Search PubMed⌕ Search

Biomedical subjects

Thomas Liehr

Publications and source records attributed to Thomas Liehr.

72 records · Page 4Linked to original sources

Detailed Hylobates lar karyotype defined by 25-color FISH and multicolor banding.

A comprehensive and detailed comparative chromosome map of the white-handed gibbon (Hylobates lar = HLA) has been established by hybridizing the recently developed complete human multicolor banding (MCB) probe set on metaphase chromosomes of a male HLA lymphoblastoid cell line. Thus, it was possible to precisely determine the breakpoints and distribution plus orientation of specific DNA-regions in this cytogenetically highly rearranged species compared to Homo sapiens (HSA). In general, the obtained results are in concordance with previous molecular-cytogenetic studies. In this study all 71 breakpoints present in HLA compared to HSA could be determined exactly. This study is a valuable complement to our knowledge on the phylogeny of huminoid chromosomes.

Animals↗

The DNA-based structure of human chromosome 5 in interphase.

In contrast to those of metaphase chromosomes, the shape, length, and architecture of human interphase chromosomes are not well understood. This is mainly due to technical problems in the visualization of interphase chromosomes in total and of their substructures. We analyzed the structure of chromosomes in interphase nuclei through use of high-resolution multicolor banding (MCB), which paints the total shape of chromosomes and creates a DNA-mediated, chromosome-region-specific, pseudocolored banding pattern at high resolution. A microdissection-derived human chromosome 5-specific MCB probe mixture was hybridized to human lymphocyte interphase nuclei harvested for routine chromosome analysis, as well as to interphase nuclei from HeLa cells arrested at different phases of the cell cycle. The length of the axis of interphase chromosome 5 was determined, and the shape and MCB pattern were compared with those of metaphase chromosomes. We show that, in lymphocytes, the length of the axis of interphase chromosome 5 is comparable to that of a metaphase chromosome at 600-band resolution. Consequently, the concept of chromosome condensation during mitosis has to be reassessed. In addition, chromosome 5 in interphase is not as straight as metaphase chromosomes, being bent and/or folded. The shape and banding pattern of interphase chromosome 5 of lymphocytes and HeLa cells are similar to those of the corresponding metaphase chromosomes at all stages of the cell cycle. The MCB pattern also allows the detection and characterization of chromosome aberrations. This may be of fundamental importance in establishing chromosome analyses in nondividing cells.

Cell Cycle↗

Heterogenic molecular basis for loss of ABL1-BCR transcription: deletions in der(9)t(9;22) and variants of standard t(9;22) in BCR-ABL1-positive chronic myeloid leukemia.

The objective of this study was to characterize the ABL1-BCR fusion gene in 76 BCR-ABL1-positive chronic myeloid leukemia (CML) patients regarding expression as well as genomic status, to assess the frequency of ABL1-BCR gene deletion in these patients, which has been reported to be an adverse prognostic factor in Philadelphia chromosome-positive CML. Patients were analyzed for ABL1-BCR 1b-b3 and/or 1b-b4 transcription by RT-PCR analysis. ABL1-BCR gene status was analyzed by FISH in 16 CML patients with no ABL1-BCR transcript. FISH revealed a partial or total deletion of the ABL1-BCR gene in 9/16 and localized the 5' portion of ABL1 and the 3' portion of BCR at separated loci in 5/16 patients. The latter FISH pattern resulted from a nonreciprocal translocation in two and a complex translocation in three individuals. In 2/16 patients, FISH could not exclude an intact ABL1-BCR fusion gene. Thus, most CML patients without ABL1-BCR transcript could be characterized cytogenetically to belong to two major subgroups: a silent ABL1-BCR gene was attributed to a deletion in der(9)t(9;22) in 56% of the investigated patients or to variants of a standard t(9;22) (approximately 31%). Conversely, none of the 50 patients with an ABL1-BCR transcript exhibited a variant t(9;22) in GTG-banding analysis. Thus, genomic aberrations such as deletions or complex genomic rearrangements are the basic and most frequent cause for ABL1-BCR RNA negativity in CML. The heterogeneity of the underlying molecular mechanisms may explain divergent clinical implications described for patients with an ABL1-BCR deletion and those with no ABL1-BCR transcript.

Chromosome Deletion↗

Is 24-color FISH detection of in-vitro radiation-induced chromosomal aberrations suited to determine individual intrinsic radiosensitivity?

