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Biomedical subjects

F Richaud

Publications and source records attributed to F Richaud.

At least 19 recordsLinked to original sources

[Sex genetics].

The sex gene SRY has recently been characterized after years of research during which the candidate genes HY and ZFY were excluded. SRY does have all the characteristics expected of the sex gene: it is located on chromosome Y of all mammals, including man; it is specifically expressed in male gonads during early embryonic development mutations and deletions have been found in 46,XY women with gonadal dysgenesis; the Sry gene is present in the vast majority of XX men and finally, transgenic experiments in the mouse have shown that Sry reverses the sex of XX mice. All this demonstrates that SRY is truly the sex gene, but some abnormalities of sex determination in humans remain shrouded in mystery. There are 46,XX men who do not carry the sex gene, and some 46,XX SRY positive true hermaphrodites in whose gonads ovarian and testicular tissues coexist. Finally, SRY is apparently normal in the majority of pure gonadal dysgenesis.

Crossing Over, Genetic↗

XY sex reversal associated with a nonsense mutation in SRY.

Sex determination in humans is mediated through the expression of a testis-determining gene on the Y chromosome. In humans, a candidate gene for the testis-determining factor (TDF) that encodes a protein with a putative DNA-binding motif and has been isolated is termed SRY. Here we describe an XY sex-reversed female with pure gonadal dysgenesis who harbors a de novo nonsense mutation in the SRY open reading frame (SRY-orf). This single-basepair substitution results directly in the formation of a termination codon in the putative SRY DNA-binding motif, presumably leading to a nonfunctional gene product. This brings the number of reported XY sex-reversed females with de novo mutations in the known SRY-orf to three, each occurring in the putative DNA-binding domain. This provides further evidence to support SRY being TDF in humans and also indicates the functional importance of the putative DNA-binding domain of the SRY protein.

Base Sequence↗

Familial case with sequence variant in the testis-determining region associated with two sex phenotypes.

The human Y chromosome encodes a testis-determining factor (TDF) which is responsible for initiating male sex determination. Recently a region of the Y chromosome (SRY) was identified as part of the TDF gene. We have identified a three-generation family (N) in which all XY individuals have a single base-pair substitution resulting in a conservative amino acid change in the conserved domain of the SRY open reading frame. Three individuals are XY sex-reversed females, and two are XY males. Several models are proposed to explain association between a sequence variant in SRY and two sex phenotypes.

Adolescent↗

Mini-Mu transduction: cis-inhibition of the insertion of Mud transposons.

Mud (mini-Mu) transposons are defective phage Mu genomes that conserve the Mu ends. The transduction of Mud transposons is strictly dependent on Mu complementation, inefficient, and affected by modifications in the Mud internal sequences. The transduction of Mud transposons depends on transposition, which appears to be low, relative to wild-type Mu. Insertions of Mud into a plasmid can be frequently recovered among transductants; new Mud insertions into plasmids that already have both Mu ends, or just one, are rarely found. This suggests that the presence of Mu ends "immunizes" the plasmid against further insertion. This phenomenon may be similar to the transposition immunity of Tn3.

Bacteriophage mu↗

Multiple mutations in the transferred regions of the Agrobacterium rhizogenes root-inducing plasmids.

Agrobacterium rhizogenes induces root formation at the site of inoculation in plants and inserts fragments of its Ri plasmid into the plant nuclear DNA. The transferred region (T-DNA) of the Ri plasmid of the A. rhizogenes strain A4 is made of two fragments, namely TL and TR; the latter harbors a sequence homology with the tms loci (responsible for auxin synthesis) of A. tumefaciens. On Daucus carota slices, single insertion mutations on the TL region of A. rhizogenes do not confer a mutant phenotype while an insertion-deletion in the TR region do confer a Basatt phenotype. Six double mutants with a single insertion in the TL region and the same deletion-insertion of the TR region were constructed. Three of these double mutants were avirulent on D. carota which indicates that in A. rhizogenes A4 the TL and the TR regions cooperate to confer a full infectious phenotype.

