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L Michiels

Publications and source records attributed to L Michiels.

36 records · Page 2Linked to original sources

Assignment of the human FAU gene to a subregion of chromosome 11q13.

The FAU gene is the cellular homologue of the fox sequence in the Finkel-Biskis-Reilly murine sarcoma virus (FBR-MuSV). FAU (for FBR-MuSV associated ubiquitously expressed gene) encodes the ribosomal protein S30 fused to a ubiquitin-like protein. A cosmid clone containing the human FAU gene was used for fluorescence in situ hybridization to metaphase chromosomes. The obtained localization to 11q13 was confirmed by hybridization against a panel of somatic cell hybrids containing different parts of chromosome 11 on a hamster background. FAU was then further mapped, both on a panel of radiation-reduced somatic cell hybrids designed to carry different parts of the 11q13 region and by pulsed-field gel electrophoresis. This fine mapping assigned FAU close to the skeletal muscle glycogen phosphorylase gene (PYGM), in a region that contains several oncogenes as well as the putative tumor suppressor genes MEN1 and ST3.

Animals↗

Exclusion of FAU as the multiple endocrine neoplasia type 1 (MEN1) gene.

The FAU gene (FBR-MuSV associated ubiquitously expressed gene) encodes the ribosomal protein S30 fused with a Ubiquitin-like molecule. The FAU gene is expressed in a wide range of tissues, is evolutionarily conserved, and has putative tumour suppressor activity in vitro. The human FAU gene maps to the long arm of chromosome 11 band q13, close to the PYGM locus. This locus is tightly linked to the Multiple Endocrine Neoplasia type 1 (MEN1) locus. The FAU gene properties, together with its chromosomal localisation on 11q13, make it a candidate gene for MEN1. To test this hypothesis we screened 33 unrelated patients with MEN1 for constitutional genetic alterations in the FAU gene by Southern blot analysis, denaturing gradient gel electrophoresis (DGGE) and in two cases complemented by DNA sequencing to confirm the DGGE data. Furthermore, 10 parathyroid and pancreatic tumours from MEN1 patients and 15 each of sporadic parathyroid and pituitary tumours were similarly examined. In addition, we studied the expression of the FAU gene at the RNA level in 9 MEN1-associated tumours by Northern blot analysis. No FAU gene anomalies could be demonstrated by any of these techniques. We conclude that FAU is not likely to be the MEN1 tumour suppressor gene.

Base Sequence↗

fau cDNA encodes a ubiquitin-like-S30 fusion protein and is expressed as an antisense sequence in the Finkel-Biskis-Reilly murine sarcoma virus.

The Finkel-Biskis-Reilly murine sarcoma virus (FBR-MuSV) is capable of inducing osteosarcomas in susceptible mice. This retrovirus transduced sequences derived from the transcription factor c-fos and from an unrelated mouse sequence called fox. Here, we describe the cloning and sequence analysis of human and mouse cellular cDNAs hybridizing to the fox sequence. The cloned cDNAs encode for a single ubiquitin-like (Fubi) protein fused in frame to S30, a protein of the small ribosomal subunit. Fubi conserved amino acid residues known to be involved in the ATP-dependent proteolytic activity of ubiquitin. Moreover, the fau gene is conserved in several species, while its mRNA is ubiquitously expressed in different mouse tissues. Surprisingly, FBR-MuSV transduced the complete but mutated open reading frame (ORF) in its reversed transcriptional orientation. This is the first report about a retrovirus in which an antisense sequence to a cellular gene, which we called fau (FBR-MuSV-associated ubiquitously expressed gene), is discovered. Rat-2 cells transfected with plasmids containing v-fau/fox recombinants of FBR-MuSV revealed a twofold increase of the transformation capacity of FBR-MuSV 'in vitro' because of the fau antisense sequence. Newly formed retropseudogenes were identified in three out of eight primary radiation-induced osteosarcomas. This high incidence of creating retropseudogenes in these 90Sr-induced bone tumours may contribute to the mechanism by which FBR-MuSV, originally isolated from such tumours, acquired the fau gene in its reverse orientation.