BACKGROUND: Reliable determination of intrinsic radiosensitivity in individual patients is a serious need in radiation oncology. Chromosomal aberrations are sensitive indicators of a previous exposure to ionizing irradiation. Former molecular cytogenetic studies showed that such aberrations as an equivalent of intrinsic radiosensitivity can be detected by fluorescence in-situ hybridization (FISH) techniques using whole chromosome painting (wcp) probes. However, only one up to three randomly chosen wcp probes have been applied for such approaches until now. As a random distribution of chromosomal rearrangements along the chromosomes is up to now still controversial, the power of the 24-color FISH approach should be elucidated in the present study. METHODS AND MATERIAL: Lymphocytes derived from lymphoblastoid cell lines of one patient with Nijmegen breakage syndrome (NBS homozygote) and of two NBS heterozygotes and peripheral blood lymphocytes of two controls were analyzed. Samples of each patient/control were irradiated in vitro with 0.0 Gy, 0.7 Gy or 2.0 Gy prior to cultivation. Chromosomal aberrations were analyzed in detail and quantified by means of 24-color FISH as an expression of the individual intrinsic radiosensitivity. RESULTS: 24-color FISH analyses were done in a total of 1,674 metaphases. After in-vitro irradiation, 21% (0.7 Gy) or 57% (2.0 Gy) of the controls' cells, 15% (0.7 Gy) or 53% (2.0 Gy) of the heterozygotes' cells and 54% (0.7 Gy) or 79% (2.0 Gy) of the homozygote's cells contained aberrations. The highest average rates of breaks per mitosis [B/M] (0.7 Gy: 1.80 B/M, 2.0 Gy: 4.03 B/M) and complex chromosomal rearrangements [CCR] (0.7 Gy: 0.20 CCR/M, 2.0 Gy: 0.47 CCR/M) were observed in the NBS patient. Moreover, the proportion of different aberration types after irradiation showed a distinct increase in the rate of CCR combined with a decrease in dicentrics in the NBS homozygote. CONCLUSION: To come to a more complete picture of radiation-induced aberrations and to detect and quantify genetically determined intrinsic radiosensitivity, a 24-color FISH approach using all human chromosome painting probes has been successfully applied on cytogenetic preparation lymphocytes. The controls and NBS heterozygotes were clearly distinguished from the NBS homozygote subject.

Adult↗

Homologous sequences at human chromosome 9 bands p12 and q13-21.1 are involved in different patterns of pericentric rearrangements.

A thorough study of the heterochromatin organisation in the pericentromeric region and the proximal long (q) and short (p) arms of human chromosome 9 (HSA 9) revealed homology between 9p12 and 9q13-21.1, two regions that are usually not distinguishable by molecular cytogenetic techniques. Furthermore, the chromosomal regions 9p12 and 9q13-21.1 showed some level of homology with the short arms of the human acrocentric chromosomes. We studied five normal controls and 51 clinical cases: 48 with chromosome 9 heteromorphisms, one with an exceptionally large inversion and two with an additional derivative chromosome 9. Using fluorescence in situ hybridisation (FISH) with three differentially labelled chromosome 9-specific probes we were able to distinguish 12 heteromorphic patterns in addition to the most frequent pattern (defined as normal). In addition, we studied one inversion 9 case with the recently described multicolour banding (MCB) technique. Our results, and previously published findings, suggest several hotspots for recombination in the pericentromeric heterochromatin of HSA 9. They also demonstrate that constitutional inversions affecting the pericentromeric region of chromosome 9 carry breakpoints located preferentially in 9p12 or 9q13-21.1 and less frequently in 9q12.

Chromosome Aberrations↗

Suspension (S)-FISH, a new technique for interphase nuclei.

We describe a versatile method for performing fluorescence in situ hybridization (FISH) in suspension instead of on a slide as usually done. This so-called suspension-FISH (S-FISH) opens new possibilities for the analysis of shape and functions of the human interphase nucleus. The procedure is described and the first results using this approach are presented.

Cell Nucleus↗

FISH banding methods: applications in research and diagnostics.

Recently, several chromosome banding techniques based on fluorescence in situ hybridization (FISH) have been developed for the human and the mouse genome. In contrast to the standard chromosome banding techniques presently used, giving a protein-related banding pattern, those FISH techniques are DNA-specific. Currently the FISH banding methods are still under development and no high resolution banding technique is available that can be used for a whole genome in one hybridization. Nevertheless, FISH banding methods were used successfully for research in evolution- and radiation-biology, as well as for studies on the nuclear architecture. Moreover, their suitability for diagnostic purposes has been proven in prenatal, postnatal and tumor cytogenetics, indicating that they are an important tool with the potential to partly replace the conventional banding techniques in future.

Animals↗

Current developments in human molecular cytogenetic techniques.

