Nuclear architecture and the induction of chromosomal aberrations.
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R Eils | M Granzow | C Cremer | J Langowski | P S Meltzer | J M Trent | R. Eils | P. Meltzer | J. Trent | J. Langowski | A. Jauch | T. Cremer | C. Cremer | X. Guan | M. Granzow | S. Dietzel | C. Münkel | A Jauch | T Cremer | C Münkel | S Dietzel | X Y Guan | Roland Eils | Anna Jauch | P. S. Meltzer | Christoph Cremer | Steffen Dietzel | Jeff Trent | Jörg Langowski
[1] K. Sax,et al. Chromosome Aberrations Induced by X-Rays. , 1938, Genetics.
[2] H. Muller. INDUCED MUTATIONS IN DROSOPHILA , 1941 .
[3] MASAO S. SASAKI,et al. Biological Dosimetry in Atomic Bomb Survivors , 1968, Nature.
[4] Comings De. The rationale for an ordered arrangement of chromatin in the interphase nucleus. , 1968 .
[5] T. Caspersson,et al. Radiation-induced non-random chromosome breakage. , 1972, Experimental cell research.
[6] D. Papworth,et al. The relationship of radiation-induced dicentric yield to chromosome arm number. , 1973, Mutation research.
[7] F. Vogel,et al. The internal order of the interphase nucleus , 1974, Humangenetik.
[8] C Cremer,et al. Considerations on a laser-scanning-microscope with high resolution and depth of field. , 1978, Microscopica acta.
[9] D. Papworth,et al. Frequency and distribution studies of asymmetrical versus symmetrical chromosome aberrations. , 1982, Mutation research.
[10] K. Tanaka,et al. Nonrandom distribution of chromosome breaks in lymphocytes of atomic bomb survivors. , 1983, Journal of radiation research.
[11] D. Lloyd. An Overview of Radiation Dosimetry by Conventional Cytogenetic Methods , 1984 .
[12] L. Manuelidis. Different central nervous system cell types display distinct and nonrandom arrangements of satellite DNA sequences. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[13] G. Blobel,et al. Gene gating: a hypothesis. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[14] J W Gray,et al. Cytogenetic analysis using quantitative, high-sensitivity, fluorescence hybridization. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[15] B. Czepulkowski,et al. Human cytogenetics : a practical approach , 1986 .
[16] S. Kodama,et al. Chromosome aberration frequency and radiation dose to lymphocytes by alpha-particles from internal deposit of Thorotrast , 1987, Radiation and environmental biophysics.
[17] A. Jauch,et al. Double in situ hybridization in combination with digital image analysis: a new approach to study interphase chromosome topography. , 1989, Experimental cell research.
[18] D Pinkel,et al. Detection of bcr-abl fusion in chronic myelogeneous leukemia by in situ hybridization , 1990, Science.
[19] D. Spector. Higher order nuclear organization: three-dimensional distribution of small nuclear ribonucleoprotein particles. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[20] J. Savage. Mechanisms of chromosome aberrations. , 1990, Progress in clinical and biological research.
[21] C Cremer,et al. Distribution of chromosome 18 and X centric heterochromatin in the interphase nucleus of cultured human cells. , 1990, Experimental cell research.
[22] P. Lichter,et al. Rapid metaphase and interphase detection of radiation-induced chromosome aberrations in human lymphocytes by chromosomal suppression in situ hybridization. , 1990, Cytometry.
[23] M. Hausmann,et al. Towards a cumultative biological dosimeter based on chromosome painting and digital image analysis , 1990 .
[24] A. Natarajan,et al. A cytogenetic follow-up study of the victims of a radiation accident in Goiania (Brazil). , 1991, Mutation research.
[25] N E Morton,et al. Parameters of the human genome. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[26] W. Bigbee,et al. Novel biodosimetry methods applied to victims of the Goiânia accident. , 1991, Health physics.
