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M Constância

Publications and source records attributed to M Constância.

10 recordsLinked to original sources

Imprinting of IGF2 P0 transcript and novel alternatively spliced INS-IGF2 isoforms show differences between mouse and human.

Genomic imprinting is limited to a subset of genes that play critical roles in fetal growth, development and behaviour. One of the most studied imprinted genes encodes insulin-like growth factor 2, and aberrant imprinting and DNA methylation of this gene is associated with the growth disorders Beckwith-Wiedemann and Silver-Russell syndromes and many human cancers. Specific isoforms of this gene have been shown to be essential for normal placental function, as mice carrying paternal null alleles for the Igf2-P0 transcript are growth restricted at birth. We report here the identification of three novel human transcripts from the IGF2 locus. One is equivalent to the mouse Igf2-P0 transcript, whereas the two others (INSIGF long and short) originate from the upstream INS gene that alternatively splices to downstream IGF2 exons. In order to elucidate the molecular mechanisms involved in the complex imprinting of these novel IGF2 transcripts, both the allele-specific expression and methylation for all the IGF2 promoters including P0 and the INSIGF transcripts were analysed in human tissues. Similar to the mouse, the human IGF2-P0 transcript is paternally expressed; however, its expression is not limited to placenta. This expression correlates with tissue-specific promoter methylation on the maternal allele. The two novel INSIGF transcripts reported here use the INS promoter and show highly restricted tissue expression profiles including the pancreas. As previously reported for INS in the yolk sac, we demonstrate complex, tissue-specific imprinting of these transcripts. The finding of additional transcripts within this locus will have important implications for IGF2 regulation in both cancer and metabolism.

Alternative Splicing↗

Regulation of placental efficiency for nutrient transport by imprinted genes.

Intrauterine growth and development can impact upon the long-term health of an individual. The fetus is dependent upon the placenta for its supply of nutrients and oxygen from the mother. In turn, the functional capacity of the placenta to supply that demand is under the control of the fetal and maternal genomes. Recent evidence suggests that imprinted genes, a class of genes found in placental mammals whose expression depends on their parental origin, have multiple roles in the placenta. The imprinted genes regulate the growth and transport capacity of the placenta, thereby controlling the supply of nutrients. They may also regulate the growth rate of fetal tissues directly, thereby controlling nutrient demand by the fetus. Recent studies using mice with deletions or disruption of imprinted genes with an altered balance between placental and fetal growth and changes in placental efficiency are indicative of feto-placental signalling of fetal nutrient demand. We propose that signalling mechanisms involving growth demand signals and nutrient transporters are likely to occur and are important for fine tuning normal fetal growth.

Animals↗

Placental-specific insulin-like growth factor 2 (Igf2) regulates the diffusional exchange characteristics of the mouse placenta.

Restricted fetal growth is associated with postnatal mortality and morbidity and may be directly related to alterations in the capacity of the placenta to supply nutrients. We proposed previously that imprinted genes can regulate nutrient supply by the placenta. Here, we tested the hypothesis that the insulin-like growth factor 2 gene (Igf2) transcribed from the placental-specific promoter (P0) regulates the development of the diffusional permeability properties of the mouse placenta. Using mice in which placental-specific Igf2 had been deleted (P0), we measured the transfer in vivo of three inert hydrophilic solutes of increasing size (14C-mannitol, 51CrEDTA, and 14C-inulin). At embryonic day 19, placental and fetal weights in P0 conceptuses were reduced to 66% and 76%, respectively, of wild type. In P0 mutants, the permeability.surface area product for the tracers at this stage of development was 68% of that of controls; this effect was independent of tracer size. Stereological analysis of histological sections revealed the surface area of the exchange barrier in the labyrinth of the mouse placenta to be reduced and thickness increased in P0 fetuses compared to wild type. As a result, the average theoretical diffusing capacity in P0 knockout placentas was dramatically reduced to 40% of that of wild-type placentas. These data show that placental Igf2 regulates the development of the diffusional exchange characteristics of the mouse placenta. This provides a mechanism for the role of imprinted genes in controlling placental nutrient supply and fetal growth. Altered placental Igf2 could be a cause of idiopathic intrauterine growth restriction in the human.

Animals↗

An intragenic methylated region in the imprinted Igf2 gene augments transcription.

