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B F Lang

Publications and source records attributed to B F Lang.

At least 55 records · Page 3Linked to original sources

Gene order comparisons for phylogenetic inference: evolution of the mitochondrial genome.

Detailed knowledge of gene maps or even complete nucleotide sequences for small genomes leads to the feasibility of evolutionary inference based on the macrostructure of entire genomes, rather than on the traditional comparison of homologous versions of a single gene in different organisms. The mathematical modeling of evolution at the genomic level, however, and the associated inferential apparatus are qualitatively different from the usual sequence comparison theory developed to study evolution at the level of individual gene sequences. We describe the construction of a database of 16 mitochondrial gene orders from fungi and other eukaryotes by using complete or nearly complete genomic sequences; propose a measure of gene order rearrangement based on the minimal set of chromosomal inversions, transpositions, insertions, and deletions necessary to convert the order in one genome to that of the other; report on algorithm design and the development of the DERANGE software for the calculation of this measure; and present the results of analyzing the mitochondrial data with the aid of this tool.

Biological Evolution↗

The transcription of DNA in chicken mitochondria initiates from one major bidirectional promoter.

Transcription start sites of chicken mitochondrial DNA have been mapped in the control region by direct sequencing of in vitro capped mitochondrial RNA species, by primer extension and by S1 nuclease protection analysis. Transcription of the heavy strand initiates predominantly at a site 156 nucleotides upstream of the tRNA(Phe) gene, i.e. about 135 nucleotides further upstream than the corresponding sites in amphibia and mammals. On the opposite strand, transcription starts predominantly one nucleotide removed from the site in the heavy strand. The L-strand position start site is similar to that found in other vertebrates. The chicken mitochondrial DNA control region thus contains one major transcriptional promoter, whose bidirectional capacity is similar to the situation in amphibia but which contrasts to the mainly unidirectional capacity of mammalian promoters. In chicken mitochondria, the sequence comprising the start sites is A + T rich and contains an almost perfect inverted repeat which can be folded into a cruciform structure. The heavy and light strand initiation sites are flanked on their respective 3' ends by an octanucleotide sequence matching those surrounding the start sites in Xenopus laevis (5'-ACPuTTATA-3'). This motif is found associated with the H-strand start sites in mouse but is not present in human nor bovine mitochondrial DNA promoters.

Animals↗

nirA, the pathway-specific regulatory gene of nitrate assimilation in Aspergillus nidulans, encodes a putative GAL4-type zinc finger protein and contains four introns in highly conserved regions.

The nucleotide sequence of nirA, mediating nitrate induction in Aspergillus nidulans, has been determined. Alignment of the cDNA and the genomic DNA sequence indicates that the gene contains four introns and encodes a protein of 892 amino acids. The deduced NIRA protein displays all characteristics of a transcriptional activator. A putative double-stranded DNA-binding domain in the amino-terminal part comprises six cysteine residues, characteristic for the GAL4 family of zinc finger proteins. An amino-terminal highly acidic region and two proline-rich regions are also present. The nucleotide sequences of two mutations were determined after they were mapped by transformation with overlapping DNA fragments, amplified by the polymerase chain reaction. nirA87, a mutation conferring noninducibility by nitrate and nitrite, has a -1 frameshift at triplet 340, which eliminates 549 C-terminal amino acids from the polypeptide. Under the assumption that the truncated polypeptide is stable, it comprises the zinc finger domain and the acidic region, which seem not sufficient for transcriptional activation. nirAd-106, an allele conferring nitrogen metabolite derepression of nitrate and nitrite reductase activity, includes two transitions, changing a glutamic acid to a lysine and a valine to an alanine, situated between a basic and a proline-rich region of the protein. Northern (RNA) analysis of the wild type and of constitutive (nirAc) and derepressed (nirAd) mutants show that the nirA transcript does not vary between these strains, being in all cases constitutively expressed. On the other hand, transcript levels of structural genes (niaD and niiA) do vary, being highly inducible in the wild type but constitutively expressed in the nirAc mutant. The nirAd mutant appears phenotypically derepressed, because the niaD and niiA transcript levels are overinduced in the presence of nitrate but are still partially repressed in the presence of ammonium.

