5P Telomere


Annotated Reference List for 5P Telomere


Mondello, C.;Riboni, R.;Casati, A.;Nardo, T.;Nuzzo, F. (1997)
Chromosomal instability and telomere length variations during the life span of human fibroblast clones
Exp Cell Res236 (2): 385 Abstract
Chromosomal instability and telomere length variations during the life span of human fibroblast clones

Growth characteristics, karyotype changes, and telomere length variations were analyzed during the life span of 12 anchorage-independent clones isolated from a xeroderma pigmentosum fibroblast strain. After an initial period of comparable active growth, all the clones showed a decline in the growth rate and finally entered a phase of replicative senescence; however, the number of population doublings and the time required to enter senescence varied among the clones. Repeated cytogenetic analyses during culture propagation showed the appearance of chromosome anomalies, mainly telomeric association (tas) and unbalanced translocations. In all the clones the percentage of abnormal mitoses increased with culture passage, but reached different levels (from less than 10% to about 100%). This finding indicates that the replicative block may be associated with differently altered cytogenetic patterns. Specific chromosome arms (5p, 16q, 19q, and 20q) were preferentially involved in tas, suggesting that alterations in chromosome ends may occur which predispose to fusion. In some clones it was possible to demonstrate the origin of marker chromosomes from the evolution of tas. Telomere length analysis by Southern blotting on DNA samples prepared from 7 clones and from the parental cell lines showed that the terminal restriction fragment (TRF) profiles were homogeneous in senescent parental cells and in the clones during the last part of their life in culture, regardless of the degree of karyotype abnormalities. The homogeneity of the TRF profiles supports the hypothesis of a critical telomere length at senescence.Close


Collaboration, National Institutes of Health and Institute of Molecular Medicine (1996)
A complete set of human telomeric probes and their clinical application. National Institutes of Health and Institute of Molecular Medicine collaboration [published erratum appears in Nat Genet 1996 Dec;14(4):487]
Nat Genet14 (1): 86 Abstract
A complete set of human telomeric probes and their clinical application. National Institutes of Health and Institute of Molecular Medicine collaboration [published erratum appears in Nat Genet 1996 Dec;14(4):487]

Human chromosomes terminate with specialized telomeric structures including the simple tandem repeat (TTAGGG)n and additional complex subtelomeric repeats. Unique sequence DNA for each telomere is located 100-300 kilobases (kb) from the end of most chromosomes. A high concentration of genes and a number of candidate genes for recognizable syndromes are known to be present in telomeric regions. The human telomeric regions represent a major diagnostic challenge in clinical cytogenetics, because most of the terminal bands are G negative, and cryptic deletions and translocations in the telomeric regions are therefore difficult to detect by conventional cytogenetic methods. In fact, several submicroscopic chromosomal abnormalities in patients with undiagnosed mental retardation or multiple congenital anomalies have been identified by other molecular methods such as DNA polymorphism analysis. To improve the sensitivity for deletion detection and to determine whether such cryptic rearrangements represent a significant source of human pathology that has not been previously appreciated, it would be valuable to have specific FISH probes for all human telomeres. We report here the isolation and characterization of a complete set of specific FISH probes representing each human telomere. As most of these clones are at a known distance of within 100-300 kb from the end of the chromosome arm, this provides a 10-fold improvement in deletion detection sensitivity compared with high-resolution cytogenetics (2-3 Mb resolution). While testing these probes, we serendipitously identified a family with multiple members carrying a cryptic 1q;11p rearrangement in the balanced or unbalanced state.Close


Knight, S.;Regan, R.;Nicod, A.;Horsley, S.W.;Kearney, L.;Homfray, T.;Winter, R.M.;Bolton, P.;Flint, J. (1999)
Subtle chromosomal rearrangements in children with unexplained mental retardation
Lancet354 (9191): 1676 Abstract
Subtle chromosomal rearrangements in children with unexplained mental retardation

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Knight, S. J.;Lese, C. M.;Precht, K. S.;Kuc, J.;Ning, Y.;Lucas, S.;Regan, R.;Brenan, M.;Nicod, A.;Lawrie, N. M.;Cardy, D. L.;Nguyen, H.;Hudson, T. J.;Riethman, H. C.;Ledbetter, D. H.;Flint, J. (2000)
An optimized set of human telomere clones for studying telomere integrity and architecture
Am J Hum Genet67 (2): 320 Abstract
An optimized set of human telomere clones for studying telomere integrity and architecture