DNA methylation is usually associated with transcriptional silencing, but in the imprinted mouse Igf2 gene, the paternally expressed copy is methylated in two discrete differentially methylated regions (DMRs). DMR1 is located upstream of the fetal promoters and has been shown to be a methylation sensitive silencer. Here we examine the role of the intragenic DMR2 by gene targeting. In contrast to DMR1, deletion of DMR2 on the maternal allele did not lead to activation of the silent Igf2 gene. Deletion of a 54 bp methylated core region in DMR2 on the paternal allele, however, reduced Igf2 mRNA levels and was associated with fetal growth retardation. Nuclear run-on assays showed that the core region influenced transcription initiation, and luciferase reporter assays suggested that its methylation increases transcription. These results reveal a novel mechanism of gene expression whereby intragenic methylation can increase levels of transcription.

Alleles↗

Imprinted genes and the coordination of fetal and postnatal growth in mammals.

A substantial proportion of genes that control fetal growth in placental mammals are imprinted. Imprinted genes can act in fetal tissues to regulate growth by cell proliferation, cell death and the make up of extracellular space. Imprinted growth-promoting genes such as Igf2 probably act predominantly in an endocrine fashion, thus coordinating organ growth with the growth of the organism. In overgrowth and growth deficiency syndromes, however, imprinted growth factors can act by more local mechanisms, resulting in disproportionate growth. In addition to controlling fetal growth directly and thereby determining the nutritional demand of the fetus, imprinted genes can also apparently limit the nutritional supply to the fetus through the placenta. Imprinted genes may also be involved in postnatal growth up to weaning.

Animals↗

Deletion of a silencer element in Igf2 results in loss of imprinting independent of H19.

Igf2 and H19 are closely linked, reciprocally imprinted genes on mouse distal chromosome 7. The paternally expressed Igf2 encodes a potent fetal growth factor and the maternally expressed H19 encodes a non-coding RNA (refs 1,2). Shared endoderm-specific enhancers 3' to H19 are necessary for transcription of the maternal copy of H19 and the paternal copy of Igf2 (ref. 3), a chromatin boundary upstream of H19 preventing access of the enhancers to the maternal Igf2 promoters. Mesoderm-specific control elements have not been identified, and the role of differentially methylated regions (DMRs) in Igf2 has not been addressed. Two DMRs in Igf2 are methylated on the active paternal allele, suggesting that they contain silencers. Here we have deleted the DMR1 region in Igf2. Maternal transmission of the deletion results in biallelic expression of Igf2 in most mesodermally derived tissues without altering H19 imprinting or expression. Paternal or maternal transmission leads to continued postnatal transcription of Igf2, in contrast to the wild-type allele, which is silenced soon after birth. These results reveal a mesodermal silencer, which may be regulated by methylation and which has a major role in H19-independent expression and imprinting control of Igf2. Our results establish a new mechanistic principle for imprinted genes whereby epigenetically regulated silencers interact with enhancers to control expression, and suggest a new mechanism for loss of imprinting (LOI) of Igf2, which may be important in a number of diseases.

Animals↗

Imprinting mechanisms.

A number of recent studies have provided new insights into mechanisms that regulate genomic imprinting in the mammalian genome. Regions of allele-specific differential methylation (DMRs) are present in all imprinted genes examined. Differential methylation is erased in germ cells at an early stage of their development, and germ-line-specific methylation imprints in DMRs are reestablished around the time of birth. After fertilization, differential methylation is retained in core DMRs despite genome-wide demethylation and de novo methylation during preimplantation and early postimplantation stages. Direct repeats near CG-rich DMRs may be involved in the establishment and maintenance of allele-specific methylation patterns. Imprinted genes tend to be clustered; one important component of clustering is enhancer competition, whereby promoters of linked imprinted genes compete for access to enhancers. Regional organization and spreading of the epigenotype during development is also important and depends on DMRs and imprinting centers. The mechanism of cis spreading of DNA methylation is not known, but precedent is provided by the Xist RNA, which results in X chromosome inactivation in cis. Reading of the somatic imprints could be carried out by transcription factors that are sensitive to methylation, or by methyl-cytosine-binding proteins that are involved in transcriptional repression through chromatin remodeling.

Animals↗

Microsatellite instability at multiple loci in gastric carcinoma: clinicopathologic implications and prognosis.