Amino Acid Sequence↗

Genomic structure and expression of the human fau gene: encoding the ribosomal protein S30 fused to a ubiquitin-like protein.

The fau gene is the cellular homolog of the fox sequence in the Finkel-Biskis-Reilly Murine Sarcoma Virus (FBR-MuSV). This virus acquired the fau sequence in its reversed transcriptional orientation. Human and mouse fau cDNA's were identified and both encode a new protein of 133 AA. We show that fau (for FBR-MuSV associated ubiquitiously expressed gene) becomes expressed in all different tissues tested as a 600 bp messenger and we report the genomic structure of the human fau gene. The gene consists of five exons and four introns and the 5' untranslated region displays characteristic features for a housekeeping gene. Fau encodes the ribosomal protein S30 fused to a Ubiquitin-like protein.

Amino Acid Sequence↗

Expression of protooncogenes in murine osteosarcomas.

The expression of 7 protooncogenes (c-sis, c-abl, c-mos, c-bas, c-Ki-ras, c-fos, c-myc) was examined in transplants and established cell lines from spontaneous and radiation-induced murine osteosarcomas. The transplant tumors were compared with different tissues, particularly skeletal tissue (sternum), and the osteosarcoma cell lines with fibroblast lines from the same mouse strains. C-sis was expressed above the level of controls in 2 osteosarcomas (TV, Os5). Three osteosarcomas showed over-expression of c-abl (TVK, DOS, Os5), c-bas (DOS, Os5 and V893) and c-fos (TVK, DOS, Os5), and 4 osteosarcomas showed over-expression of c-Ki-ras (TVK, DOS, Os5, Os16) and c-myc (TVK, DOS, TV, Os5). C-mos expression was not observed under the conditions used. One cell line (Os5) showed an altered transcript (1 kb transcript of c-fos). Apart from the relatively frequent increase in expression of the c-myc and c-ras-family, there was no indication that any particular protooncogene or combination of protooncogenes was associated with murine osteosarcomas.

Animals↗

Oncogene involvement in radiation- and virus-induced mouse osteosarcomas.

Internal irradiation of mice using bone seeking radionuclides results in the activation of endogenous retroviruses and in the subsequent development of bone tumors. Genomic DNA from an osteosarcoma cell line, derived from an 90Sr-induced bone tumor, was cotransfected with the plasmid pSV2-neo into NIH/3T3 cells and G418-resistant transfectants gave rise to colonies in soft agar. Southern blot analysis of these first cycle transformants revealed the presence of extra copies of c-ras. We have analysed the arrangement of ecotropic murine leukemia proviral sequences in seven 90Sr-induced bone tumors and one osteosarcoma cell line of CF1-mice. Integration of ecotropic and/or ecotropic recombinant proviruses seems to be involved in rearrangements of 3' provirus cellular junction fragments occurring in all tumor DNAs analysed, but no indication for site-specific integration was found. We also determined the primary structure of FBR-MuSV, a transforming retrovirus able to induce bone tumors in newborn mice. FBR-MuSV contains sequences from all four exons of the murine c-fos gene, but lacks sequences encoding the first 24 and the last 98 amino acids of the c-fos gene product. The coding region of FBR-MuSV has also undergone two small in frame deletions. Thus, the v-fosFBR-MuSV retains 236 amino acids of the 380 amino acids of the murine c-fos product. In FBR-MuSV-transformed cells two fos-containing mRNAs have been detected: a 3.3-kb full-size genomic RNA and a 2.2-kb subgenomic mRNA as revealed by both fos- and MuLV-hybridization probes.

Animals↗

Genome organisation of the FBR-osteosarcoma virus complex: identification of a subgenomic fos-specific message.