Telomere-specific clones are a valuable resource for the characterization of chromosomal rearrangements. We previously reported a first-generation set of human telomere probes consisting of 34 genomic clones, which were a known distance from the end of the chromosome ( approximately 300 kb), and 7 clones corresponding to the most distal markers on the integrated genetic/physical map (1p, 5p, 6p, 9p, 12p, 15q, and 20q). Subsequently, this resource has been optimized and completed: the size of the genomic clones has been expanded to a target size of 100-200 kb, which is optimal for use in genome-scanning methodologies, and additional probes for the remaining seven telomeres have been identified. For each clone we give an associated mapped sequence-tagged site and provide distances from the telomere estimated using a combination of fiberFISH, interphase FISH, sequence analysis, and radiation-hybrid mapping. This updated set of telomeric clones is an invaluable resource for clinical diagnosis and represents an important contribution to genetic and physical mapping efforts aimed at telomeric regions.Close


Overhauser, J.;Bengtsson, U.;McMahon, J.;Ulm, J.;Butler, M.G.;Santiago, L.;Wasmuth, J.J. (1989)
Prenatal diagnosis and carrier detection of a cryptic translocation by using DNA markers from the short arm of chromosome 5
American Journal of Human Genetics45 (): 296 Abstract
Prenatal diagnosis and carrier detection of a cryptic translocation by using DNA markers from the short arm of chromosome 5

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Peterson, E.T.;Sutherland, R.;Robinson, D.L.;Chasteen, L.;Gersh, M. ;Overhaser, J.;Deaven, L.L.;Moyzis, R.K.;Grady, D.L. (1999)
An integrated physical map for the short arm of human chromosome 5
Gen Res9 (): 1250 Abstract
An integrated physical map for the short arm of human chromosome 5

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Riegel, M.;Baumer, A.;Jamar, M.;Delbecque, K.;Herens, C.;Verloes, A.;Schinzel, A. (2001)
Submicroscopic terminal deletions and duplications in retarded patients with unclassified malformation syndromes
Hum Genet109 (3): 286 Abstract
Submicroscopic terminal deletions and duplications in retarded patients with unclassified malformation syndromes

Unbalanced submicroscopic subtelomeric chromosomal rearrangements represent a significant cause of unexplained moderate to severe mental retardation with and without phenotypic abnormalities. We investigated 254 patients (102 from Zurich, 152 from Liege) for unbalanced subtelomeric rearrangements by using fluorescence in situ hybridisation with probes mapping to 41 subtelomeric regions. Mental retardation combined with a pattern of dysmorphic features, with or without major malformations, and growth retardation and a normal karyotype by conventional G-banding were the criteria of inclusion. Selection criteria were more restrictive for the Zurich series in terms of clinical and cytogenetic pre-investigation. We found 13 unbalanced rearrangements and two further aberrations, which, following the investigation of other family members, had to be considered as variants without influence on the phenotype. The significant aberrations included three de novo deletions (two of 1pter, one of 5pter), three de novo duplications (8pter, 9pter, Xpter), one de novo deletion 13qter-duplication 4qter, and five familial submicroscopic translocations [(1q;18p), (2q;4p), (2p;7q), (3p;22q), (4q;10q), (12p;22q)], most of them with several unbalanced offspring with deletion-duplication. Although the incidence of abnormal results was higher (10/152) in the Liege versus the Zurich series (3/102), similar selection criteria in Zurich as in Liege would have resulted in an incidence of 7/106 and thus similar figures. In our series, submicroscopic unbalanced rearrangements explain the phenotype in 13/254 study probands. The most important selection criterion seems to be the presence of more than one affected member in a family. An examination of subtelomeric segments should be included in the diagnostic work-up of patients with unexplained mental retardation combined with physical abnormalities, when a careful conventional examination of banded chromosomes has yielded a normal result and a thorough clinical examination does not lead to another classification. The proportion of abnormal findings depends strongly on selection criteria: more stringent selection can eliminate some examinations but necessitates a high workload for experienced clinical geneticists. Once the costs and workload of screening are reduced, less selective approaches might finally be more cost-effective.Close


Wellesley, D.;Young, I. D.;Cooke, P.;Callen, D. F.;Hockey, A. (1988)
Simultaneous trisomy 9q3 and monosomy 5p in two children with der(5),t(5;9)(p15.1;q34.13): report of an extended family
J Med Genet25 (10): 707 Abstract
Simultaneous trisomy 9q3 and monosomy 5p in two children with der(5),t(5;9)(p15.1;q34.13): report of an extended family

We present a family segregating for t(5;9)(p15.1;q34.13). Two cases with der(5),t(5;9), resulting in a partial duplication 9q34.13—-qter and partial deletion of 5p15.12—-pter, were ascertained. The phenotypes were consistent with features of both the cri du chat and trisomy 9q3 syndromes.Close


Last update of database: 4/26/2006 10:18:13 AM
Source: EndNotesOutput_Telomereall_12mar02.txt