In the last decade a variety of fluorescence in situ hybridization (FISH) assays have been developed. In this paper we present an overview on the currently available methods in molecular cytogenetics, highlighting their advantages and limitations, as well as their applications. Even though one has to be impressed by the total number of new techniques introduced in molecular cytogenetics, one has to be aware of the fact that it is not the brilliance of a technique that is important but the scientific question that can be addressed by it. In this review special emphasis has given in describing possible strategies for the characterization of marker and derivative chromosomes in tumor- and clinical cytogenetics.

Centromere↗

Microdissection based high resolution multicolor banding for all 24 human chromosomes.

The multicolor-banding (MCB) approach allows the differentiation of chromosome region specific areas at the band and sub-band level and is based on region-specific microdissection libraries producing changing fluorescence intensity ratios along the chromosomes. The latter are used to assign different pseudocolors to specific chromosomal regions. We present the complete set of 138 region-specific microdissection libraries for the entire human genome and the resulting MCB patterns for all human chromosomes at the 450-550 band level. In the present work, the creation and handling of the microdissection libraries is detailed for the first time. Additionally, the unique possibilities of the MCB technique to adjust the pseudocolor bands according to the necessities of the studied case is presented in exemplarity. In conclusion, the MCB-technique is a high resolution alternative to other FISH based chromosome banding approaches and suited to clarify, which changes appeared in complex chromosomal rearrangements.

Chromosome Banding↗

Evidence for interphase DNA decondensation transverse to the chromosome axis: a multicolor banding analysis.

In the present study a multicolor banding (MCB) analysis was performed to address the up to now unrequited question in which direction with respect to the axis chromosomes decondense in interphase. It could be demonstrated, that i) MCB produces a similar banding pattern in interphase as in metaphase; ii) that no complete decondensation and dispersion appears, which is in concordance with the concept of chromosome territories; and iii) chromosome decondensation happens square to chromosome axis. The presented data are important for a better understanding of nuclear architecture, however, further studies are required.

Chromosome Banding↗

A complex translocation event between the two homologues of chromosomes 5 leading to a del(5)(q21q33) as a sole aberration in a case clinically diagnosed as CML: characterization of the aberration by multicolor banding.

We report on a patient with a clinically diagnosed Philadelphia negative chronic myelogenous leukemia (CML) with a so far unrecorded complex translocation event between the two homologue chromosomes 5. At the GTG-band level the karyotype was normal, apart from an enlarged chromosome 5 and an extremely shortened second chromosome 5. Both derivative chromosomes 5 consisted exclusively of #5 derived material as proven by 24-color FISH. To characterize the complex aberration in more detail the multicolor banding (MCB) technique using a chromosome 5 specific probe set was applied. Using this DNA-based high resolution banding procedure, the karyotype could be described as 46,XX,del(5)(pterright curved arrow q12::q33right curved arrow qter),ins(5)(pterright curved arrow q15::q12right curved arrow q21::q21right curved arrow qter). In consequence, the aberration leads to a partial deletion of the long arm of chromosome 5: del(5)(q21q33), which would not have been identified using conventional banding techniques or 24-color FISH.

Aged↗

Genomic gain of the epidermal growth factor receptor harboring band 7p12 is part of a complex pattern of genomic imbalances in oral squamous cell carcinomas.

BACKGROUND: To determine the association between changes of genomic gene dose and clinical parameters in squamous cell carcinomas of the oral cavity, comparative genomic hybridization seemed suited not only to detect genomic imbalances in these tumors, but also particularly to examine the role of gain of 7p12, the band harboring the epidermal growth factor receptor (EGFR) in this context. METHODS: Total genomic DNA obtained from 35 oral squamous cell carcinomas was subjected to comparative genomic hybridization (CGH) and detected patterns of genomic imbalances were associated with various clinical parameters. RESULTS: The examined tumors exhibited five and up to 47 DNA copy number alterations (CNAs). Nineteen of these showed a gain of chromosome band 7p12. A highly complex but strikingly consistent pattern of genomic imbalances (average, 32 CNAs per tumor) was associated with this alteration, among which gains clearly dominated over losses of genomic material. Comparable patterns, however, could also be found in a few tumors with a high number of CNAs (average, 26) but without the 7p gain. Low numbers of imbalances always were accompanied by low consistency of CNA patterns and none of these cases showed enh(7p12). No significant differences with respect to pT class or grade of tumors were found between enh(7p)-positive and -negative tumors. Stage IV and lymph node affection were slightly more frequent among enh(7p12)-positive than in -negative cases. Relapse occurred in 63% in 7p12-positive vs. 25% in the negative group. Average disease-free survival of tumors without 7p gain clearly exceeded that of tumors with gain of 7p (36.8 vs. 21.3). However, some of these associations could also be found if comparison was based on number of CNAs. By means of hierarchical cluster analysis, we were able to show that different patterns of CNAs can be separated from each other in tumors with or without 7p alterations, and that these patterns predict short- or long-term survival of patients. CONCLUSIONS: Previously described associations of gains of 7p12, the chromosomal band harboring the EGFR gene with clinical parameters can reasonably be estimated only within the context of the pattern and complexity of the genomic imbalances accompanying this chromosomal loss in examined tumors.

