of the human EPRS gene, which consists of 29 exons spread over at least 90 kb of genomic DNA. The exons, encoding the glutamyl-specific and the prolyl-specific parts of the enzyme, are each clustered in 10-kb sections located at opposite ends of the gene. These two exon clusters are separated by a long intervening DNA section with a number of exons, encoding functions that may be involved in the organization of the mammalian multienzyme synthetase complex. The upstream gene region shows structural features of a regulated gene, and preliminary experiments suggest that the gene is expressed at specific times in growth-stimulated cultured cells. We have localized the gene to the distal long arm of human chromosome 1 and to a corresponding site in mouse chromosome 1.

Amino Acid Sequence

Mouse genes encoding DNA topoisomerase I.

We have initiated a genetic analysis of the physiologically important enzyme type I DNA topoisomerase in mouse. The exon-intron structures of the 5' part and the 3' part of the active gene, Top-1, were determined and shown to be quite similar to those of the previously determined human gene TOP1. The active mouse gene was mapped to the distal Chromosome (Chr) 2. In addition, the mouse genome contains one truncated processed topoisomerase-I-related pseudogene (retroposon), Top-1ps, on Chr 16. The Top-1ps locus, together with the immunoglobulin-lambda-light-chain locus, defines an additional conserved linkage group common to murine Chr 16 and human Chr 22, the site of the human pseudogene TOP1P2. The mapping data suggest that the pseudogene was established before mammalian radiation. Structural features, shared by the mouse and the human pseudogene, support this possibility.

Animals

The P1 family: a new class of nuclear mammalian proteins related to the yeast Mcm replication proteins.

Monospecific antibodies against an oligopeptide, conserved among the Mcm class of yeast replication proteins, were used to screen a human cDNA library. Eight of the isolated cDNA clones have the potential to code for sections of proteins with high sequence similarities to the yeast proteins Mcm3 and Cdc46 from Saccharomyces cerevisiae and Cdc21 from S. pombe. Our results establish a novel and highly conserved family of nuclear proteins in mammalian cells.

Amino Acid Sequence

The promoter region of the human type-I-DNA-topoisomerase gene. Protein-binding sites and sequences involved in transcriptional regulation.

We examined the promoter of the human type-I-DNA topoisomerase gene (hTOP1) for regions protected against DNase I digestion by nuclear proteins from HeLa or from adenovirus-transformed 293 cells. We identified ten protected DNA sequences within 580 bp of DNA upstream of the transcriptional-start sites and one additional site, which is located between the two clusters of transcriptional-start sites. Several of these protein-binding sites have significant similarities to recognition sequences of known transcription factors including factors Sp1, octamer transcription factor, cAMP-responsive-element-binding protein (CREB/ATF), NF-kappa B and members of the Myc-related family of basic/helix-loop-helix/leucine-zipper proteins. Other protein-binding sites show less or no similarities to known consensus sequences. We investigated the physiological significance of these protein-binding sites using a set of deletion and nucleotide-exchange mutants. We conclude that the expression of the hTOP1 gene is regulated by a complex network of negatively and positively acting transcription factors.

Base Sequence

Nucleosome assembly during complementary DNA strand synthesis in extracts from mammalian cells.

Circular single-stranded phage M13 DNA is used as a template for complementary strand synthesis in cytosolic extracts from proliferating HeLa cells. DNA synthesis is initiated by one or maximally two priming events and typically leads to covalently closed double-stranded reaction products. When carried out in the presence of the nuclear chromatin assembly factor CAF-1, complementary strand synthesis is accompanied by nucleosome assembly. This novel system is very useful for the study of basic biochemical aspects concerning the assembly of nucleosomes. The activity of CAF-1 completely depends on complementary strand synthesis and acts stoichiometrically to promote the assembly of nucleosomes in a noncooperative manner. Apparently, CAF-1 activity is coupled to DNA synthesis via a structural feature of replicating DNA, most likely its partial single strandedness.

Bacteriophage M13

Genome structure of a virus infecting the marine brown alga Ectocarpus siliculosus.

We describe a procedure for the isolation of virus particles from the marine brown alga Ectocarpus siliculosus. Virus particles are composed of at least 13 different polypeptides, including two glycoproteins, and double-stranded DNA. A typical virus DNA preparation contains three fractions, namely linear DNA and circular DNA, each composed of about 320 kilobase pairs, as well as DNA fragments, 10 to 60 kilobase pairs in size. The large linear and the circular DNA contain single-stranded regions (average length: 2.9 kilobase). We propose that the native Ectocarpus virus genome is a circular DNA molecule whose double strand is interrupted by single-stranded regions. During the preparation procedure, the DNA circles tend to break at the single-stranded sites producing large linear as well as fragmented DNA.

DNA, Viral

A nucleosome assembly factor is a constituent of simian virus 40 minichromosomes.

Using in vitro replication assays, we compared native with salt-treated simian virus 40 minichromosomes isolated from infected cell nuclei. Minichromosomes from both preparations contain the full complement of nucleosomes, but salt treatment removes histone H1 and a fraction of nonhistone chromatin proteins. Both types of minichromosomes served well as templates for in vitro replication, but the structures of the replication products were strikingly different. Replicated salt-treated minichromosomes contained, on average, about half the normal number of nucleosomes as previously shown (T. Krude and R. Knippers, Mol. Cell. Biol. 11:6257-6267, 1991). In contrast, the replicated untreated minichromosomes were found to be densely packed with nucleosomes, indicating that an assembly of new nucleosomes occurred during in vitro replication. Biochemical and immunological data showed that the fraction of nonhistone chromatin proteins associated with native minichromosomes includes a nucleosome assembly activity that appears to be closely related to chromatin assembly factor I (S. Smith and B. W. Stillman, Cell 58:15-25, 1989). Furthermore, this minichromosome-bound nucleosome assembly factor is able to exert its activity in trans to replicating protein-free competitor DNA. Thus, native chromatin itself contains the activities required for an ordered assembly of nucleosomes during the replication process.

Animals

Comparison of replicative and non-replicative chromatin assembly pathways in HeLa cell extracts.

It has been reported that chromatin assembly in mammalian cell extracts depends exclusively or preferentially on ongoing DNA replication (Stillman, B. (1986) Cell 45, 555-565). More recently, this view has been challenged demonstrating that, in the same extracts, chromatin can also be formed efficiently in the absence of DNA replication (Gruss et al. (1990) EMBO J. 9, 2911-2922). The experiments, described in this communication, were performed to resolve this apparent contradiction. We found that there are at least two distinct in vitro pathways for chromatin assembly in HeLa cell extracts. The replicative pathway requires a nuclear protein, most likely identical with the chromatin assembly factor, described by Stillman (1986, Cell 45, 555-565), and the free soluble histones present in the cytosol of S phase cells. In contrast, a non-replicative pathway was identified that depends on isolated nuclear histones. As one component of the non-replicative assembly pathway we identified a cytosolic factor that was purified to apparent homogeneity and shown to be an acidic 50 kDa polypeptide. The isolated cytosolic 50 kDa protein efficiently promoted nucleosome assembly as demonstrated by one- and two-dimensional gel electrophoresis of in vitro packaged plasmid DNA.

Antigens, Polyomavirus Transforming