DNA Transposable Elements↗

Construction and uses of a new transposable element whose insertion is able to produce gene fusions with the neomycin-phosphotransferase-coding region of Tn903.

We describe the construction of a transposable element derived from the Mu phage that upon insertion is able to create a gene fusion between the region of Tn903 coding for neomycin phosphotransferase (NPT I), which confers resistance to aminoglycosides including kanamycin (KmR), neomycin and G418, and the control elements of the gene where the insertion occurs. A chloramphenicol (Cm) transacetylase gene (cat) that confers resistance to Cm is present in the transposon so that transposition events can be monitored even when no active fusions with the nptI coding region occur. The transposase gene is deleted and, therefore, this transposon is perfectly stable upon insertion. The properties of this new transposable element were studied by obtaining gene fusions between the Escherichia coli L-arabinose operon and 'nptI gene. In some of them the KmR phenotype is induced by arabinose. Insertions of this element in cloned fragments of the T-DNA region of Agrobacterium rhizogenes were also isolated. Some of them confer a KmR phenotype upon its E. coli carriers, which indicates that portions of the T-DNA are expressed in these cells.

Base Sequence↗

Chromosomal location and nucleotide sequence of the Escherichia coli dapA gene.

In Escherichia coli, the first enzyme of the diaminopimelate and lysine pathway is dihydrodipicolinate synthetase, which is feedback-inhibited by lysine and encoded by the dapA gene. The location of the dapA gene on the bacterial chromosome has been determined accurately with respect to the neighboring purC and dapE genes. The complete nucleotide sequence and the transcriptional start of the dapA gene were determined. The results show that dapA consists of a single cistron encoding a 292-amino acid polypeptide of 31,372 daltons.

Base Sequence↗

Pectate lyase gene regulatory mutants of Erwinia chrysanthemi.

The pelB gene, which encodes one of the five pectate lyase isoenzymes of Erwinia chrysanthemi 3937, was mutagenized with a mini-Mu transposable element that can form gene fusions to the neomycin phosphotransferase-encoding region. Secondary mutants resistant to kanamycin in the absence of polygalacturonate, an inducer of wild-type pectate lyase activities, were selected. Such mutants produced other pectate lyase isoenzymes in the absence of the inducer.

Erwinia↗

lacZ gene fusions and insertion mutagenesis in the TL-region of Agrobacterium rhizogenes Ri plasmid.

Agrobacterium rhizogenes induces root formation and inserts a fragment of its plasmid into the genome of infected plants. A part of the transferred region (TL-region) of the Ri plasmid of A. rhizogenes strain A4 was cloned in pBR322. Insertions of the Escherichia coli lacZ coding region into the hybrid plasmids were made in vivo using mini-Mu-duction. Two mini-Mus were used, one with the Mu A and B transposase genes (MudII1681) and the other without (MudII1734). Two inserts which result in E. coli lacZ expression where shown to be located in the T-DNA region. This indicates that portions of the T-DNA are capable of expression in bacteria. When these two hybrid plasmids were transformed into Agrobacterium only the one harboring MudII1734 insert gave transformants which correspond to homologous recombination. These results indicate that gene fusion and insertion directed mutagenesis can be simultaneously obtained with this mini-Mu and could be used to study Agrobacterium gene expression.

Bacterial Proteins↗

Regulation of expression and nucleotide sequence of the Escherichia coli dapD gene.

Regulation of the Escherichia coli dapD gene involved in diaminopimelate and lysine biosynthesis was unknown as no convenient enzymatic assay was available until recently. This gene was cloned into pBR322 from a lambda transducing phage; its complete nucleotide sequence was established. This sequence shows that the dapD gene is composed of a single cistron encoding a 274-amino acid polypeptide, Mr 30,040. Enzymatic activity measurements show that this gene encodes the tetrahydrodipicolinate N-succinyltransferase which catalyzes the third step of the specific lysine-diaminopimelate pathway. The transcriptional start of the dapD gene was localized; the identified promoter signals are weak compared to those from the E. coli promoter consensus sequence. The dapD gene-coding sequence is followed by a typical rho-independent transcriptional termination sequence. A study using an operon fusion constructed in vitro between the dapD promoter and the galK structural gene indicated that dapD gene expression is repressed by lysine; no attenuation-like sequence can be found to account for this regulation. At the present time, out of the 9 genes involved in diaminopimelate and lysine biosynthesis, 6 are known to be lysine regulated.

