The A- and B-type nuclear lamin networks: microdomains involved in chromatin organization and transcription.
暂无分享,去创建一个
Thomas Cremer | Robert D. Goldman | Masataka Kinjo | Irina Solovei | Takeshi Shimi | Anne E. Goldman | Chan-Gi Pack | T. Cremer | I. Solovei | T. Shimi | S. Adam | R. Goldman | M. Kinjo | C. Pack | D. Shumaker | S. Kojima | Dale K. Shumaker | Katrin Pfleghaar | A. Goldman | Stephen A. Adam | Katrin Pfleghaar | Shin Ichiro Kojima | S. Adam
[1] Y. Hiraoka,et al. Dynamic interaction between BAF and emerin revealed by FRAP, FLIP, and FRET analyses in living HeLa cells. , 2004, Journal of structural biology.
[2] M. Peter,et al. Expression of chicken lamin B2 in Escherichia coli: characterization of its structure, assembly, and molecular interactions , 1991, The Journal of cell biology.
[3] G. Borisy,et al. Improved silencing vector co-expressing GFP and small hairpin RNA. , 2004, BioTechniques.
[4] U. K. Laemmli,et al. Cleavage of structural proteins during , 1970 .
[5] J. Lis,et al. Efficient release from promoter-proximal stall sites requires transcript cleavage factor TFIIS. , 2005, Molecular cell.
[6] C. Stewart,et al. The laminopathies: the functional architecture of the nucleus and its contribution to disease. , 2006, Annual review of genomics and human genetics.
[7] E. Cabuy,et al. Primary laminopathy fibroblasts display altered genome organization and apoptosis , 2007, Aging cell.
[8] M. Schnölzer,et al. Identification of a novel, highly variable amino‐terminal amino acid sequence element in the nuclear intermediate filament protein lamin B2 from higher vertebrates , 2006, FEBS letters.
[9] U Aebi,et al. Nuclear lamins: their structure, assembly, and interactions. , 1998, Journal of structural biology.
[10] D. Reinberg,et al. Promoter-proximal stalling results from the inability to recruit transcription factor IIH to the transcription complex and is a regulated event. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[11] J. Ragoussis,et al. Large-scale chromatin organization of the major histocompatibility complex and other regions of human chromosome 6 and its response to interferon in interphase nuclei. , 2000, Journal of cell science.
[12] R. Goldman,et al. Pathway of incorporation of microinjected lamin A into the nuclear envelope , 1992, The Journal of cell biology.
[13] E M Manders,et al. Dynamics of the nuclear lamina as monitored by GFP-tagged A-type lamins. , 1999, Journal of cell science.
[14] P. Lichter,et al. Histone acetylation increases chromatin accessibility , 2005, Journal of Cell Science.
[15] R. Schneider,et al. Dynamics and interplay of nuclear architecture, genome organization, and gene expression. , 2007, Genes & development.
[16] U. Aebi,et al. The nuclear lamina is a meshwork of intermediate-type filaments , 1986, Nature.
[17] Sui Huang,et al. Alteration of nuclear lamin organization inhibits RNA polymerase II–dependent transcription , 2002, The Journal of cell biology.
[18] S. Berger. The complex language of chromatin regulation during transcription , 2007, Nature.
[19] D. Spector,et al. A genetic locus targeted to the nuclear periphery in living cells maintains its transcriptional competence , 2008, The Journal of cell biology.
[20] Watt W Webb,et al. Biological and chemical applications of fluorescence correlation spectroscopy: a review. , 2002, Biochemistry.
[21] E. Bertolino,et al. Transcriptional repression mediated by repositioning of genes to the nuclear lamina , 2008, Nature.
[22] R. Reed,et al. Splicing promotes rapid and efficient mRNA export in mammalian cells , 2008, Proceedings of the National Academy of Sciences.
[23] Y. Ohshima,et al. Nucleocytoplasmic transport of fluorescent mRNA in living mammalian cells: nuclear mRNA export is coupled to ongoing gene transcription , 2006, Genes to cells : devoted to molecular & cellular mechanisms.
[24] E. C. Schirmer,et al. The Stability of the Nuclear Lamina Polymer Changes with the Composition of Lamin Subtypes According to Their Individual Binding Strengths* , 2004, Journal of Biological Chemistry.
[25] A. Gropp,et al. Staining of constitutive heterochromatin in mammalian chromosomes with a new fluorochrome. , 1972, Experimental cell research.
[26] C. López-Otín,et al. Defective prelamin A processing and muscular and adipocyte alterations in Zmpste24 metalloproteinase–deficient mice , 2002, Nature Genetics.
[27] J. Aten,et al. DNA double labelling with IdUrd and CldUrd for spatial and temporal analysis of cell proliferation and DNA replication , 1992, The Histochemical Journal.
[28] M. Speicher,et al. Single-cell isolation from cell suspensions and whole genome amplification from single cells to provide templates for CGH analysis , 2007, Nature Protocols.