[27] Michael Hausmann,et al. Slit Scan Flow Cytometry Of Isolated Chromosomes Following Fluorescence Hybridization: An Approach Of Online Screening For Specific Chromosomes And Chromosome Translocations , 1991, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[28] D. Pinkel,et al. Structural chromosome analysis by whole chromosome painting for assessment of radiation-induced genetic damage. , 1992, Journal of radiation research.
[29] D. Pinkel,et al. Rapid translocation frequency analysis in humans decades after exposure to ionizing radiation. , 1992, International journal of radiation biology.
[30] J. Gray,et al. Radiation-induced chromosome aberrations analysed by fluorescence in situ hybridization with a triple combination of composite whole chromosome-specific DNA probes. , 1992, International journal of radiation biology.
[31] P. Lichter,et al. Chromosome analysis by non-isotopic in situ hybridization. , 1992 .
[32] C Cremer,et al. Automated detection of radiation-induced chromosome aberrations following fluorescence in situ hybridization. , 1992, Journal of radiation research.
[33] C Cremer,et al. A tilting device for three‐dimensional microscopy: Application to in situ imaging of interphase cell nuclei , 1992, Journal of microscopy.
[34] T. Cremer,et al. Development of a biological dosimeter for translocation scoring based on two-color fluorescence in situ hybridization of chromosome subsets. , 1992, Journal of radiation research.
[35] A. Natarajan,et al. Frequencies of X-ray-induced chromosome translocations in human peripheral lymphocytes as detected by in situ hybridization using chromosome-specific DNA libraries. , 1992, International journal of radiation biology.
[36] D. Pinkel,et al. Structural Chromosome Analysis by Whole Chromosome Painting for Assessment of Radiation-Induced Genetic Damage , 1992 .
[37] R. Sachs,et al. Using three-color chromosome painting to test chromosome aberration models. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[38] J. Lucas,et al. Translocations between two specific human chromosomes detected by three-color "chromosome painting". , 1993, Cytogenetics and cell genetics.
[39] C Cremer,et al. Role of chromosome territories in the functional compartmentalization of the cell nucleus. , 1993, Cold Spring Harbor symposia on quantitative biology.
[40] C Cremer,et al. Differences of size and shape of active and inactive X‐chromosome domains in human amniotic fluid cell nuclei , 1993, Microscopy research and technique.
[41] P. Bingham,et al. Evidence for channeled diffusion of pre-mRNAs during nuclear RNA transport in metazoans , 1993, The Journal of cell biology.
[42] R K Sachs,et al. Polymer models for interphase chromosomes. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[43] Bernd Rinke,et al. A versatile 2π‐tilting device for fluorescence microscopes , 1994 .
[44] U. Boni. The interphase nucleus as a dynamic structure. , 1994 .
[45] A. Natarajan,et al. Distribution of radiation-induced G1 exchange and terminal deletion breakpoints in Chinese hamster chromosomes as detected by G banding. , 1994, International journal of radiation biology.
[46] S. Hell,et al. Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy. , 1994, Optics letters.
[47] Stefan W. Hell,et al. Measurement of the 4Pi‐confocal point spread function proves 75 nm axial resolution , 1994 .
[48] J. Bedford,et al. A Comparison of Radiation-Induced Aberrations in Human Cells Involving Early and Late Replicating X-Chromosomes , 1994 .
[49] V. Moiseenko,et al. Modelling of DNA breaks and the formation of chromosome aberrations. , 1994, International journal of radiation biology.
[50] P. Bingham,et al. Nuclear pre-mRNA metabolism: channels and tracks. , 1994, Trends in cell biology.
[51] A. Natarajan,et al. Distribution of X-ray-induced G2 chromatid damage among Chinese hamster chromosomes: influence of chromatin conformation. , 1994, Mutation research.
[52] J. Tucker,et al. Analysis of naturally occurring and radiation-induced breakpoint locations in human chromosomes 1, 2 and 4. , 1994, Radiation research.
