Standout Papers

MicroRNAs 2003 2026 2010 2018 28.9k
  1. MicroRNAs (2004)
    David P. Bartel Cell
  2. MicroRNAs: Target Recognition and Regulatory Functions (2009)
    David P. Bartel Cell
  3. Most mammalian mRNAs are conserved targets of microRNAs (2008)
    Robin C. Friedman, Kyle Kai‐How Farh et al. Genome Research
  4. Predicting effective microRNA target sites in mammalian mRNAs (2015)
    Vikram Agarwal, George W. Bell et al. eLife
  5. Prediction of Mammalian MicroRNA Targets (2003)
    Benjamin P. Lewis, I‐hung Shih et al. Cell
  6. Microarray analysis shows that some microRNAs downregulate large numbers of target mRNAs (2005)
    Lee P. Lim, Nelson C. Lau et al. Nature
  7. Mammalian microRNAs predominantly act to decrease target mRNA levels (2010)
    Huili Guo, Nicholas T. Ingolia et al. Nature
  8. MicroRNA Targeting Specificity in Mammals: Determinants beyond Seed Pairing (2007)
    Andrew Grimson, Kyle Kai‐How Farh et al. Molecular Cell
  9. The impact of microRNAs on protein output (2008)
    Daehyun Baek, Judit Villén et al. Nature
  10. MicroRNAs Modulate Hematopoietic Lineage Differentiation (2003)
    Chang‐Zheng Chen, Ling Li et al. Science
  11. An Abundant Class of Tiny RNAs with Probable Regulatory Roles in Caenorhabditis elegans (2001)
    Nelson C. Lau, Lee P. Lim et al. Science
  12. Metazoan MicroRNAs (2018)
    David P. Bartel Cell
  13. lincRNAs: Genomics, Evolution, and Mechanisms (2013)
    Igor Ulitsky, David P. Bartel Cell
  14. MicroRNAs AND THEIR REGULATORY ROLES IN PLANTS (2006)
    Matthew W. Jones-Rhoades, David P. Bartel et al. Annual Review of Plant Biology
  15. RNAi (2000)
    Phillip D. Zamore, Thomas Tuschl et al. Cell
  16. Computational Identification of Plant MicroRNAs and Their Targets, Including a Stress-Induced miRNA (2004)
    Matthew W. Jones-Rhoades, David P. Bartel Molecular Cell
  17. Prediction of Plant MicroRNA Targets (2002)
    Brenda J. Reinhart, Lee P. Lim et al. Cell
  18. MicroRNAs in plants (2002)
    Brenda J. Reinhart, Bonnie Bartel et al. Genes & Development
  19. A uniform system for microRNA annotation (2003)
    Victor Ambros, Bonnie Bartel et al. RNA
  20. MicroRNA-Directed Cleavage of HOXB8 mRNA (2004)
    Soraya Yekta, I‐hung Shih et al. Science
  21. Expanded identification and characterization of mammalian circular RNAs (2014)
    Junjie U. Guo, Vikram Agarwal et al. Genome biology
  22. The Widespread Impact of Mammalian MicroRNAs on mRNA Repression and Evolution (2005)
    Kyle Kai‐How Farh, Andrew Grimson et al. Science
  23. Intronic microRNA precursors that bypass Drosha processing (2007)
    J. Graham Ruby, Calvin H. Jan et al. Nature
  24. Synthesizing life (2001)
    Jack W. Szostak, David P. Bartel et al. Nature
  25. Microarray profiling of microRNAs reveals frequent coexpression with neighboring miRNAs and host genes (2005)
    Scott Baskerville, David P. Bartel RNA
  26. Micromanagers of gene expression: the potentially widespread influence of metazoan microRNAs (2004)
    David P. Bartel, Changzheng Chen Nature Reviews Genetics
  27. Connecting microRNA Genes to the Core Transcriptional Regulatory Circuitry of Embryonic Stem Cells (2008)
    Alexander Marson, Stuart S. Levine et al. Cell
  28. A diverse and evolutionarily fluid set of microRNAs in Arabidopsis thaliana (2006)
    Ramya Rajagopalan, Hervé Vaucheret et al. Genes & Development
  29. MicroRNAs Regulate Brain Morphogenesis in Zebrafish (2005)
    Antonio J. Giráldez, Ryan M. Cinalli et al. Science
  30. The microRNAs of Caenorhabditis elegans (2003)
    Lee P. Lim, Nelson C. Lau et al. Genes & Development
  31. Vertebrate MicroRNA Genes (2003)
    Lee P. Lim, Margaret E. Glasner et al. Science
  32. Conserved Function of lincRNAs in Vertebrate Embryonic Development despite Rapid Sequence Evolution (2011)
    Igor Ulitsky, Alena Shkumatava et al. Cell
  33. Disrupting the Pairing Between let-7 and Hmga2 Enhances Oncogenic Transformation (2007)
    Christine Mayr, Michael T. Hemann et al. Science
  34. The biochemical basis of microRNA targeting efficacy (2019)
    Sean E. McGeary, Kathy S. Lin et al. Science
  35. Widespread Shortening of 3′UTRs by Alternative Cleavage and Polyadenylation Activates Oncogenes in Cancer Cells (2009)
    Christine Mayr, David P. Bartel Cell
  36. Passenger-Strand Cleavage Facilitates Assembly of siRNA into Ago2-Containing RNAi Enzyme Complexes (2005)
    Christian B. Matranga, Yukihide Tomari et al. Cell
  37. Large-Scale Sequencing Reveals 21U-RNAs and Additional MicroRNAs and Endogenous siRNAs in C. elegans (2006)
    J. Graham Ruby, Michael J. Axtell et al. Cell
  38. A biochemical framework for RNA silencing in plants (2003)
    Guiliang Tang, Brenda J. Reinhart et al. Genes & Development
  39. The action of ARGONAUTE1 in the miRNA pathway and its regulation by the miRNA pathway are crucial for plant development (2004)
    Hervé Vaucheret, Franck Vazquez et al. Genes & Development
  40. Weak seed-pairing stability and high target-site abundance decrease the proficiency of lsy-6 and other microRNAs (2011)
    David M. Garcia, Daehyun Baek et al. Nature Structural & Molecular Biology
  41. Characterization of the piRNA Complex from Rat Testes (2006)
    Nelson C. Lau, Anita G. Seto et al. Science
  42. MicroRNA-Directed Regulation of Arabidopsis AUXIN RESPONSE FACTOR17 Is Essential for Proper Development and Modulates Expression of Early Auxin Response Genes (2005)
    Allison C. Mallory, David P. Bartel et al. The Plant Cell
  43. Mammalian microRNAs: experimental evaluation of novel and previously annotated genes (2010)
    Hou‐Yu Chiang, Lori W. Schoenfeld et al. Genes & Development
  44. Endogenous siRNA and miRNA Targets Identified by Sequencing of the Arabidopsis Degradome (2008)
    Charles Addo‐Quaye, David P. Bartel et al. Current Biology
  45. Targeted mRNA degradation by double-stranded RNA in vitro (1999)
    Thomas Tuschl, Phillip D. Zamore et al. Genes & Development
  46. Endogenous trans-Acting siRNAs Regulate the Accumulation of Arabidopsis mRNAs (2004)
    Franck Vazquez, Hervé Vaucheret et al. Molecular Cell
  47. MicroRNA Regulation of NAC-Domain Targets Is Required for Proper Formation and Separation of Adjacent Embryonic, Vegetative, and Floral Organs (2004)
    Allison C. Mallory, Diana V. Dugas et al. Current Biology
  48. MicroRNA control of PHABULOSA in leaf development: importance of pairing to the microRNA 5′ region (2004)
    Allison C. Mallory, Brenda J. Reinhart et al. The EMBO Journal
  49. Early origins and evolution of microRNAs and Piwi-interacting RNAs in animals (2008)
    Andrew Grimson, Mansi Srivastava et al. Nature
  50. Assessing the ceRNA Hypothesis with Quantitative Measurements of miRNA and Target Abundance (2014)
    Rémy Denzler, Vikram Agarwal et al. Molecular Cell
  51. Poly(A)-tail profiling reveals an embryonic switch in translational control (2014)
    Alexander O. Subtelny, Stephen W. Eichhorn et al. Nature
  52. Principles of Long Noncoding RNA Evolution Derived from Direct Comparison of Transcriptomes in 17 Species (2015)
    Hadas Hezroni, David Koppstein et al. Cell Reports
  53. A Network of Noncoding Regulatory RNAs Acts in the Mammalian Brain (2018)
    Benjamin Kleaveland, Charlie Y. Shi et al. Cell
  54. Most Caenorhabditis elegans microRNAs Are Individually Not Essential for Development or Viability (2007)
    Eric A. Miska, Ezequiel Alvarez-Saavedra et al. PLoS Genetics
  55. RNA G-quadruplexes are globally unfolded in eukaryotic cells and depleted in bacteria (2016)
    Junjie U. Guo, David P. Bartel Science
  56. HIV-1 rev regulation involves recognition of non-Watson-Crick base pairs in viral RNA (1991)
    David P. Bartel, Maria L. Zapp et al. Cell
  57. The guanosine binding site of the Tetrahymena ribozyme (1989)
    François Michel, Rachel Green et al. Nature
  58. Structurally Complex and Highly Active RNA Ligases Derived from Random RNA Sequences (1995)
    Eric H. Ekland, Jack W. Szostak et al. Science

