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T Boehm

Publications and source records attributed to T Boehm.

At least 91 records · Page 5Linked to original sources

New member of the winged-helix protein family disrupted in mouse and rat nude mutations.

Mutations at the nude locus of mice and rats disrupt normal hair growth and thymus development, causing nude mice and rats to be immune-deficient. The mouse nude locus has been localized on chromosome 11 (refs 3, 4) within a region of < 1 megabase. Here we show that one of the genes from this critical region, designated whn, encodes a new member of the winged-helix domain family of transcription factors, and that it is disrupted on mouse nu and rat rnuN alleles. Mutant transcripts do not encode the characteristic DNA-binding domain, strongly suggesting that the whn gene is the nude gene. Mutations in winged-helix domain genes cause homeotic transformations in Drosophila and distort cell-fate decisions during vulval development in Caenorhabditis elegans. The whn gene is thus the first member of this class of genes to be implicated in a specific developmental defect in vertebrates.

Alleles↗

The sequence complexity of exons trapped from the mouse genome.

BACKGROUND: A central issue in genome analysis is the identification and characterization of coding regions. Estimating the coding complexity of vertebrate genomes by measuring the kinetic complexity of mRNA populations and by sequence analysis of cDNAs is limited by the fact that any given source of mRNA represents a very biased sample of all genes. Exon trapping is a method that enables the identification of genes irrespective of their transcriptional status. RESULTS: Exons were trapped from the entire mouse genome, and the resulting fragments cloned. About 7% of a random sample of exons taken from this library have significant structural homology or sequence similarity to previously sequenced genes. Using cDNAs derived from several stages of mouse development, evidence for expression of about 62% of this sample of exons was found. These data suggest that the great majority of 'exons' in the library are derived from genes. We estimate that the fraction of the genome contained in trapped exons is 2.4%; this corresponds to a sequence complexity of about 72 megabases. CONCLUSIONS: The library of exons trapped from the entire mouse genome probably represents one of the least biased and most comprehensive libraries of mouse coding regions, and should therefore prove very useful for finding genes during genome mapping and sequencing.

Amino Acid Sequence↗

A yeast artificial chromosome contig on mouse chromosome 11 encompassing the nu locus.

Mutations at the nude locus disrupt the homing process of T cell progenitor cells to the thymic rudiment, a key aspect of T cell differentiation. Here, we map the nude locus to a set of overlapping yeast artificial chromosomes (YAC) clones covering a genetic interval of about 0.5 centi Morgan on mouse chromosome 11. These results provide a suitable starting point to molecularly clone the nude gene.

Animals↗

Two large insert vectors, lambda PS and lambda KO, facilitate rapid mapping and targeted disruption of mammalian genes.

The construction and the testing of two lambda phage vectors are described that greatly simplify the tasks of mapping genomic DNA and making replacement-type gene-targeting vectors for mammalian cells from a library of isogenic genomic DNA. The first vector, lambda PS, accommodates up to 20 kb and allows inserts to be automatically subcloned in plasmid form because of the presence of loxP sites flanking the insert. The second vector, lambda KO, accommodates up to 16.7 kb and allows inserts to be automatically subcloned as plasmids containing HSVtk genes that are positioned flanking the inserted genomic DNA. We have prepared highly redundant libraries from genomic DNA of 129/Sv-strain mice for the construction of targeting vectors. In our scheme, the locus of interest is characterized using a library made in lambda PS. For instance, suitable flanking probes can be derived to determine targeting events. The final targeting construct with flanking HSVtk genes is obtained using the lambda KO cloning vector. The entire procedure is exemplified by successful targeting of the X-linked mouse hprt locus.

Animals↗

Exon amplification from complete libraries of genomic DNA using a novel phage vector with automatic plasmid excision facility: application to the mouse neurofibromatosis-1 locus.

The identification of transcription units in the vicinity of chromosomal lesions found in tumours is an essential step in the identification of new oncogenes. Here, we describe a lambda phage vector system for genomic exon-trapping (lambda GET), which dramatically simplifies the task of exon amplification from genomic DNA. The vector accommodates about 6.5 to 19 kb of DNA and allows inserts to be automatically subcloned as multi-copy plasmids containing splice donor and acceptor sites positioned flanking the inserted genomic DNA. RNA transcripts derived from such plasmids are processed in vivo and exons contained within the inserted genomic fragments become flanked by known sequences in the resulting mRNAs. RNA-based PCR can then be used for subsequent cloning and sequence analysis of trapped exons. We have exploited the large cloning capacity of lambda GET to construct highly redundant complete genomic libraries from Sau3AI partially digested vertebrae DNAs. Using this system, we have analysed a region of about 1 MB around the mouse neurofibromatosis-1 locus and have identified novel transcription units flanking the Nf-1 gene.

Amino Acid Sequence↗

A versatile expression vector for the in vitro study of protein-protein interactions: characterization of E47 mutant proteins.