Amino Acid Sequence↗

Histidine tRNA from chicken mitochondria has an uncoded 5'-terminal guanylate residue.

In an attempt to identify the transcription initiation sites in chicken mitochondrial DNA, RNAs capped in vitro using vaccinia guanylyl transferase and [alpha-32P] GTP were analyzed. The most abundant labeled transcript was identified by RNA sequencing as the mitochondrial tRNA(His). Sequence analysis also revealed that this tRNA contains an extra guanylate residue at its 5' end, characteristic of the histidine tRNA family. The respective genomic region was also cloned and sequenced. In contrast to bacteria and the mitochondria of fungi and plants, the extra G of chicken mitochondrial tRNA(His) is not encoded in the gene. Therefore, the guanylate residue must be added post-transcriptionally, as demonstrated for the nuclear tRNA(His) in yeast and Drosophila. Analysis of a capped tRNA(His) precursor of chicken mitochondria suggests that addition of the extra G occurs independently of 3' end maturation. Since in the chicken mitochondrial tRNA(His) the extra G can be efficiently labeled by the capping assay, it should possess a 5'-terminal di- or triphosphate, which contrasts to the 5'-terminal monophosphate proposed for the nuclear encoded tRNA(His). Our results imply that the ability of a mitochondrial RNA to be capped in vitro does not necessarily prove that it contains a transcription initiation site.

Animals↗

A rapid, high resolution DNA sequencing gel system.

We have developed a simple method which significantly increases the efficiency of manual DNA sequencing. This method increases both the ease of gel preparation and the quality of fragment resolution. Our system involves (i) casting of gels horizontally, without sealing around the plates; (ii) the use of a self-forming buffer gradient to stack bands in the lower part of the gel; (iii) separation of the samples on two 0.2-mm-thick acrylamide gels (4.5 and 4%) with overlapping readings; (iv) "nonsmiling" electrophoresis with very simple, self-made electrophoresis stands; and (v) prior to exposure in situ dry fixation of the gel matrix to the glass support without previous covalent binding of the gel. On average, we are able to read from nucleotide position 50 to position 600 without ambiguity.

Acrylamides↗

Putative chicken "muscle-specific 7 S RNA" is related to the mitochondrial ATPase 6 gene.

Sequence analysis of the mitochondrial ATPase 6 gene from chicken revealed that its 3' region is virtually identical with a chicken muscle-specific 7 S RNA which was reported to induce the expression of tissue-specific functions in blastoderm explants. Using chicken and quail cell lines depleted of mitochondrial DNA, we demonstrate that the 7 S RNA is encoded by the mitochondrial genome and not by nuclear (repetitive) DNA as suggested previously. Moreover, no 7 S RNA-homologous transcript of the expected length (about 400 bases) is detected, either in these cell lines or in heart and liver tissues. The only RNA species hybridizing with a 7 S RNA-specific probe is an abundant, 900 base long transcript of mitochondrial origin that we identify as the ATPase 8-ATPase 6 fused messenger. We suggest that the characterized muscle-specific 7 S RNA cDNA is derived from an unrelated contaminant in the blastoderm-inducing fraction.

Adenosine Triphosphatases↗

L-serine degradation in Escherichia coli K-12: cloning and sequencing of the sdaA gene.

A new mutant of Escherichia coli K-12 unable to grow with L-serine, glycine, and L-leucine has been isolated by lambda plac Mu insertion and shown to be deficient in L-serine deaminase activity. The corresponding gene, sdaA, has been cloned from a prototrophic strain, and the clone has been characterized and sequenced. The evidence is consistent with the hypothesis that sdaA is the structural gene for L-serine deaminase. However, other possibilities are also considered. No significant homology with previously reported DNA or protein sequences was detected.

