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An unusual genetic code in nuclear genes of Tetrahymena.

We have cloned and partially sequenced two histone H3 genes of Tetrahymena thermophila. The DNA sequences strongly suggest that both genes are active in the vegetatively growing cell. Comparison of the derived amino acid sequences of these two genes with the actual sequence of Tetrahymena histone H3 results in the surprising conclusion that TAA codes for glutamine. This represents the first demonstration of a coding function for this termination codon of the "universal" code. This observation has important implications for the evolution of ciliates and of the genetic code.

Amino Acid Sequence

Non-coding DNA in macronuclear chromosomes of hypotrichous ciliates.

Massive elimination of sequences occurs in the development of the macronucleus of hypotrichous ciliates. The surviving sequences are presumed to have functions in the macronucleus; what little is known about non-coding macronuclear sequences is reviewed. The 1.7 kbp macronuclear chromosome that carries a histone H4 gene consists primarily of non-coding DNA 5' of the histone gene. This region is shown by sequence comparison to carry several perfectly conserved sequence blocks up to 14 bp long, scattered amongst regions which have evolved greatly since the divergence of Oxytricha nova and Stylonychia lemnae. This result is consistent with the suggestion of Harper and Jahn [Harper, D. S. & Jahn, C. L. 1989. Actin, tubulin and H4 histone genes in three species of hypotrichous ciliated protozoa. Gene, 75:93-107] that this large non-coding 5' region may be involved in the transcriptional regulation of the histone H4 gene carried on the 1.7 kbp chromosome. Very little is known about transcriptional control in hypotrichs; identification of conserved non-coding sequences of orthologous hypotrich genes promises to provide clues to potential cis-acting control signals.

Animals

Unusual structure, evolutionary conservation of non-coding sequences and numerous pseudogenes characterize the human H3.3 histone multigene family.

The genomic organization of the replication-independent, basally expressed, human H3.3 gene is atypical of traditional histone gene organization. The gene contains 3 introns totalling 7.8 kb and unusual direct repeats flank all three intron-exon splice junctions. The transcription initiation site was mapped by S1 nuclease protection analysis and confirms that cDNA clones previously reported were full length. Sequence similarities between regions at the 5' and 3' termini of this human gene and a chicken H3.3 gene lead us to propose that either the previous assignments of termini of the chicken gene are in error, or there are alternative transcription start and polyadenylation sites. The 85% base matching of human and chicken H3.3 3'UTR sequences for 520 bases is unprecedented among homolog 3'UTR segments, especially considering that these species are separated by over 250 Myr of evolution. We also present the sequence of three related processed human H3.3 pseudogenes and provide evidence demonstrating that most of the 20 to 30 copies of the H3.3 gene within the human genome are in fact processed pseudogenes.

Amino Acid Sequence

Human H1 histones: conserved and varied sequence elements in two H1 subtype genes.

The genes coding for two different human H1 histones were isolated, and the primary structures were deduced from the nucleotide sequences. The genes differ from each other and from any other vertebrate H1 structure described until now. The differences occur mainly within the N- and C-terminal H1 domains, whereas the central part of the protein is highly conserved. Within the flanking domains, however, some sequence elements are shared by different H1 subtype genes. An octapeptide, which has been described in C-terminal domains of most H1 histones, is found in both H1 subtypes. The nucleotide sequences of the flanking portions of both H1 genes show conserved motifs at established regulatory sites, but otherwise these 3' and 5' noncoding sequences of both genes differ substantially.

Amino Acid Sequence

A Drosophila RNA polymerase II transcription factor contains a promoter-region-specific DNA-binding activity.

Drosophila RNA polymerase II requires at least two chromatographically distinct transcription factors (designated A and B) to initiate transcription accurately in vitro. We describe the partial purification and concentration of one of these transcription factors, the B factor. Footprint analysis of the B fraction demonstrated the presence of a sequence-specific DNA-binding component in the transcription factor preparation. This component binds specifically to a 65 bp region of DNA surrounding the start point of transcription of the histone H3, H4, and actin 5C genes. Included in this binding region is the TATA box, the start point of transcription, and a portion of the leader region. The pattern of protection from DNAase I cleavage on the coding strand of the histone H3 gene is asymmetric with regard to the complementary noncoding strand. Sequence-specific binding of the B fraction occurs in the apparent absence of RNA polymerase II. The potential function of the binding component in the initiation of transcription by RNA polymerase II is discussed.

Animals

Hatching in the sea urchin Lytechinus pictus is accompanied by a shift in histone H4 gene activity.