Acyltransferases↗

Nucleotide sequence and expression of the Escherichia coli dapB gene.

The Escherichia coli dapB gene encodes dihydrodipicolinate reductase. This enzyme is part of the diaminopimelate-lysine pathway, and its synthesis is repressed by lysine. The dapB gene was cloned into pBR322 from a transducing lambda bacteriophage, its complete nucleotide sequence established, and the transcriptional start localized. The DNA sequence predicts that the dapB gene codes for a 273-amino acid polypeptide, Mr 28,798. No attenuation-type sequence can be found between the mRNA start and the coding sequence. The dapB promoter signals appear to be weak as compared to RNA polymerase consensus sequences. Nevertheless an efficient in vivo synthesis of beta-galactosidase was obtained when the lac operon was inserted in vitro in the dapB gene, downstream of the dapB regulatory signals. Further studies were performed on an in-frame gene fusion constructed in vitro between the dapB and the lacZ genes. They indicated that repression by lysine is exerted on a DNA region restricted to a 153-base pair fragment with only 102 nontranscribed nucleotides. Finally, dapB gene expression showed a gene dosage effect which suggests that it is not controlled by an element present in limiting amounts in the cell.

Amino Acid Sequence↗

Regulation of diaminopimelate decarboxylase synthesis in Escherichia coli. I. Identification of a lysR gene encoding an activator of the lysA gene.

The synthesis of diaminopimelate decarboxylase, which catalyzes the decarboxylation of diaminopimelate into lysine, is known to be repressed by lysine and induced by diaminopimelate in Escherichia coli K12. Until now only mutations in lysA, the structural gene for diaminopimelate decarboxylase, have been described that lead to a Lys- phenotype. A set of plasmids carrying adjacent inserts of the lysA region was constructed and employed to transform different Lys- mutants. The complementation pattern observed and the corresponding expression of the lysA gene show that in fact the Lys- phenotype can be obtained by mutations in two different and closely linked loci: one being the lysA structural gene, and the other called lysR. We propose that the lysR gene encodes a positive effector required for the full expression of the lysA gene. The synthesis of a hybrid lysA-lacZ protein constructed in vitro was observed to be decreased dramatically in lysR mutants. Moreover, all the regulatory features were lost, indicating that the LysR activator is necessary for the regulation of lysA expression. The gene order is thyA lysA lysR clockwise around 61 minutes on the chromosome, lysA being transcribed counter-clockwise.

Bacterial Proteins↗

Regulatory pattern of the Escherichia coli lysA gene: expression of chromosomal lysA-lacZ fusions.

The regulation of lysA which encodes the last enzyme for lysine biosynthesis in Escherichia coli, diaminopimelic acid-decarboxylase, was studied by using lysA-lacZ fusions. Our results indicate an absolute requirement for the LysR product for its activation, LysR protein present in a limiting amount which can be titrated by a multicopy plasmid carrying its target site and a negative regulatory role for the LysA protein itself which decreases lysA-lacZ expression 30-fold.

Bacterial Proteins↗

Regulation of lysine biosynthesis in Escherichia coli K12.

A general survey of the regulation in lysine biosynthesis in Escherichia coli K12 is presented. No polygenic operon exists for the genes that code for enzymes of the lysine biosynthetic pathway. Lysyl-tRNA is not directly involved as a co-repressor in the pathway. Different regulation mechanisms must exist for the different enzymes. In the case of the last enzyme, diaminopimelate decarboxylase, its synthesis is induced in vivo by the lysine-sensitive aspartokinase under its non-inhibited allosteric conformation.

Adenosine Triphosphate↗