Amino Acid Sequence↗

Two distinct mechanisms for deletion in mitochondrial DNA of Schizosaccharomyces pombe mutator strains. Slipped mispairing mediated by direct repeats and erroneous intron splicing.

Mutator strains of the fission yeast Schizosaccharomyces pombe produce mitochondrial respiratory deficient mutants at a high rate, and roughly 20% of these mutants carry deletions in the range of 50 to 1500 base-pairs. To elucidate the mechanism of deletion we have sequenced ten deletion mutants in the mosaic gene encoding apocytochrome b (cob) and three in the split gene coding for the first subunit of cytochrome c oxidase (cox1). Of 13 deletions, ten are correlated with the presence of direct repeats, which could promote deletions by slipped mispairing during DNA replication. In some of these mutants, the termini are located in possible DNA secondary structures. In three independently isolated mutants with identical deletions in the cob gene, the 5' deletion endpoint coincides with the 3' splice point of the intron, whereas the 3' endpoint of the deletion exhibits pronounced homology with the 5' splice point of the intron. This result suggests that these deletions might be initiated by erroneous RNA splicing.

Base Sequence↗

The relationship between RNA catalytic processes.

Proposals that an RNA-based genetic system preceded DNA, stem from the ability of RNA to store genetic information and to promote simple catalysis. However, to be a valid basis for the RNA world, RNA catalysis must demonstrate or be related to intrinsic chemical properties which could have existed in primordial times. We analyze this question by first classifying RNA catalysis and related processes according to their mechanism. We define: (A) the disjunct nucleophile class which leads to 5'-phosphates. These include Group I and II intron splicing, nuclear mRNA splicing and RNase P reactions. Although Group I introns and its excision mechanism is likely to have existed in primordial times, present-day examples have arisen independently in different phyla much more recently. Comparative methodology indicates that RNase P catalysis originated before the divergence of the major kingdoms. In addition, all disjunct nucleophile reactions can be interrelated by a proposed mechanism involving a distant 2-OH nucleophile. (B) the conjunct nucleophile class leading to 3'-phosphates. This class is composed of self-cleaving RNAs found in plant viruses and the newt. We propose that tRNA splicing is related to this mechanism rather than the previous one. The presence of introns in tRNA genes of eukaryotes and archaebacteria supports the idea that tRNA splicing predates the divergence of these cell types.

Animals↗

Structural conservation among three homologous introns of bacteriophage T4 and the group I introns of eukaryotes.

Three group I introns of bacteriophage T4 have been compared with respect to their sequence and structural properties. The introns include the td intervening sequence, as well as the two newly described introns in the nrdB and sunY genes of T4. The T4 introns are very closely related, containing phylogenetically conserved sequence elements that allow them to be folded into a core structure that is characteristic of eukaryotic group IA introns. Similarities extend outward to the exon sequences surrounding the three introns. All three introns contain open reading frames (ORFs). Although the intron ORFs are not homologous and occur at different positions, all three ORFs are looped-out of the structure models, with only the 3' ends of each of the ORFs extending into the secondary structure. This arrangement invites interesting speculations on the regulation of splicing by translation. The high degree of similarity between the T4 introns and the eukaryotic group I introns must reflect a common ancestry, resulting either from vertical acquisition of a primordial RNA element or from horizontal transfer.

Animals↗

A mechanism for the RNA-catalyzed formation of 5'-phosphates. The origin of nucleases.

Processes involved in RNA metabolism can be distinguished by the nature of the sugar phosphate substitution (5' or 3') in intermediates or products. Although it is known that 3'-phosphates are produced via a 2',3'-cyclic phosphate intermediate, formed by nucleophilic attack on the phosphodiester bond by the adjacent 2'-OH, little is known about the production of 5'-phosphate products. We attribute 5'-phosphate intermediates and products to a preferred configuration of the pentavalent phosphorus intermediate resulting from the attack of a distant nucleophile. This intermediate is favored, since its formation is possible without major conformational changes in the molecule. Based on the two products of nucleic acid hydrolysis we define: the conjunct and disjunct nucleophile mechanisms, each of which would have independent origins. Indeed, the products of an overwhelming number of nucleases and RNases are consistent with one of these mechanistic models demonstrating that the origin of these enzymes are deeply rooted in the intrinsic chemistry of phosphate esters.