There is a distinct shift in histone mRNA synthesis at approximately 11--12 hr of sea urchin emhryogenesis, coincident with embryonic hatching. The synthesis of the blastula type (early) histone mRNAs gradually ceases at this stage and a new class of posthatching (late) histone mRNAs is produced. Briefly labeled early and late mRNAs were isolated and identified by means of RNA-DNA hybridization to different cloned histone genes. The late histone HI mRNA is approximately 40 nucleotides longer than the early HI mRNA. The H3, H2A, H2B, and H4 late mRNAs are 15--40 nucleotides shorter than their early counterparts. We present sequence evidence to show that the genes coding for the late H4 mRNA are a separate class from those that code for the early histone H4 message.

Animals

Expression of histone genes in a G1-specific temperature-sensitive mutant of the cell cycle.

The expression of genes coding for the four core histones (H2A, H2B, H3, and H4) was studied in tsAF8 cells. These baby hamster kidney-derived cells are a temperature-sensitive (ts) mutant of the cell cycle that arrest in G1 at the restrictive temperature. When serum-deprived tsAF8 cells are stimulated with serum, they enter the S phase at the permissive temperature of 34 degrees C, but are blocked in G1 at the nonpermissive temperature of 39.6 degrees C. Northern blot analysis using cloned human histone DNA probes detected only very low levels of histone RNA either in quiescent tsAF8 cells or in cells serum stimulated at the nonpermissive temperature for 24 h. Cellular levels of histone RNA were markedly increased in cells serum stimulated at 34 degrees C for 24 h. Temperature shift-up experiments after serum stimulation of quiescent populations showed that the amount of histone RNA was related to the number of cells that entered the S phase. Those cells that synthesized histone RNA and entered the S phase were capable of dividing. This is the first demonstration in a mammalian G1-specific ts mutant that the expression of H2A, H2B, H3, and H4 histone genes depends on the entry of cells into the S phase of the cell cycle.

Animals

The histone H1-lacZ' fusion protein produced in Escherichia coli binds to the 5'-TTGGCAnnnTGCCAA-3' motif on DNA.

The coding region of the chicken histone H1.03 gene was cloned to a bacterial expression vector, and the 291-amino acid H1-beta-galactosidase fusion protein was isolated after induction with IPTG. The fusion protein recognizes the 5'-TTGGCAnnnTGCCAA-3' motif on DNA. The H1 globular domain was initially shown to be responsible for the sequence-specific binding by functional deletion analysis. This function may be indispensable for the role of H1 as a determinant of nucleosome positioning and as a eukaryotic repressor.

Animals

Structure and in vitro transcription of a human H4 histone gene.

A human H4 histone gene was isolated and the nucleotide sequences of the mRNA coding as well as the 5' and 3' flanking regions were determined. No intervening sequences were found in this gene. A series of sequences which have been assigned putative regulatory roles in histone genes and/or in other genes were identified both upstream and downstream from the H4 histone protein coding region. Deletion mutants were constructed by BAL-31 nuclease digestion of sequences in the 5' flanking region of this H4 histone gene and were assayed in an in vitro transcription system. No regions upstream from the TATA box were required for site specific initiation in vitro. Data are presented which suggest that sequences located downstream from the 3' end of the coding region may influence the in vitro transcription of this human H4 histone gene.

Amino Acid Sequence

Nuclear matrix proteins bind very tightly to specific regions of the chicken histone H5 gene.

The nuclear matrix is operationally defined as the structure remaining after nuclease-digested nuclei are extracted with high concentrations of salt. The nuclear matrix is thought to have a role in organizing higher order chromatin into loop domains. We determined whether specific regions of the histone H5 gene were very tightly bound to protein of erythrocyte and liver nuclear matrices in vitro. We demonstrate that DNA fragments spanning sequences 5' to the promoter and the 3' enhancer region of the histone H5 gene, but not DNA fragments spanning the promoter, were very tightly bound to protein of nuclear matrices of erythrocytes and liver. The nuclear matrix consists of internal nuclear matrix and nuclear pore-lamina complex. Recently, we demonstrated that histone deacetylase could be used as a marker enzyme of the internal nuclear matrix. We demonstrate that nuclear pore-lamina complex preparations that were depleted of histone deacetylase activity, and thus of internal nuclear matrix, retained the protein that bound very tightly to the beta-globin and histone H5 enhancers. These results provide evidence that specific regions of the histone H5 gene are very tightly bound to nuclear pore-lamina complex protein.

