A Neuronal piRNA Pathway Inhibits Axon Regeneration in C. elegans
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Andrew D. Chisholm | Yishi Jin | Yishi Jin | A. Chisholm | Kyung Won Kim | N. H. Tang | M. Andrusiak | Zilu Wu | Ngang Heok Tang | Matthew G. Andrusiak | Zilu Wu
[1] Joshua A. Arribere,et al. Efficient Marker-Free Recovery of Custom Genetic Modifications with CRISPR/Cas9 in Caenorhabditis elegans , 2014, Genetics.
[2] G. Hannon,et al. Crystal Structure of Argonaute and Its Implications for RISC Slicer Activity , 2004, Science.
[3] A. Spradling,et al. A novel group of pumilio mutations affects the asymmetric division of germline stem cells in the Drosophila ovary. , 1997, Development.
[4] Z. Weng,et al. Transposition-Driven Genomic Heterogeneity in the Drosophila Brain , 2013, Science.
[5] Christopher M. Player,et al. Large-Scale Sequencing Reveals 21U-RNAs and Additional MicroRNAs and Endogenous siRNAs in C. elegans , 2006, Cell.
[6] J. M. Thomson,et al. Argonaute2 Is the Catalytic Engine of Mammalian RNAi , 2004, Science.
[7] P. Sternberg,et al. The tubulin repertoire of C. elegans sensory neurons and its context dependent role in process outgrowth , 2016, bioRxiv.
[8] V. Ambros,et al. Efficient gene transfer in C.elegans: extrachromosomal maintenance and integration of transforming sequences. , 1991, The EMBO journal.
[9] E. Miska,et al. Tertiary siRNAs Mediate Paramutation in C. elegans , 2015, PLoS genetics.
[10] Weifeng Gu,et al. C. elegans piRNAs Mediate the Genome-wide Surveillance of Germline Transcripts , 2012, Cell.
[11] Cori Bargmann,et al. Laser killing of cells in Caenorhabditis elegans. , 1995, Methods in cell biology.
[12] J. Rinn,et al. Mechanisms of Long Non-coding RNAs in Mammalian Nervous System Development, Plasticity, Disease, and Evolution , 2015, Neuron.
[13] Yishi Jin,et al. Axon Regeneration Pathways Identified by Systematic Genetic Screening in C. elegans , 2011, Neuron.
[14] B. S. Manjunath,et al. Identification of piRNAs in the central nervous system. , 2011, RNA.
[15] R. Ketting,et al. RDE-1 slicer activity is required only for passenger-strand cleavage during RNAi in Caenorhabditis elegans , 2009, Nature Structural &Molecular Biology.
[16] John K. Kim,et al. The Caenorhabditis elegans HEN1 Ortholog, HENN-1, Methylates and Stabilizes Select Subclasses of Germline Small RNAs , 2012, PLoS genetics.
[17] Eugene Berezikov,et al. Piwi and piRNAs act upstream of an endogenous siRNA pathway to suppress Tc3 transposon mobility in the Caenorhabditis elegans germline. , 2008, Molecular cell.
[18] D. Sherwood,et al. Repurposing an endogenous degradation system for rapid and targeted depletion of C. elegans proteins , 2014, Development.
[19] J. Ahringer,et al. PRDE-1 is a nuclear factor essential for the biogenesis of Ruby motif-dependent piRNAs in C. elegans , 2014, Genes & development.
[20] Caifu Chen,et al. A genome-wide RNAi screen identifies factors required for distinct stages of C. elegans piRNA biogenesis , 2014, Genes & development.
[21] Chris Sander,et al. A Role for Neuronal piRNAs in the Epigenetic Control of Memory-Related Synaptic Plasticity , 2012, Cell.
[22] J. Kimble,et al. glp-1 Is required in the germ line for regulation of the decision between mitosis and meiosis in C. elegans , 1987, Cell.
[23] Scott A. Rifkin,et al. Imaging individual mRNA molecules using multiple singly labeled probes , 2008, Nature Methods.
[24] S. Yoo,et al. Analysis of piRNA-Like Small Non-coding RNAs Present in Axons of Adult Sensory Neurons , 2016, Molecular Neurobiology.
[25] M. Siomi,et al. PIWI-Interacting RNA: Its Biogenesis and Functions. , 2015, Annual review of biochemistry.