Catalysis↗

The mitochondrial genome of the fission yeast, Schizosaccharomyces pombe. Sequence of the large-subunit ribosomal RNA gene, comparison of potential secondary structure in fungal mitochondrial large-subunit rRNAs and evolutionary considerations.

The DNA sequence of the mitochondrial large subunit (LSU) rRNA gene of Schizosaccharomyces pombe has been determined. In the direction of transcription, this gene is located between the gene coding for subunit II of cytochrome oxidase and a cluster of three tRNA genes. Both the 5' and 3' ends of the LSU rRNA have been mapped precisely: whereas the 5' end can be assigned unambiguously to a single nucleotide position, multiple 3' ends occur within a run of eight U residues. Based on these results, the S. pombe LSU rRNA is between 2818 and 2826 nucleotides long. A sequence motif immediately upstream of the 5' end of the gene resembles that of the mitochondrial promoter motif of Saccharomyces cerevisiae; however, the sequence at the 3' end of the gene is not similar to any of the motifs implicated as processing signals in other mitochondrial systems. Unlike its counterparts in S. cerevisiae and Aspergillus nidulans, the mitochondrial LSU rRNA gene of S. pombe does not contain an intron. Comparison of potential secondary structure among the three fungal mitochondrial and Escherichia coli LSU rRNAs has defined a common secondary structure core, held together by long-range hydrogen-bonding interactions. A 5.8S-like structure is present within the 5'-terminal region of all three fungal mitochondrial LSU rRNAs; in contrast, no 4.5S-like structure is evident at the 3' end of these molecules. An evolutionary evaluation of highly conserved regions of a small set of LSU rRNA sequences suggests that S. pombe mitochondria diverged from a mitochondrial proto-fungal branch earlier than either A. nidulans or S. cerevisiae mitochondria. This result, considered in conjunction with the patterns of genome organization and codon usage in fungal mitochondria, points to a slower evolutionary clock speed in the mitochondrial genome of S. pombe.

Base Sequence↗

A yeast nuclear gene, MRS1, involved in mitochondrial RNA splicing: nucleotide sequence and mutational analysis of two overlapping open reading frames on opposite strands.

We have cloned a 1.6-kb fragment of yeast nuclear DNA, which complements pet- mutant MK3 (mrs1). This mutant was shown to be defective in mitochondrial RNA splicing: the excision of intron 3 from the mitochondrial COB pre-RNA is blocked. The DNA sequence of the nuclear DNA fragment revealed two open reading frames (ORF1 with 1092 bp; ORF2 with 735 bp) on opposite strands, which overlap by 656 bp. As shown by in vitro mutagenesis, ORF1, but not ORF2, is responsible for complementation of the splice defect. Hence, ORF1 represents the nuclear MRS1 gene. Disruption of the gene (both ORFs) in the chromosomal DNA of the respiratory competent yeast strain DBY747 (long form COB gene) leads to a stable pet- phenotype and to the accumulation of the same mitochondrial RNA precursors as in strain MK3. The amino acid sequence of the putative ORF1 product does not exhibit any homology with other known proteins, except for a small region of homology with the gene product of another nuclear yeast gene involved in mitochondrial RNA splicing, CBP2. The function of the MRS1 (ORF1) gene in mitochondrial RNA splicing and the significance of the overlapping ORFs in this gene are discussed.

Base Sequence↗

A collection of programs for nucleic acid and protein analysis, written in FORTRAN 77 for IBM-PC compatible microcomputers.

