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Biomedical subjects

V S Lestou

Publications and source records attributed to V S Lestou.

8 recordsLinked to original sources

Comparative genomic hybridization: a new approach to screening for intrauterine complete or mosaic aneuploidy.

In the practice of clinical genetics chromosomal aneuploidy in both mosaic and nonmosaic forms has long been recognized as a cause of abnormal prenatal and postnatal development. Traditionally, cytogenetic analysis of cultured lymphocytes has been used as a standard test for detection of constitutional aneuploidies. As lymphocytes represent only one lineage, chromosomal mosaicism expressed in other tissues often remains undetected. The purpose of this study was to assess the utilization of molecular cytogenetic analysis for detection of chromosomal aneuploidy in placental tissues. Using placentas from 100 pregnancies with viable nonmalformed livebirths, both trophoblast and chorionic stroma were analyzed using comparative genomic hybridization (CGH). In all cases with an indication of chromosomal imbalance by CGH, fluorescence in situ hybridization (FISH) analysis was performed to confirm the presence of aneuploidy. To differentiate between constitutional aneuploidy and confined placental mosaicism (CPM), amniotic membrane was analyzed by CGH and FISH techniques. Our results demonstrated five placentas with CPM for chromosomes 2, 4, 12, 13, and 18, respectively, and two constitutional nonmosaic aneuploidies (47,XXX and 47,XXY). Molecular cytogenetic studies of human placental tissues enables easy analysis of both embryonic (amnion) and extraembryonic (chorion) cell lineages. Detection at birth of chromosomal defects affecting intrauterine placental and fetal development is important because these chromosomal defects may continue to have an influence on postnatal development.

Amnion↗

Screening of human placentas for chromosomal mosaicism using comparative genomic hybridization.

Detection of confined placental mosaicism (CPM) in term placental tissues is usually accomplished by conventional cytogenetic analysis of cultured chorionic stroma and direct preparations from trophoblast or, more recently, by fluorescence in situ hybridization (FISH) on interphase nuclei. In this study, we describe the use of comparative genomic hybridization (CGH) for detection of chromosomal aneuploidy in term placentas and evaluate the sensitivity of this novel approach for CPM diagnosis in multiple placental samples acquired from five pregnancies prenatally diagnosed with CPM7 and CPM16. Each sample of placental villi was separated enzymatically into trophoblast and chorionic stroma, and the level of aneuploidy (three signals/nuclei) in each tissue was determined by FISH analysis, using centromeric DNA probes specific for chromosome 7 (D7Z1/Z2) or 16 (D16Z2). Aneuploidy levels ranged from 5.2-96.1% in the 11 tissues with CPM7 and 9.8-93% in the 29 tissues with CPM16. Subsequently, CGH analysis of DNA from the trophoblast and chorionic stroma of the same tissue sites detected the trisomic clone in all placental tissues with aneuploidy (16%, as determined by FISH analysis). Our results demonstrate the sensitivity of CGH analysis for detection of chromosomal aneuploidy mosaicism and support our contention that the CGH technique is the most effective cytogenetic method for screening term placentas for the presence of CPM.

Chorionic Villi↗

High-resolution FISH of the entire integrated Epstein-Barr virus genome on extended human DNA.

Here we report a high-resolution fluorescence in situ hybridization (FISH) analysis of the integrated Epstein-Barr virus (EBV) genome in chromosomes, decondensed interphase nuclear chromatin, and linearly extended chromatin fibers. We analyzed the EBV DNA integrated into the human genome in the well-characterized Burkitt's lymphoma cell line Namalwa, which contains two complete EBV genomes. The integration occurs via the terminal repeats of the virus and was always detectable at chromosome band 1p35. Using the biotinylated BamHIW fragment of the viral DNA, we observed distinct pairs of signals or small nuclear RNA "tracks" within interphase nuclei. FISH to stretched DNA fibers has a higher resolving power and; therefore, enables analysis of the structural organization of DNA. Application of this methodology to linearly extended chromatin of Namalwa cells using different EBV fragments allowed us to visualize the ordered arrangement of the integrated virus. Based on the predicted span of 0.34 nm per base pair for relaxed DNA, length measurements of 30 images showed a good correlation between the mean physical length of hybridized EBV DNA of 52.8 microns (158 kb) without the terminal repeats, and the EBV genomic length of 172 kb, including the terminal repeats. This DNA mapping procedure represents a useful tool for studying the structural organization of integrated viral genomes, and its application will have implications for the understanding of integration processes.

Burkitt Lymphoma↗

Mutational hot spots within the carboxy terminal region of the LMP1 oncogene of Epstein-Barr virus are frequent in lymphoproliferative disorders.

We have recently identified in Epstein-Barr virus (EBV) positive Hodgkin's disease (HD) a variant of the latent membrane protein 1 (LMP1) oncogene characterized by four point mutations and a 30 base pair deletion. These findings led us to test whether such mutants were also present in other lymphoproliferative disorders (LPD). We analysed 98 EBV DNA positive cases (67 LPD, 15 benign conditions, 16 lymphoblastoid cell lines) by PCR for deletions within the LMP1 gene. DNA sequencing of the region coding for the carboxy terminal protein domain was performed on 24 cases. In 13 cases the same combination of 4 point mutations at positions 168,320, 168,308, 168,295 and 168,225 was identified. Of these cases, 12 had an additional point mutation at position 168,357 and eight at position 168,355, and nine had a 30 base pair deletion including nucleotides 168,285 to 168,256. These deletion mutants were identified in HD, angioimmunoblastic lymphadenopathy, B-immunoblastic lymphoma, peripheral T-cell lymphoma, and two lymphoblastoid cell lines. Our findings reveal a high frequency of non-random point mutations at preferential sites within the 3' (carboxy terminal) region of the LMP1 oncogene. The association of these mutational hot spots with LPD suggests that they are involved in EBV related lymphomagenesis and that they define a clinically relevant EBV strain.

Antigens, Viral↗

Non-random integration of Epstein-Barr virus in lymphoblastoid cell lines.

In order to examine the role of Epstein-Barr virus (EBV) in the immortalization of human B lymphocytes and in the pathogenesis of lymphoid malignancies, we investigated whether the EBV integration into the human genome is randomly distributed or whether the virus integrates preferentially at certain sites. Twelve in vitro immortalized human lymphoblastoid cell lines (LCLs), two in vivo infected LCLs, and one Burkitt's lymphoma cell line (EB2) were examined by non-radioactive in situ hybridization (ISH) with a biotinylated EBV probe. Recurrent hybridization sites were detected in all 15 cell lines. The chromosomes frequently carrying the EBV genome were chromosomes 1, 2, 4, and 5. In more than 70 chromosomal bands, a greater number of integration sites than expected was found (p < 0.05). Approximately half of these bands were involved in the majority of the cell lines (for example, 1p31, 1q43, 2p22, 3q28, 4q13, 5p14, 5q12, and 11p15) whereby band 5p14 was involved in all LCLs analyzed. Virtually no viral integrations were found on the sex chromosomes (X, Y). The majority of the EBV integrations was found in G-band-positive material (p < 0.0001). Thus, our findings clearly show that EBV integrates into the human genome in a non-random manner.

Adolescent↗