Animals

Occurrence of the low-mobility H1 histones subfraction in embryonic, differentiated, and neoplastic tissues of the Syrian hamster.

Electrophoretically slow H1 histone subfractions with mobilities identical to that of the subfraction found in the Kirkman-Robbins hamster hepatoma chromatin have been shown to be present in 12-day hamster embryos and in a sarcoma-type hamster tumor induced by SV40. No subfractions of such mobility were found in hamster liver, regenerating liver, thymus, spleen, and a fast-growing transplantable amelanotic hamster melanoma. A suggestion is made that some defective mechanisms of differentiation may affect the regulation of expression of the genes coding for the H1 histone subfractions. The same mechanisms may possibly but not necessarily be connected with the molecular events leading to neoplastic growth.

Animals

Retropseudogenes for human chromosomal protein HMG-17.

The human genome contains multiple copies of sequences homologous to the cDNA coding for non-histone chromosomal protein HMG-17. To study the mechanism of generation and dispersion of the HMG-17 multigene family a human genomic library was screened and 70 clones isolated and studied by Southern transfer and restriction site analysis. The results suggest that most of the clones contain unique sequences. Sequence analysis of two genomic clones indicates that they contain elements typical of processed retropseudogenes. Even though both sequences contained open reading frames the sequences lacked introns, were flanked by short, direct repeats and lacked elements associated with functional genes. The sequences of the two pseudogenes were 85% homologous to each other and each was 90% homologous to the human cDNA. Based on the sequence difference in the open reading frame between the pseudogenes and the cDNA it can be estimated that the sequences arose approximately ten million years ago from a common precursor. The present paper, which is the first study on genes coding for this nucleosomal binding protein, indicates that the HMG-17 multigene family is the largest known human retropseudogene family.

Base Sequence

A model of evolutionary base substitutions and its application with special reference to rapid change of pseudogenes.

A model of evolutionary base substitutions that can incorporate different substitutional rates between the four bases and that takes into account unequal composition of bases in DNA sequences is proposed. Using this model, we derived formulae that enable us to estimate the evolutionary distances in terms of the number of nucleotide substitutions through comparative studies of nucleotide sequences. In order to check the validity of various formulae, Monte Carlo experiments were performed. These formulae were applied to analyze data on DNA sequences from diverse organisms. Particular attention was paid to problems concerning a globin pseudogene in the mouse and the time of its origin through duplication. We obtained a result suggesting that the evolutionary rates of substitution in the first and second codon positions of the pseudogene were roughly 10 times faster than those in the normal globin genes; whereas, the rate in the third position remained almost unchanged. Application of our formulae to histone genes H2B and H3 of the sea urchin showed that, in each of these genes, the rate in the third codon position is tremendously higher than that in the second position. All of these observations can easily and consistently be interpreted by the neutral theory of molecular evolution.

Animals

Structure of a cluster of mouse histone genes.

The four mouse histone genes (2 H3 genes, an H2b gene and an H2a gene) present in a cloned 12.9 kilobase fragment of DNA have been completely sequenced including both 5' and 3' flanking regions. These genes are expressed in cultured mouse cells and the 3' and 5' ends of the mRNA have been determined by S1 nuclease mapping. These genes code for a minor fraction of the histone mRNAs expressed in cultured mouse cells. They comprise at most 5-8% of the total histone mRNA of each type. The two H3 genes code for H3.2 and H3.1 histone proteins, while the H2b gene codes for an H2b.1 protein with a single amino acid change (val-leu) at position 18. Only the 3' portion of the H2a gene is contained in the clone and there is an amino acid change (alanine-proline) at position 126. Comparison of the 5' and 3' flanking sequences reveals a conserved sequence at the 3' end of the mRNA which forms a hairpin loop structure. The codon usage in the genes is non-random and there has been no discrimination against CG doublets in the coding region of the genes.

Amino Acid Sequence

Silent nucleotide substitutions during evolution.

Silent nucleotide substitutions in evolution are found by comparing homologous sequences of DNA from different organisms. Silent changes are common in the third bases of codons, so that no changes takes place in the specified amino acid. Silent changes average about half of the total nucleotide substitutions during evolution of protein-coding regions of genes. Nucleotide substitutions also take place during evolution in non-coding regions of DNA, such as in intervening sequences and in sequences that precede and follow codon regions in genes. Deletions and additions from events of recombination, in addition to nucleotide substitutions, are common in these non-coding regions.

Animals