We have developed a collection of programs for manipulation and analysis of nucleotide and protein sequences. The package was written in Fortran 77 on a Sirius1/Victor microcomputer which can be easily implemented on a large variety of other computers. Some of the programs have already been adapted for use on a Vax 11. Our aim was to develop programs consisting of small, comprehensible and well documented units that have very fast execution times and are comfortably interactive. The package is therefore suitable for individual modifications, even with little understanding of computer languages.

Amino Acid Sequence↗

The mitochondrial genome of the fission yeast Schizosaccharomyces pombe. The cytochrome b gene has an intron closely related to the first two introns in the Saccharomyces cerevisiae cox1 gene.

The DNA sequence of the cob region of the Schizosaccharomyces pombe mitochondrial DNA has been determined. The cytochrome b structural gene is interrupted by an intron of 2526 base-pairs, which has an open reading frame of 2421 base-pairs in phase with the upstream exon. The position of the intron differs from those found in the cob genes of Saccharomyces cerevisiae, Aspergillus nidulans or Neurospora crassa. The Sch. pombe cob intron has the potential of assuming an RNA secondary structure almost identical to that proposed for the first two cox1 introns (group II) in S. cerevisiae and the p1-cox1 intron in Podospora anserina. It has most of the consensus nucleotides in the central core structure described for this group of introns and its comparison with other group II introns allows the identification of an additional conserved nucleotide stretch. A comparison of the predicted protein sequences of group II intronic coding regions reveals three highly conserved blocks showing pairwise amino acid identities of 34 to 53%. These regions comprise over 50% of the coding length of the intron but do not include the 5' region, which has strong secondary structural features. In addition to the potential intron folding, long helical structures involving repetitive sequences can be formed in the flanking cob exon regions. A comparison of the Sch. pombe cytochrome b sequence with those available from other organisms indicates that Sch. pombe is evolutionarily distant from both budding yeasts and filamentous fungi. As was seen for the Sch. pombe cox1 gene (Lang, 1984), the cob exons are translated using the universal genetic code and this distinguishes Sch. pombe mitochondria from all other fungal and animal mitochondrial systems.

Amino Acid Sequence↗

The mitochondrial genome of the fission yeast Schizosaccharomyces pombe. 7. Continuous gene for apocytochrome b in strain EF1 (CBS 356) and sequence variation in the region of intron insertion in strain ade 7-50h.

The third BamHI fragment, containing most of gene for apocytochrome b, has been cloned and sequenced in the Schizosaccharomyces pombe strain EF1 (CBS 356). In contrast to strain ade 7-50h- (50) from the Leupold collection, in which the gene is interrupted by an intron of group II (Lang et al. 1984), the homologous gene in strain EF1 is continuous. This demonstrates that the intron in the gene for apocytochrome b is optional. Aligning the EF1 sequence with the homologous regions in strain 50, 2 base pair changes were found in the leader and 14 in the coding region. These changes led to 12 altered triplets, but 9 of them specify the same amino acid. Seven base changes were clustered within a stretch of 30 base pairs in the region in which the intron is inserted in strain 50. Five out of the resulting six triplet changes were also silent. These sequence variations around the highly conserved splice point region may be linked to the insertion or excision of the intron.

Ascomycota↗

Probing fungal mitochondrial evolution with tRNA.

Sequence data are now available for almost the entire complement of mitochondrial rRNAs from five fungi: Schizosaccharomyces pombe, Saccharomyces cerevisiae, Toropulis glabrata, Aspergillus nidulans and Neurospora crassa. Analysis of these data show that the five mitochondria can be related to a common ancestor. The unusually high similarity between some S. pombe mt tRNAs may be due to a process similar to gene conversion. Using the number of differences between tRNA pairs as a measure of the evolutionary rate the yeast-S. pombe branch has paradoxically a high nuclear rate and a low mt rate of evolution as compared with other branches in the phylogenetic tree. Finally the position of mt tRNA genes in S. pombe is abnormally distinct from gene orders in other mitochondria. All of the above factors must be taken into account when describing the relationship between these mitochondria.

Base Sequence↗