The FBR murine virus complex together with the FBJ murine virus complex are known to be bone tumor inducers in newborn mice. Both transforming viruses have transduced c-proto-fos-derived sequences in their genome. FBR-MuSV was molecularly cloned as a biologically active 10-kbp EcoRI fragment from non-productively transformed rat embryo fibroblasts into Charon phage 4A (lambda MOL503) and subsequently subcloned in plasmid pBR322 (pMOL503). Its natural associated helper FBR-MuLV, excized as an internal 8.2-kbp PstI proviral DNA fragment from chronically infected NIH/3T3 cells, was cloned into the unique PstI site of pBR322. Comparative analysis of the restriction maps of FBR-MuSV and FBR-MuLV together with the electron microscopic analysis of heteroduplex DNA molecules formed between both molecular clones suggested that FBR-MuLV is the parental virus of FBR-MuSV. fos- and fox-specific DNA hybridisation probes identified a genomic sized 3.3-kb mRNA and a subgenomic 2.2-kb messenger RNA. Using a 5'-gag hybridisation probe, only the genomic 3.3-kb RNA molecule was detected, demonstrating that a donor splice site is present upstream of the gag sequences and used to generate the fos-specific 2.2-kb subgenomic mRNA.

Animals↗

Characterization of the FBR-murine osteosarcoma virus complex: FBR-MuSV encodes a FOS-derived oncogene.

The FBR murine osteosarcoma virus complex, isolated from a radiation-induced osteosarcoma of an X/Gf mouse causes the rapid appearance of osteosarcomas in newborn mice and transforms fibroblasts in vitro. The two components of the FBR-viral complex have been isolated separately in tissue culture: FBR-MuLV by end-point dilution and FBR-MuSV by the establishment of mouse [FBR-NP 117 (NIH 3T3)] and rat non-producer cell lines [FBR-NP415 (REF)]. The host range and RNase Tl fingerprint analysis of FBR-MuLV demonstrated a pattern closely related to, but distinguishable from, Akv-MuLV. Transformed cells from both mice and rats contain a rescuable FBR-MuSV genome. These pseudotypes produce foci in tissue culture and induce osteosarcomas in susceptible mouse strains. An FBR-MuSV (FBR-MuLV) cDNA probe detects a 5.2 kb HindIII and a 9.5 kb EcoRI FBR-MuSV-specific fragment in FBR-MuSV-transformed non-producer rat cells. The same fragments hybridized with a fos specific probe, demonstrating that FBR-provirus contains a c-fos-derived onc-gene.

Animals↗

[Isolation and characterization of retroviruses expressed in murine osteosarcomas induced by 90Sr].

The induction of osteosarcomas with 90Sr in CF1 mice is associated with the expression of ecotropic type-C RNA viruses devoid of sarcomatogenic activity. In contrast, the FBR murine osteosarcoma virus complex, isolated from a 90 Sr-induced osteosarcoma of a X/Gf mouse [M. Finkel et al. (1)], causes the rapid appearance of osteosarcomas in newborn mice and transforms fibroblasts in vitro. The transforming capacity of FBR murine sarcoma virus has been associated as an oncogene homologous to v-fos.

Animals↗

Nonresponsive generalized bacterial infection associated with systemic lupus erythematosus in a Beauceron.

A case of concurrent canine systemic lupus erythematosus (SLE) and generalized bacterial infection in a six-year-old female Beauceron is reported. The dog presented with purulent nasal and ocular discharges, skin lesions (including seborrhea, hyperkeratotic areas, and papules as well as ecchymoses around the eyes, on both sides of the pinnae, and on the vulva), generalized lymph node enlargement, a mitral murmur, and lameness. Later, facial swelling, a retrobulbar abscess, and a cough also developed. Occurrence of a generalized bacterial infection was established by culture of group-C, beta-hemolytic Streptococcus from the throat, the mouth, a biopsy site (popliteal lymph node area), the retrobulbar abscess, and the lung. The diagnosis of SLE was based on the clinical signs and particularly on the occurrence of antinuclear antibody (ANA) and antidoublestranded-desoxyribonucleic acid (ds-DNA) antibody. Interestingly, the latter type of antibodies were also detected in two young female puppies whelped by this dog. Salient histological findings included an extreme cell depletion of the lymph nodes and spleen and severe pneumonitis and peribronchiolitis. The results of this case indicate that a definite diagnosis of canine SLE can, at times, be made on the basis of the presence of serum ANA and ds-DNA antibodies.

Animals↗