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Genetics

D-Index
57
Citations
8405
World Ranking
3437
National Ranking
1486

Overview

Anne E. Simon is affiliated with the University of Maryland, College Park in the United States. Their research focuses on the fields of Agricultural and Biological Sciences as well as Biochemistry, Genetics and Molecular Biology, with considerable emphasis on Plant Science and Molecular Biology.

The primary topics explored in their work include:

  • Plant Virus Research Studies
  • RNA and protein synthesis mechanisms
  • Plant and Fungal Interactions Research
  • Viral Infections and Immunology Research
  • Plant Disease Resistance and Genetics
  • CRISPR and Genetic Engineering
  • RNA Research and Splicing

Anne E. Simon's recent publications demonstrate active contributions to the understanding of viral mechanisms and RNA processes. Notable papers include:

  • "RNAcanvas: interactive drawing and exploration of nucleic acid structures" (2023) published in Nucleic Acids Research
  • "The Multifunctional Long-Distance Movement Protein of Pea Enation Mosaic Virus 2 Protects Viral and Host Transcripts from Nonsense-Mediated Decay" (2020) published in mBio
  • "Targeting of viral RNAs by Upf1-mediated RNA decay pathways" (2020) published in Current Opinion in Virology
  • "Structural Analysis and Whole Genome Mapping of a New Type of Plant Virus Subviral RNA: Umbravirus-Like Associated RNAs" (2021) published in Viruses
  • "Complete Nucleotide Sequence, Genome Organization, and Comparative Genomic Analyses of Citrus Yellow-Vein Associated Virus (CYVaV)" (2021) published in Frontiers in Microbiology

The frequent co-authors collaborating with Anne E. Simon include:

  • Philip Z. Johnson
  • Sayanta Bera
  • Feng Gao
  • Jared P. May
  • Muhammad Ilyas

Their publications have appeared predominantly in these venues:

  • Nucleic Acids Research
  • Viruses
  • Journal of Virology
  • bioRxiv (Cold Spring Harbor Laboratory)
  • mBio

Best Publications

  • New insights into the mechanisms of RNA recombination.

    Peter D. Nagy;Anne E. Simon

  • Genes Encoding Glycine-Rich Arabidopsis thaliana Proteins with RNA-Binding Motifs Are Influenced by Cold Treatment and an Endogenous Circadian Rhythm

    C D Carpenter;J A Kreps;A E Simon

  • Effects of defective interfering viruses on virus replication and pathogenesis in vitro and in vivo.

    Laurent Roux;Anne E. Simon;John J. Holland

  • PLANT VIRUS SATELLITE AND DEFECTIVE INTERFERING RNAS: New Paradigms for a New Century

    Anne E. Simon;Marilyn J. Roossinck;Zoltán Havelda

  • Trajectories of the ribosome as a Brownian nanomachine.

    Ali Dashti;Peter Schwander;Robert Langlois;Russell Fung

  • cDNA clones for Brassica napus seed storage proteins: evidence from nucleotide sequence analysis that both subunits of napin are cleaved from a precursor polypeptide.

    Crouch Ml;Tenbarge Km;Simon Ae;Ferl R

  • 3' cap-independent translation enhancers of plant viruses.

    Anne E. Simon;W. Allen Miller

  • Recombination between satellite RNAs of turnip crinkle virus.

    P. J. Cascone;C. D. Carpenter;Xiao Hua Li;A. E. Simon

  • The virulent satellite RNA of turnip crinkle virus has a major domain homologous to the 3' end of the helper virus genome.

    Anne E. Simon;Stephen H. Howell

  • Turnip crinkle virus defective interfering RNAs intensify viral symptoms and are generated de novo

    Xiao Hua Li;L. A. Heaton;T. J. Morris;A. E. Simon

  • Requirement of a 3'-terminal stem-loop in in vitro transcription by an RNA-dependent RNA polymerase.

    Chuanzheng Song;Anne E. Simon

  • Sequences and structures required for recombination between virus-associated RNAs

    Pamela J. Cascone;Tarik F. Haydar;Anne E. Simon

  • Interferon-regulated Mx genes are not responsive to interleukin-1, tumor necrosis factor, and other cytokines.

    A Simon;J Fäh;O Haller;P Staeheli

  • Nucleotide sequence of a cDNA clone of Brassica napus 12S storage protein shows homology with legumin from Pisum sativum

    Anne E. Simon;Karen M. Tenbarge;Steve R. Scofield;Ruth R. Finkelstein

  • Dissecting RNA recombination in vitro: role of RNA sequences and the viral replicase.

    Peter D. Nagy;Chunxia Zhang;Anne E. Simon

  • A NOVEL 3'-END REPAIR MECHANISM IN AN RNA VIRUS

    Peter D. Nagy;Clifford D. Carpenter;Anne E. Simon

  • RNA-dependent RNA polymerase from plants infected with turnip crinkle virus can transcribe (+)- and (-)-strands of virus-associated RNAs.

    Chuanzheng Song;Anne E. Simon

  • RNA elements required for RNA recombination function as replication enhancers in vitro and in vivo in a plus-strand RNA virus.

    Peter D. Nagy;Judit Pogany;Anne E. Simon

  • Solution structure of the cap-independent translational enhancer and ribosome-binding element in the 3′ UTR of turnip crinkle virus

    Xiaobing Zuo;Jinbu Wang;Ping Yu;Ping Yu;Dan Eyler

  • The 3' proximal translational enhancer of Turnip crinkle virus binds to 60S ribosomal subunits.

    Vera A. Stupina;Arturas Meskauskas;John C. McCormack;Yaroslava G. Yingling

Frequent Co-Authors

Peter D. Nagy
Peter D. Nagy University of Kentucky
Jonathan D. Dinman
Jonathan D. Dinman University of Maryland, College Park
Stephen H. Howell
Stephen H. Howell Iowa State University
Joachim Frank
Joachim Frank Columbia University
Lee Gehrke
Lee Gehrke Harvard University
W. Allen Miller
W. Allen Miller Iowa State University
Benjamin R. tenOever
Benjamin R. tenOever Icahn School of Medicine at Mount Sinai
John J. Holland
John J. Holland University of California, San Diego
Marilyn J. Roossinck
Marilyn J. Roossinck Pennsylvania State University
Robert J. Ferl
Robert J. Ferl University of Florida

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