[53] J Piper,et al. Application of automation to the detection of radiation damage using FISH technology. , 1995, International journal of radiation biology.
[54] B. Trask,et al. Evidence for the organization of chromatin in megabase pair-sized loops arranged along a random walk path in the human G0/G1 interphase nucleus , 1995, The Journal of cell biology.
[55] R. Eils,et al. Three--dimensional imaging approaches and Monte Carlo simulations: development of tools to study the morphology and distribution of chromosome territories and subchromosomal targets in human cell nuclei , 1995 .
[56] G. Obe,et al. Localization of chromosome breakpoints induced by AluI and BamHI in Chinese hamster ovary cells treated in the G1 phase of the cell cycle. , 1995, International journal of radiation biology.
[57] G van den Engh,et al. A random-walk/giant-loop model for interphase chromosomes. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[58] R. Eils,et al. Application of confocal laser microscopy and three‐dimensional Voronoi diagrams for volume and surface estimates of interphase chromosomes , 1995, Journal of microscopy.
[59] J. L. Fernández,et al. X-ray biological dosimetry performed by selective painting of human chromosomes 1 and 2. , 1995, International journal of radiation biology.
[60] Thomas Cremer,et al. Volume ratios of painted chromosome territories 5, 7 and X in female human cell nuclei studied with confocal laser microscopy and the Cavalieri estimator , 1995 .
[61] S. Razin,et al. The channels model of nuclear matrix structure , 1995, BioEssays : news and reviews in molecular, cellular and developmental biology.
[62] S. Hell,et al. Ground-state-depletion fluorscence microscopy: A concept for breaking the diffraction resolution limit , 1995 .
[63] R. Eils,et al. Simulation of the distribution of chromosome targets in cell nuclei under topological constraints , 1995 .
[64] D. Lloyd,et al. Fluorescence in situ hybridization detection of chromosomal aberrations in human lymphocytes: applicability to biological dosimetry. , 1995, International journal of radiation biology.
[65] J. Mcneil,et al. Nonrandom gene organization: structural arrangements of specific pre- mRNA transcription and splicing with SC-35 domains , 1995, The Journal of cell biology.
[66] S. Razin,et al. Specificity and functional significance of DNA interaction with the nuclear matrix: new approaches to clarify the old questions. , 1995, International review of cytology.
[67] Pekka Hänninen,et al. Two-photon excitation 4Pi confocal microscope: enhanced axial resolution microscope for biological research , 1995 .
[68] Roland Eils,et al. Three‐dimensional distribution of centromeric or paracentromeric heterochromatin of chromosomes 1, 7, 15 and 17 in human lymphocyte nuclei studied with light microscopic axial tomography , 1995 .
[69] Z. Tümer,et al. Early copper-histidine treatment for Menkes disease , 1996, Nature Genetics.
[70] J. Mcneil,et al. XIST RNA paints the inactive X chromosome at interphase: evidence for a novel RNA involved in nuclear/chromosome structure , 1996, The Journal of cell biology.
[71] M. Bittner,et al. Chromosome arm painting probes , 1996, Nature Genetics.
[72] J. Slavik,et al. Fluorescence Microscopy and Fluorescent Probes , 1996, Springer US.
[73] M. Hausmann,et al. "IN SITU" ESTIMATES OF THE SPATIAL RESOLUTION FOR "PRACTICAL" FLUORESCENCE MICROSCOPY OF CELL NUCLEI , 1996 .
[74] G. van Kaick,et al. Chromosome aberration analysis in atomic bomb survivors and Thorotrast patients using two- and three-colour chromosome painting of chromosomal subsets. , 1996, International journal of radiation biology.
[75] D. Ward,et al. Karyotyping human chromosomes by combinatorial multi-fluor FISH , 1996, Nature Genetics.
[76] R Eils,et al. Three-dimensional reconstruction of painted human interphase chromosomes: active and inactive X chromosome territories have similar volumes but differ in shape and surface structure , 1996, The Journal of cell biology.