Immediate Impact

94 by Nobel laureates 145 from Science/Nature 312 standout
Sub-graph 1 of 15

Citing Papers

Hepatitis C Virus RNA Functionally Sequesters miR-122
2015 StandoutNobel
A Cas9–guide RNA complex preorganized for target DNA recognition
2015 StandoutScienceNobel
38 intermediate papers

Works of David P. Bartel being referenced

Structure of yeast Argonaute with guide RNA
2012 Nature
MicroRNAs: Target Recognition and Regulatory Functions
2009 Standout
and 27 more

Author Peers

Author Last Decade Papers Cites
David P. Bartel 110512 82785 23012 188 139.6k
Gregory J. Hannon 83531 34690 18216 320 103.4k
Thomas Tuschl 60757 34157 7067 219 74.0k
Cole Trapnell 57498 16372 16023 100 82.8k
Wolfgang Huber 64845 14172 17108 228 105.3k
John L. Rinn 51732 35832 5462 143 63.9k
Howard Y. Chang 65015 39776 3288 341 81.5k
Phillip A. Sharp 75784 18542 5702 428 91.6k
Simon Anders 49534 11349 15138 53 83.9k
Aviv Regev 59947 19997 3489 319 77.9k
Ben Langmead 47882 8482 17852 77 76.0k

All Works

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