Visualizing allele-specific expression in single cells reveals epigenetic mosaicism in an H19 loss-of-imprinting mutant
暂无分享,去创建一个
Arjun Raj | A. Raj | M. Bartolomei | Paul Ginart | J. Kalish | Connie L. Jiang | Alice C Yu | Paul Ginart | Jennifer M Kalish | Connie L Jiang | Marisa S Bartolomei
[1] Alexander van Oudenaarden,et al. Variability in gene expression underlies incomplete penetrance , 2009, Nature.
[2] M. Bartolomei,et al. Analysis of Sequence Upstream of the Endogenous H19 Gene Reveals Elements Both Essential and Dispensable for Imprinting , 2002, Molecular and Cellular Biology.
[3] A. Oudenaarden,et al. Nature, Nurture, or Chance: Stochastic Gene Expression and Its Consequences , 2008, Cell.
[4] M. Bartolomei,et al. Developmental Profile of H19 Differentially Methylated Domain (DMD) Deletion Alleles Reveals Multiple Roles of the DMD in Regulating Allelic Expression and DNA Methylation at the Imprinted H19/Igf2 Locus , 2006, Molecular and Cellular Biology.
[5] M. Bartolomei,et al. Tissue-specific insulator function at H19/Igf2 revealed by deletions at the imprinting control region. , 2014, Human molecular genetics.
[6] Scott A. Rifkin,et al. Imaging individual mRNA molecules using multiple singly labeled probes , 2008, Nature Methods.
[7] A. Gabory,et al. The H19 locus: Role of an imprinted non‐coding RNA in growth and development , 2010, BioEssays : news and reviews in molecular, cellular and developmental biology.
[8] M. Mann,et al. Dual effects of superovulation: loss of maternal and paternal imprinted methylation in a dose-dependent manner. , 2010, Human molecular genetics.
[9] Rajan P Kulkarni,et al. Single-Cell Phenotyping within Transparent Intact Tissue through Whole-Body Clearing , 2014, Cell.
[10] E. Zackai,et al. Clinical features of three girls with mosaic genome‐wide paternal uniparental isodisomy , 2013, American journal of medical genetics. Part A.
[11] M. Bartolomei,et al. A 5' 2-kilobase-pair region of the imprinted mouse H19 gene exhibits exclusive paternal methylation throughout development , 1997, Molecular and cellular biology.
[12] N. Friedman,et al. Dynamic and static maintenance of epigenetic memory in pluripotent and somatic cells , 2014, Nature.
[13] Nacho Molina,et al. Mammalian Genes Are Transcribed with Widely Different Bursting Kinetics , 2011, Science.
[14] Jeannie T. Lee,et al. X-Inactivation, Imprinting, and Long Noncoding RNAs in Health and Disease , 2013, Cell.
[15] Virginia Savova,et al. Autosomal monoallelic expression: genetics of epigenetic diversity? , 2013, Current opinion in genetics & development.
[16] Marshall J. Levesque,et al. Visualizing SNVs to quantify allele-specific expression in single cells , 2013, Nature Methods.
[17] Simon James Tunster,et al. Imprinted genes in mouse placental development and the regulation of fetal energy stores. , 2013, Reproduction.
[18] A. West,et al. Antagonism between DNA hypermethylation and enhancer-blocking activity at the H19 DMD is uncovered by CpG mutations , 2004, Nature Genetics.
[19] M. Bartolomei,et al. The Transcriptional Status but Not the Imprinting Control Region Determines Allele-Specific Histone Modifications at the Imprinted H19 Locus , 2007, Molecular and Cellular Biology.
[20] M. Bartolomei,et al. Epigenetics and imprinting in human disease. , 2014, The International journal of developmental biology.
[21] E. Cox,et al. Real-Time Kinetics of Gene Activity in Individual Bacteria , 2005, Cell.
[22] Michael B. Elowitz,et al. Dynamic Heterogeneity and DNA Methylation in Embryonic Stem Cells , 2014, Molecular cell.
[23] J. Christman,et al. 5-Azacytidine and 5-aza-2′-deoxycytidine as inhibitors of DNA methylation: mechanistic studies and their implications for cancer therapy , 2002, Oncogene.
[24] D. Tranchina,et al. Stochastic mRNA Synthesis in Mammalian Cells , 2006, PLoS biology.
[25] A. van Oudenaarden,et al. Allele-specific detection of single mRNA molecules in situ , 2013, Nature Methods.
[26] M. Bartolomei,et al. Disruption of Imprinted Gene Methylation and Expression in Cloned Preimplantation Stage Mouse Embryos1 , 2003, Biology of reproduction.
[27] R. Sandberg,et al. Single-Cell RNA-Seq Reveals Dynamic, Random Monoallelic Gene Expression in Mammalian Cells , 2014, Science.
[28] Lei Yuan,et al. A role of stochastic phenotype switching in generating mosaic endothelial cell heterogeneity , 2016, Nature Communications.
[29] C. Gicquel,et al. Epimutation of the telomeric imprinting center region on chromosome 11p15 in Silver-Russell syndrome , 2005, Nature Genetics.
[30] R. Singer,et al. Transcriptional Pulsing of a Developmental Gene , 2006, Current Biology.
[31] John N. Hutchinson,et al. Widespread Monoallelic Expression on Human Autosomes , 2007, Science.
[32] K. Pfeifer,et al. Imprinting of mouse Kvlqt1 is developmentally regulated. , 1998, Human molecular genetics.
[33] Jun S. Liu,et al. Quantitative and functional interrogation of parent-of-origin allelic expression biases in the brain , 2015, eLife.
[34] R. Sandberg,et al. Random monoallelic expression of autosomal genes: stochastic transcription and allele-level regulation , 2015, Nature Reviews Genetics.
[35] M. Bartolomei,et al. In Vitro Culture Increases the Frequency of Stochastic Epigenetic Errors at Imprinted Genes in Placental Tissues from Mouse Concepti Produced Through Assisted Reproductive Technologies1 , 2014, Biology of reproduction.
[36] A. Feinberg,et al. The history of cancer epigenetics , 2004, Nature Reviews Cancer.
[37] Stephen R Quake,et al. Single-Cell DNA-Methylation Analysis Reveals Epigenetic Chimerism in Preimplantation Embryos , 2013, Science.