Adult↗

Narrowing the deleted region associated with the 15q21 syndrome.

Interstitial deletions of chromosome 15q, not involving the PWS/AS region, are uncommon and poorly characterized. Few cases defined at the cytogenetic level have been reported with 15q21 deletions and characteristic facial dysmorphisms are present in all them. We report on the molecular characterization by array-CGH of a new patient with a 15q21 deletion and on the redefinition of a second patient previously studied with multicolor banding. The two deletions resulted to be similar and involve about 12 and 8 Mb, respectively. Our study might promote to delineate a better genotype-phenotype correlation associated with 15q21 deletions.

Abnormalities, Multiple↗

Tetrasomy 12pter-12p13.31 in a girl with partial Pallister-Killian syndrome phenotype.

A dysmorphic patient was shown to carry a small supernumerary marker chromosome. Multicolor, centromere-multicolor and regular FISH experiments proved the marker to be an analphoid 12pter derived isochromosome. Microdissection of the marker followed by reverse painting and array CGH analysis showed that the isochromosome contains approximately 6 Mb of 12pter-12p13.31 derived sequence. This is only the second report of a marker with a neocentromere 12pter and the molecular fine mapping of the duplicated region further refines the 12p region defining the Pallister-Killian syndrome phenotype. In addition, we show the feasibility of using microdissected chromosomes or chromosomal fragments to molecularly map the chromosomal breakpoints on array CGH. This technology may aid in the identification of chromosomal translocation breakpoints.

Abnormalities, Multiple↗

First case of trisomy 13 plus mosaic trisomy 1q.

OBJECTIVES: In a case with severe sonographic abnormalities followed by missed abortion in week 14 + 5 days, cytogenetic analysis was performed on placental tissue. A mosaic karyotype 47,XY,+13,add(1)(q44)[3]/47,XY, +13[9]/46,XY[36] was detected. The purpose of the present study was to characterize the additional material on chromosome 1q. METHODS: According to GTG banding, the additional material on chromosome 1 was most probably chromosome 1 material. Thus, multicolor banding analysis using a chromosome 1 specific probe set was done to precisely describe the rearranged chromosome 1. RESULTS: Molecular cytogenetic approaches revealed that the derivative chromosome 1 was der(1)(1p36.3-->1q44::1q12-->1q44). CONCLUSIONS: This is the first description of a case with a trisomy 13 plus a partial trisomy 1q presenting with clinical signs of both aberrations. Moreover, the multicolor banding technique is suited to resolve complex karyotypes in the prenatal diagnosis, i.e., chromosome preparations of fibroblasts.

Abortion, Missed↗

Complex chromosomal rearrangements in a secondary acute myeloblastic leukemia after chemotherapy in TRAPS.

We report on the cytogenetic findings from a patient with a de novo TNF-receptor-associated periodic syndrome (TRAPS), who showed first symptoms at the age of four months. Thus, he obtained a long-term therapy with cortisone, chlorambucile, methotrexate and cyclophosphamide. At the age of 14 he developed a secondary acute myeloblastic leukemia. Highly complex chromosomal rearrangements were detected after banding analysis. The exact definition of karyotype and the involved breakpoints could only be resolved after application of sophisticated multicolor-FISH techniques: 44,XY,-5,der(6)t(6;7)(6pter right curved arrow 6q12::7p22.2 right curved arrow 7pter or 7pter right curved arrow 7p22.2), dic(7;19)t(6;19;6;7;19;7;19)(19qter right curved arrow 19q12::7p13 right curved arrow 7p11.1::19q12 right curved arrow 19p12 or 19p12 right curved arrow 19q12::7p11.1 right curved arrow 7q21.3::6q12 right curved arrow 6q26::19p13.3 right curved arrow 19p12::6q26-6qter),dic(12;13)(13qter right curved arrow 13p11.2::12p13.1 right curved arrow 12qter),ace(12;13)(13pter right curved arrow 13p11.2::12p13.1 right curved arrow 12pter), -19. The simultaneous presence of two dicentric chromosomes has not been reported previously and is striking, as such chromosomes are suggested to be instable. However, such chromosomes are observed frequently after chemo- or radiotherapy and in secondary, i.e. therapy related AML (tAML). Thus, AML in this case may result from a long-term therapy of TRAPS with methotrexate, cyclophosphamide, chlorambucile and cortisone.

Adolescent↗