BACKGROUND & AIMS: Microsatellite instability (replication error [RER]-positive phenotype) is a frequent genetic alteration in gastric carcinomas. The clinical relationship between RER-positive and RER-negative gastric tumors is poorly characterized. The aim of this study was to investigate the relationship between the number of altered microsatellite loci and the clinicopathologic features of gastric carcinoma. METHODS: Five or 6 microsatellite loci were analyzed in 61 gastric carcinomas using polymerase chain reaction. RESULTS: Twenty-one carcinomas (34.4%) had microsatellite instability: 7 at 1 locus, 2 at 2 loci, and 12 at multiple loci. The comparison between the three groups (with none, 1 or 2, and more than 2 RER-positive loci) showed that RER-negative carcinomas and carcinomas with 1 or 2 RER-positive loci share features that differ from those of carcinomas with multiple RER-positive loci. The latter were all of the intestinal or atypical subtype and had lower DNA content, more prominent lymphoid infiltration, and less prevalent nodal metastases than carcinomas in the other two groups. The patients with carcinomas showing multiple RER-positive loci had a better prognosis. CONCLUSIONS: The finding of microsatellite instability in a single or few loci does not qualify a case as a mutator phenotype from a clinical standpoint. Gastric tumors with multiple RER-positive loci have a particular clinicopathologic profile leading to a better outcome.

Carcinoma↗

Sporadic gastric carcinomas with microsatellite instability display a particular clinicopathologic profile.

Mutations in recently identified genes on chromosomes 2 and 3 seem to be responsible for repair errors (RER+) throughout the genome. This novel genetic mechanism was first reported in hereditary non-polyposis colorectal cancer syndrome and in cancers that are characteristic of this syndrome, such as carcinomas of the right colon, stomach and endometrium. We investigated the frequency of RER+ phenotype in a series of 34 sporadic gastric carcinomas, in an attempt to see if the RER+ cases displayed any particular morphologic features and/or if they showed distinctive clinicopathologic characteristics. Twelve loci were investigated. We found 23 RER- cases (67.6%) and 11 RER+ cases (32.4%). A significant association was found between RER+ carcinomas and localization of the tumors: 9 of the 11 RER+ carcinomas (81.8%) were located at the antrum whereas all the cardiac tumors were RER-. The RER+ phenotype was also significantly related to the presence of moderate/abundant T-cell lymphoid infiltration within the tumors. The 3-year survival rate of patients with RER+ tumors was suggestively longer than that of patients with RER- tumors. No significant relationship was found between several clinicopathologic characteristics of the cases, including age, sex, staging, histologic type and ploidy, despite a trend towards an association between RER+ phenotype and advanced age of the patients and poorly differentiated, intestinal type of the carcinomas. The high frequency of microsatellite instability in sporadic gastric carcinomas supports the involvement of this genetic mechanism in gastric carcinogenesis. Gastric carcinomas with the RER+ phenotype tend to occur as poorly differentiated adenocarcinomas in the antrum of elderly patients, display abundant T-cell infiltration and carry a relatively good prognosis.

Adult↗

Retinoblastoma gene structure and product expression in human gastric carcinomas.

The role of the retinoblastoma gene (RB1) in human gastric carcinogenesis is yet to be clarified. We report on the analysis of RB1 structure and protein (pRB) expression in gastric carcinomas using Southern blotting, Western blotting and immunohistochemistry. The relationship between pRB expression and cell proliferation was assessed by a proliferation marker (PCNA) in a subset of cases. Non-neoplastic mucosas were studied, as controls, by the same methodology. We found a close relationship between pRB expression and PCNA in non-neoplastic mucosas as well as in gastric carcinomas. All tumours were immunohistochemically positive for pRB, although with a variable proportion of non-immunoreactive cells. Carcinomas of the diffuse type showed absence of pRB expression in a larger proportion of neoplastic cells than carcinomas of the intestinal type (P < 0.05). Analysis of the RB1 structure using probe p68RS2.0 revealed allelic imbalance in 29% of informative cases. No homozygous deletions and/or rearrangements were detected with p68RS2.0 and cDNA probes. Western analysis revealed no abnormal patterns of pRB. Our data therefore suggest that major alterations affecting the RB1 gene are rather infrequent in human gastric carcinomas.

Aged↗