[26] Haifan Lin,et al. PIWI proteins and PIWI-interacting RNAs in the soma , 2014, Nature.
[27] E. Kandel,et al. Roles for small noncoding RNAs in silencing of retrotransposons in the mammalian brain , 2016, Proceedings of the National Academy of Sciences.
[28] Julius Brennecke,et al. Transcriptional Silencing of Transposons by Piwi and Maelstrom and Its Impact on Chromatin State and Gene Expression , 2012, Cell.
[29] Aravinthan D. T. Samuel,et al. Laser microsurgery in Caenorhabditis elegans. , 2012, Methods in cell biology.
[30] D. Barford,et al. Crystal structure of a PIWI protein suggests mechanisms for siRNA recognition and slicer activity , 2004, The EMBO journal.
[31] P. Sternberg,et al. The tubulin repertoire of Caenorhabditis elegans sensory neurons and its context‑dependent role in process outgrowth , 2016, Molecular biology of the cell.
[32] Pedro J. Batista,et al. PRG-1 and 21U-RNAs interact to form the piRNA complex required for fertility in C. elegans. , 2008, Molecular cell.
[33] C. Mello,et al. piRNAs Initiate an Epigenetic Memory of Nonself RNA in the C. elegans Germline , 2012, Cell.
[34] D. Dickinson,et al. Streamlined Genome Engineering with a Self-Excising Drug Selection Cassette , 2015, Genetics.
[35] K. Venkatesh,et al. Non-coding RNA interact to regulate neuronal development and function , 2014, Front. Cell. Neurosci..
[36] C. Mello,et al. CapSeq and CIP-TAP Identify Pol II Start Sites and Reveal Capped Small RNAs as C. elegans piRNA Precursors , 2012, Cell.
[37] E. Miska,et al. piRNAs: from biogenesis to function , 2014, Development.
[38] Z. Weng,et al. Collapse of Germline piRNAs in the Absence of Argonaute3 Reveals Somatic piRNAs in Flies , 2009, Cell.
[39] K. Oegema,et al. A toolkit for GFP-mediated tissue-specific protein degradation in C. elegans , 2017, Development.
[40] Leonard D. Goldstein,et al. Reduced insulin/IGF-1 signaling restores germ cell immortality to Caenorhabditis elegans Piwi mutants. , 2014, Cell reports.
[41] N. Munakata. [Genetics of Caenorhabditis elegans]. , 1989, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[42] Leonard D. Goldstein,et al. piRNAs Can Trigger a Multigenerational Epigenetic Memory in the Germline of C. elegans , 2012, Cell.
[43] Ravi Sachidanandam,et al. A piRNA pathway primed by individual transposons is linked to de novo DNA methylation in mice. , 2008, Molecular cell.
[44] A. F. Bochner,et al. An Argonaute Transports siRNAs from the Cytoplasm to the Nucleus , 2008, Science.
[45] C. Murphy,et al. The C. elegans adult neuronal IIS/FOXO transcriptome reveals adult phenotype regulators , 2015, Nature.
[46] Yishi Jin,et al. Caenorhabditis elegans neuronal regeneration is influenced by life stage, ephrin signaling, and synaptic branching , 2007, Proceedings of the National Academy of Sciences.
[47] Martin J. Simard,et al. Function, Targets, and Evolution of Caenorhabditis elegans piRNAs , 2012, Science.
[48] Bob Goldstein,et al. Engineering the Caenorhabditis elegans Genome Using Cas9-Triggered Homologous Recombination , 2013, Nature Methods.
[49] George M. Church,et al. Heritable genome editing in C. elegans via a CRISPR-Cas9 system , 2013, Nature Methods.
[50] Anton J. Enright,et al. The endonuclease activity of Mili fuels piRNA amplification that silences LINE1 elements , 2011, Nature.
[51] G. Hannon,et al. One Loop to Rule Them All: The Ping-Pong Cycle and piRNA-Guided Silencing , 2016, Trends in biochemical sciences.
[52] Ravi Sachidanandam,et al. Miwi catalysis is required for piRNA amplification-independent LINE1 transposon silencing , 2011, Nature.
[53] Yishi Jin,et al. S6 Kinase Inhibits Intrinsic Axon Regeneration Capacity via AMP Kinase in Caenorhabditis elegans , 2014, The Journal of Neuroscience.