[29] D L Spector,et al. Dynamic organization of DNA replication in mammalian cell nuclei: spatially and temporally defined replication of chromosome-specific alpha-satellite DNA sequences , 1992, The Journal of cell biology.
[30] M. Mann,et al. A Functional Interaction between the Survival Motor Neuron Complex and RNA Polymerase II , 2001, The Journal of cell biology.
[31] Stuart A. Wilson,et al. The integrity of a lamin-B1-dependent nucleoskeleton is a fundamental determinant of RNA synthesis in human cells , 2008, Journal of Cell Science.
[32] R. Goldman,et al. The dynamic properties and possible functions of nuclear lamins. , 1995, International review of cytology.
[33] L. Wessels,et al. Domain organization of human chromosomes revealed by mapping of nuclear lamina interactions , 2008, Nature.
[34] M. Hof,et al. Fluorescence spectroscopy in biology : advanced methods and their applications to membranes, proteins, DNA, and cells , 2005 .
[35] Elizabeth Kerr,et al. Recruitment to the Nuclear Periphery Can Alter Expression of Genes in Human Cells , 2008, PLoS genetics.
[36] M. Dabauvalle,et al. The nuclear lamina in Heidelberg and Würzburg: a personal view. , 2005, European Journal of Cell Biology.
[37] H. Burkhardt,et al. Spatial quantitative analysis of fluorescently labeled nuclear structures: Problems, methods, pitfalls , 2008, Chromosome Research.
[38] Chiu Fan Lee,et al. Defects in lamin B 1 expression or processing affect interphase chromosome position and gene expression , 2007 .
[39] F. Collins,et al. Mutant nuclear lamin A leads to progressive alterations of epigenetic control in premature aging. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[40] F. W. Flitney,et al. Insights into the Dynamic Properties of Keratin Intermediate Filaments in Living Epithelial Cells , 2001, The Journal of cell biology.
[41] R. Goldman,et al. Nuclear Lamins a and B1: Different Pathways of Assembly during Nuclear Envelope Formation in Living Cells , 2000 .
[42] Chiu Fan Lee,et al. Defects in lamin B1 expression or processing affect interphase chromosome position and gene expression , 2007, The Journal of cell biology.
[43] R. Bernards,et al. A System for Stable Expression of Short Interfering RNAs in Mammalian Cells , 2002, Science.
[44] Thomas Cremer,et al. Spatial preservation of nuclear chromatin architecture during three-dimensional fluorescence in situ hybridization (3D-FISH). , 2002, Experimental cell research.
[45] Peter Teague,et al. Differences in the Localization and Morphology of Chromosomes in the Human Nucleus , 1999, The Journal of cell biology.
[46] Richard T. Lee,et al. Lamins A and C but Not Lamin B1 Regulate Nuclear Mechanics* , 2006, Journal of Biological Chemistry.
[47] E. Delbarre,et al. The truncated prelamin A in Hutchinson-Gilford progeria syndrome alters segregation of A-type and B-type lamin homopolymers. , 2006, Human molecular genetics.
[48] B. Peterlin,et al. Controlling the elongation phase of transcription with P-TEFb. , 2006, Molecular cell.
[49] Kaushik Sengupta,et al. Nuclear lamins: major factors in the structural organization and function of the nucleus and chromatin. , 2008, Genes & development.
[50] M. Tamura,et al. Microenvironment and effect of energy depletion in the nucleus analyzed by mobility of multiple oligomeric EGFPs. , 2006, Biophysical journal.
[51] Yosef Gruenbaum,et al. Accumulation of mutant lamin A causes progressive changes in nuclear architecture in Hutchinson–Gilford progeria syndrome , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[52] R. van Driel,et al. Ki-67 detects a nuclear matrix-associated proliferation-related antigen. I. Intracellular localization during interphase. , 1989, Journal of cell science.
[53] Thomas Cremer,et al. Differences in centromere positioning of cycling and postmitotic human cell types , 2004, Chromosoma.
[54] D. Reinberg,et al. Facultative heterochromatin: is there a distinctive molecular signature? , 2007, Molecular cell.
[55] T. Shimi,et al. Alterations in mitosis and cell cycle progression caused by a mutant lamin A known to accelerate human aging , 2007, Proceedings of the National Academy of Sciences.
[56] M. Bergo,et al. Lamin B1 is required for mouse development and nuclear integrity. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[57] Brian Burke,et al. Loss of a-Type Lamin Expression Compromises Nuclear Envelope Integrity Leading to Muscular Dystrophy , 1999, The Journal of cell biology.
[58] M. Gustafsson,et al. Subdiffraction Multicolor Imaging of the Nuclear Periphery with 3D Structured Illumination Microscopy , 2008, Science.
[59] Thomas Cremer,et al. Chromosome order in HeLa cells changes during mitosis and early G1, but is stably maintained during subsequent interphase stages , 2003, The Journal of cell biology.