Several mutants of the E47 protein, a member of the family of basic/helix-loop-helix (b-HLH) transcriptional regulators, were examined for their ability to homo- and heterodimerize with the protein product of the T-cell oncogene tal-1/SCL. For this purpose, a novel bacterial expression system was developed in which proteins are expressed as fusions appended to glutathione-S-transferase via a thrombin cleavage site and either one or four protein kinase recognition sites embedded in a glycine-rich domain. Since the interaction domain can be purified away from the glutathione-S-transferase moiety and the radioactive label is located in a flexible N-terminal tag, protein folding should occur normally. Our studies with E47 proteins prepared in this system indicate that the ratio between E47 homodimers and E47/tal-1 heterodimers can dramatically shift upon subtle mutations in the loop region and the second helix of the E47 protein. This unexpected results suggests a novel mechanism to alter the equilibrium between different transactivating protein complexes of the b-HLH class.

Amino Acid Sequence↗

Molecular cloning of a zinc finger protein which binds to the heptamer of the signal sequence for V(D)J recombination.

The somatic V(D)J recombination for the assembly of the Ig and TCR genes is mediated by the recombination signal sequences (Rss) and the V(D)J recombinase. A cDNA clone was isolated from a lambda gt11 expression library made from mouse thymocyte poly(A)+ RNA, using the Rss as a ligand. The deduced amino acid sequence of the putative protein, designated Recognition component (Rc), reveals a pair of Cys2-His2 zinc fingers followed by a Glu- and Asp-rich acidic domain. In addition, there are five copies of the Ser/Thr-Pro-X-Arg/Lys sequence, which are putative DNA binding units. The zinc finger-acidic domain structures present in Rc are also found in several enhancer binding proteins, such as those for the kappa B motif of the Ig kappa light chain enhancer or related sequences. Bacterial fusion proteins for Rc bind preferentially to the Rss heptamer and to the kappa B motif. The dual affinities of Rc for the Rss heptamer and the kappa B motif suggest a possible link between Ig transcription and somatic recombination. The formation of multiple 'gel-shifted' DNA-protein complexes for Rc and its DNA ligand suggests that these complexes tend to multimerize.

Amino Acid Sequence↗

Reassessment of breakpoints in chromosome 11p15.

Specific tumor-associated rearrangements involving the regions 11p13 and 11p15 have been extensively documented. However, cytogenetic definition of the breakpoints occurring at the boundaries of these two regions was not precise enough to correlate with the molecular data. Using probes corresponding to the genes coding for MYOD1, CTSD, LDHA, and RBTN1 and to the anonymous sequence D11S776, we have reassessed the breakpoints of three hybrids (J1.10, BID7, and NYX3.1) and confirmed the localization or more precisely mapped these four genes and the anonymous DNA marker on different subregions of 11pter-->p13, including the smallest region of 11p15.5 duplicated in a patient with Beckwith-Wiedemann syndrome.

Animals↗

Analysis of multigene families by DNA fingerprinting of conserved domains: directed cloning of tissue-specific protein tyrosine phosphatases.

Little is known about the number of mouse protein tyrosine phosphatases (PTPs) and their developmental and tissue-specific expression patterns. A new procedure based on fingerprinting of amplified catalytic domains detects expression of at least 20 different mouse PTPs during development. The majority of these PTPs show developmentally regulated expression patterns; some display a unique tissue specificity. Diagnostic fragments detected in the fingerprint analysis are used here as specific probes to directly clone two previously unknown ubiquitously expressed PTPs and PTP1C, a protein tyrosine phosphatase highly expressed in thymus RNA. The fingerprinting procedure is also applicable to the analysis of protein tyrosine kinases and may also be used to study the expression pattern of other multigene families.

Amino Acid Sequence↗

The rhombotin gene family encode related LIM-domain proteins whose differing expression suggests multiple roles in mouse development.

The rhombotin (RBTN1 or Ttg-1) gene was first identified at a chromosome translocation in a T-cell acute leukaemia and later used to isolate two related genes (RBTN2 or Ttg-2 and RBTN3). Complete characterization of these genes in man and mouse shows that all three encode cysteine-rich proteins with typical LIM domains. RBTN1 and RBTN3-derived proteins have 98% identity in the LIM domains but are located on separate chromosomes in man and in mouse while RBTN1 and RBTN2, both located on human chromosome 11p but are on separate chromosomes in mouse, are only 48% identical in this part of the protein. The exon organization of RBTN1 and RBTN3 genes are similar, both having an intron, absent from the RBTN2 gene, in the LIM2-encoding region. The remarkable similarity between rbtn-1 and rbtn-3 proteins is parallelled in their expression patterns in mouse development, since both genes show high expression in restricted areas of the brain, but little lymphoid expression. rbtn-2 expression, however, is more ubiquitous. This gene shows a low level of thymus expression but high expression in fetal liver, adult spleen and B-cell lines, consistent with a role in B-cell development. These results suggest multiple cellular targets for the action of these proteins during development.

