Alexei A. Aravin

Active 2001–2025

61
Papers
26,474
Citations
49
h-index
60
i10-index

Citations

Citations per year for Alexei A. Aravin1970: 2 citations1982: 1 citations1992: 1 citations1997: 2 citations2000: 1 citations2001: 7 citations2002: 24 citations2003: 22 citations2004: 64 citations2005: 158 citations2006: 163 citations2007: 326 citations2008: 464 citations2009: 643 citations2010: 586 citations2011: 579 citations2012: 492 citations2013: 528 citations2014: 472 citations2015: 437 citations2016: 311 citations2017: 327 citations2018: 320 citations2019: 766 citations2020: 771 citations2021: 807 citations2022: 627 citations2023: 497 citations2024: 650 citations2025: 328 citations2026: 7 citations1971–1981: no citations, so these years are not shown1983–1991: no citations, so these years are not shown1993–1996: no citations, so these years are not shown1998–1999: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorUnited States: 2,857 citing papers, 31% of this breakdownChina: 1,396 citing papers, 15.2% of this breakdownUnited Kingdom: 501 citing papers, 5.4% of this breakdownGermany: 498 citing papers, 5.4% of this breakdownFrance: 422 citing papers, 4.6% of this breakdownItaly: 313 citing papers, 3.4% of this breakdownJapan: 308 citing papers, 3.3% of this breakdownCanada: 248 citing papers, 2.7% of this breakdownAustralia: 224 citing papers, 2.4% of this breakdownSpain: 193 citing papers, 2.1% of this breakdownNetherlands: 187 citing papers, 2% of this breakdownSwitzerland: 167 citing papers, 1.8% of this breakdown
0%31%Other 20.7%

Fields

  • Biochemistry, Genetics and Molecular Biology68.6%
  • Agricultural and Biological Sciences18.4%
  • Medicine7.5%
  • Immunology and Microbiology2.2%
  • Environmental Science1.1%
  • Neuroscience1.1%
  • Other1.1%

Topics

  • MicroRNA in disease regulation14.5%
  • Cancer-related molecular mechanisms research7.1%
  • Chromosomal and Genetic Variations6.7%
  • Circular RNAs in diseases5.7%
  • RNA modifications and cancer5.6%
  • CRISPR and Genetic Engineering5.5%
  • Other54.9%

Coauthors

All papers

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  1. Discrete Small RNA-Generating Loci as Master Regulators of Transposon Activity in Drosophila

    Authors: , , , , , , - Cell 2007 cited by 2,626

  2. Human MicroRNA Targets

    Authors: , , , , , - PLoS Biology 2004 cited by 3,899

  3. A novel class of small RNAs bind to MILI protein in mouse testes

    Authors: , , , , , , , , , , , , , , , , - Nature 2006 cited by 1,545

  4. A Mammalian microRNA Expression Atlas Based on Small RNA Library Sequencing

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Veit Hornung, Grace Teng, Gunther Hartmann, Miklós Palkovits, Roberto Di Lauro, Peter Wernet, Giuseppe Macino, Charles E. Rogler, James W. Nagle, Jingyue Ju, F. Nina Papavasiliou, Thomas Benzing, Peter Lichter, Wayne Tam, Michael Brownstein, Andreas Bosio, Arndt Borkhardt, James J. Russo, Chris Sander, Mihaela Zavolan, Thomas Tuschl - Cell 2007 cited by 3,687

  5. PIWI-interacting small RNAs: the vanguard of genome defence

    Authors: , , , - Nature Reviews Molecular Cell Biology 2011 cited by 1,306

  6. DNA targeting and interference by a bacterial Argonaute nuclease

    Authors: , , , , , , , , , , , - Nature 2020 cited by 210

  7. A piRNA Pathway Primed by Individual Transposons Is Linked to De Novo DNA Methylation in Mice

    Authors: , , , , , , , - Molecular Cell 2008 cited by 1,187

  8. Developmentally Regulated piRNA Clusters Implicate MILI in Transposon Control

    Authors: , , , , - Science 2007 cited by 1,049

  9. DNA interference and beyond: structure and functions of prokaryotic Argonaute proteins

    Authors: , , - Nature Communications 2018 cited by 178

  10. Programmable DNA cleavage by Ago nucleases from mesophilic bacteria Clostridium butyricum and Limnothrix rosea

    Authors: , , , , - Nucleic Acids Research 2019 cited by 173

  11. The Expanded Universe of Prokaryotic Argonaute Proteins

    Authors: , , - mBio 2018 cited by 188

  12. Double-stranded RNA-mediated silencing of genomic tandem repeats and transposable elements in the D. melanogaster germline

    Authors: , , , , , - Current Biology 2001 cited by 802

  13. Piwi induces piRNA-guided transcriptional silencing and establishment of a repressive chromatin state

    Authors: , , , , , , , , - Genes & Development 2013 cited by 542

  14. The Piwi-piRNA Pathway Provides an Adaptive Defense in the Transposon Arms Race

    Authors: , , - Science 2007 cited by 1,106

  15. The control of gene expression and cell identity by H3K9 trimethylation

    Authors: , , - Development 2019 cited by 164

  16. Bacterial Argonaute Samples the Transcriptome to Identify Foreign DNA

    Authors: , , , , - Molecular Cell 2013 cited by 260

  17. Pseudogene-derived small interfering RNAs regulate gene expression in mouse oocytes

    Authors: , , , , , , , , , , - Nature 2008 cited by 1,063

  18. Cytoplasmic Compartmentalization of the Fetal piRNA Pathway in Mice

    Authors: , , , , , - PLoS Genetics 2009 cited by 290

  19. Transgenerationally inherited piRNAs trigger piRNA biogenesis by changing the chromatin of piRNA clusters and inducing precursor processing

    Authors: , , , , , , , , , , , - Genes & Development 2014 cited by 282

  20. piRNA Biogenesis in Drosophila melanogaster

    Authors: , , - Trends in Genetics 2017 cited by 185

  21. A programmable pAgo nuclease with universal guide and target specificity from the mesophilic bacterium Kurthia massiliensis

    Authors: , , , , - Nucleic Acids Research 2021 cited by 93

  22. An Epigenetic Role for Maternally Inherited piRNAs in Transposon Silencing

    Authors: , , , , , - Science 2008 cited by 796

  23. The histone chaperone CAF-1 safeguards somatic cell identity

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Alexei A. Aravin, Yang Shi, Peter J. Park, Josef Penninger, Johannes Zuber, Konrad Hochedlinger - Nature 2015 cited by 279

  24. Programmable RNA targeting by bacterial Argonaute nucleases with unconventional guide binding and cleavage specificity

    Authors: , , , , , , , , , - Nature Communications 2022 cited by 68