Adult↗

T-cell acute lymphoblastic lymphoma induced in transgenic mice by the RBTN1 and RBTN2 LIM-domain genes.

Two members of the RBTN gene family, RBTN1/Ttg-1 and RBTN2/Ttg-2, were found by their association with T-cell tumour-specific chromosomal translocations and are thought to be involved in the aetiology of such T-cell tumours. Here a transgenic mouse model is described in which T-cell tumours are induced by the presence of RBTN1 and RBTN2 transgenes that direct expression in thymus-derived cells. The latency period for lymphoid tumour appearance is variable, and tumours occur in a small proportion of transgenic animals that develop T-cell acute lymphoblastic malignancies. No significant increase in the rate of tumour development was observed in RBTN1 transgenic mice infected with Moloney murine leukaemia virus, nor did tumours arise in mice bearing a construct in which RBTN1 was expressed from the insulin transcriptional promoter. These data, which provide formal proof of the oncogenic activity of these genes, suggest that aberrant expression of transcription factor genes, such as RBTN1 and RBTN2, functions in tumour aetiology by disturbing some aspect of T-cell differentiation.

Animals↗

HOX11, a homeobox-containing T-cell oncogene on human chromosome 10q24.

A common chromosomal abnormality in childhood T-cell acute leukemia is a translocation, t(10;14) (q24;q11), that together with the variant t(7;10)(q35;q24) is present in up to 7% of this tumor type. The gene adjacent to the 10q24 region is transcriptionally activated after translocation to either TCRD (14q11) or TCRB (7q35). It encodes a homeobox gene closely related to the developmentally regulated homeotic genes of flies and mammals. The coding capacity of this activated gene, designated HOX11, is undisturbed in a T-cell line carrying the translocation t(7;10)(q35;q24). Therefore, the HOX11 homeobox gene seems to be involved in T-cell tumorigenesis.

Amino Acid Sequence↗

The rhombotin family of cysteine-rich LIM-domain oncogenes: distinct members are involved in T-cell translocations to human chromosomes 11p15 and 11p13.

A chromosomal translocation in a T-cell leukemia involving the short arm of human chromosome 11 at band 11p15 disrupts the rhombotin gene. This gene encodes a protein with duplicated cysteine-rich regions called LIM domains, which show homology to zinc-binding proteins and to iron-sulfur centers of ferredoxins. Two homologues of the rhombotin gene have now been isolated. One of these, designated Rhom-2, is located on human chromosome 11 at band 11p13, where a cluster of T-cell leukemia-specific translocations occur; all translocation breakpoints at 11p13 are upstream of the Rhom-2 gene. Human and mouse Rhom-2 are highly conserved and, like rhombotin, encode two tandem cysteine-rich LIM domains. Rhom-2 mRNA is expressed in early mouse development in central nervous system, lung, kidney, liver, and spleen but only very low levels occur in thymus. The other gene, designated Rhom-3, is not on chromosome 11 but also retains homology to the LIM domain of rhombotin. Since the Rhom-2 gene is such a common site of chromosomal damage in T-cell tumors, the consistency of translocations near the rhombotin gene was further examined. A second translocation adjacent to rhombotin was found and at the same position as in the previous example. Therefore, chromosome bands 11p15 (rhombotin) and 11p13 (Rhom-2) are consistent sites of chromosome translocation in T-cell leukemia, with the 11p15 target more rarely involved. The results define the rhombotin gene family as a class of T-cell oncogenes with duplicated cysteine-rich LIM domains.

Amino Acid Sequence↗

A simple technique for generating probes for RNA in situ hybridization: an adjunct to genome mapping exemplified by the RAG-1/RAG-2 gene cluster.

Two major problems have to be solved in studies of genes near breakpoints of chromosome abnormalities and in large-scale genomic mapping projects: (i) the identification of genes within the large amount on nontranscribed DNA and (ii) the determination of the tissues in which the identified genes are transcribed. In situ hybridization to mRNA is ideally suited to assess gene expression in all tissues but probe preparation presents major difficulties for adapting the technique for rapid screening. Here, we present a procedure to easily generate strand-specific DNA probes for in situ hybridization. In this method, a DNA fragment to be tested in uniformly labeled, denatured, and prehybridized to an excess of competitor single-stranded DNA corresponding to either positive or negative strands of the test fragment. No sequence information is needed. The prehybridized mixture is used directly for hybridization to whole embryo or tissue sections. We demonstrate the utility of this approach for any nonrepetitive fragment by using cDNA probes, intronless genomic probes, or genomic probes comprising transcribed and nontranscribed DNA. As an example, we show that mRNA for the recombination-activating genes (RAG) RAG-1 and RAG-2 is found in thymus of dE16 mouse embryos. Within the thymus, high levels of expression of RAG-1 and RAG-2 are detectable in the cortex but not in the medullary region. This supports the view that RAG-1 and RAG-2 expression is associated with cells known to actively rearrange antigen receptor loci.

Animals↗