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Molecular Biology

D-Index
67
Citations
12109
World Ranking
1590
National Ranking
801

Overview

Judith L. Campbell is affiliated with the California Institute of Technology in the United States. Their research primarily focuses on the fields of Biochemistry, Genetics, and Molecular Biology, with a particular emphasis on Molecular Biology as a subfield.

The researcher's work spans several key topics, including:

  • DNA Repair Mechanisms
  • CRISPR and Genetic Engineering
  • Genomics and Chromatin Dynamics
  • Advanced biosensing and bioanalysis techniques

Campbell has contributed to multiple publications, covering recent original research and reviews. Notable recent papers include:

  • "FANCD2 and RAD51 recombinase directly inhibit DNA2 nuclease at stalled replication forks and FANCD2 acts as a novel RAD51 mediator in strand exchange to promote genome stability," published in 2023 in Nucleic Acids Research
  • "Error-prone, stress-induced 3' flap-based Okazaki fragment maturation supports cell survival," published in 2021 in Science
  • "FANCD2 and RAD51 recombinase directly inhibit DNA2 nuclease at stalled replication forks and FANCD2 acts as a novel RAD51 mediator in strand exchange to promote genome stability," published in 2021 in bioRxiv (Cold Spring Harbor Laboratory)
  • "Review wetenschappelijk congres American Diabetes Assiociaton," published in 2023 in Nederlands Tijdschrift voor Diabetologie

Frequent coauthors in their research include:

  • Li Zheng
  • Binghui Shen
  • Wenpeng Liu
  • Piotr Polaczek
  • Ivan Roubal

Campbell's publications appear in various scientific venues with multiple contributions to:

  • Nucleic Acids Research
  • Science
  • bioRxiv (Cold Spring Harbor Laboratory)
  • Nederlands Tijdschrift voor Diabetologie

Best Publications

  • BLM–DNA2–RPA–MRN and EXO1–BLM–RPA–MRN constitute two DNA end resection machineries for human DNA break repair

    Amitabh V. Nimonkar;Jochen Genschel;Eri Kinoshita;Piotr Polaczek

  • DNA end resection by Dna2-Sgs1-RPA and its stimulation by Top3-Rmi1 and Mre11-Rad50-Xrs2

    Petr Cejka;Elda Cannavo;Piotr Polaczek;Taro Masuda-Sasa

  • A yeast replicative helicase, Dna2 helicase, interacts with yeast FEN-1 nuclease in carrying out its essential function.

    Martin E. Budd;Judith L. Campbell

  • Analysis of the essential functions of the C-terminal protein/protein interaction domain of Saccharomyces cerevisiae pol epsilon and its unexpected ability to support growth in the absence of the DNA polymerase domain.

    Rajiv Dua;Daniel L. Levy;Judith L. Campbell

  • Deletion mutations affecting autonomously replicating sequence ARS1 of Saccharomyces cerevisiae.

    S. E. Celniker;K. Sweder;Friedrich Srienc;Friedrich Srienc;J. E. Bailey

  • Cloning of Saccharomyces cerevisiae DNA replication genes: isolation of the CDC8 gene and two genes that compensate for the cdc8-1 mutation.

    Chia-Lam Kuo;Judith L. Campbell

  • Mrc1 and DNA polymerase epsilon function together in linking DNA replication and the S phase checkpoint.

    Huiqiang Lou;Makiko Komata;Yuki Katou;Zhiyun Guan

  • Evidence suggesting that Pif1 helicase functions in DNA replication with the Dna2 helicase/nuclease and DNA polymerase delta.

    Martin E. Budd;Clara C. Reis;Stephanie Smith;Kyungjae Myung

  • A yeast gene required for DNA replication encodes a protein with homology to DNA helicases

    Martin E. Budd;Judith L. Campbell

  • Phosphorylation controls timing of Cdc6p destruction: A biochemical analysis.

    Suzanne Elsasser;Yong Chi;Ping Yang;Judith L. Campbell

  • Isolation of the gene encoding yeast DNA polymerase I

    Lianna M. Johnson;Michael Snyder;Lucy M.S. Chang;Ronald W. Davis

  • Human Dna2 is a nuclear and mitochondrial DNA maintenance protein.

    Julien P. Duxin;Benjamin Dao;Peter Martinsson;Nina Rajala

  • DNA2 Encodes a DNA Helicase Essential for Replication of Eukaryotic Chromosomes

    Martin E. Budd;Won-Chae Choe;Judith L. Campbell

  • Genetic recombination and complementation between bacteriophage T7 and cloned fragments of T7 DNA

    J L Campbell;C C Richardson;F W Studier

  • The nuclease activity of the yeast DNA2 protein, which is related to the RecB-like nucleases, is essential in vivo.

    Martin E. Budd;Won-chae Choe;Judith L. Campbell

  • DNA polymerase III, a second essential DNA polymerase, is encoded by the S. cerevisiae CDC2 gene

    Karen C. Sitney;Martin E. Budd;Judith L. Campbell

  • Mammalian DNA2 helicase/nuclease cleaves G-quadruplex DNA and is required for telomere integrity

    Weiqiang Lin;Shilpa Sampathi;Huifang Dai;Changwei Liu;Changwei Liu

  • Isolation and Partial Characterization of a Mutant of Escherichia coli Deficient in DNA Polymerase II

    Judith L. Campbell;Larry Soll;Charles C. Richardson

  • Interaction between yeast Cdc6 protein and B-type cyclin/Cdc28 kinases.

    Suzanne Elsasser;Feng Lou;Bin Wang;Judith L. Campbell

  • Dna2 helicase/nuclease causes replicative fork stalling and double-strand breaks in the ribosomal DNA of Saccharomyces cerevisiae.

    Tao Weitao;Martin Budd;Laura L. Mays Hoopes;Judith L. Campbell

Frequent Co-Authors

Robert A. Bambara
Robert A. Bambara University of Rochester
Friedrich Srienc
Friedrich Srienc University of Minnesota
Charles C. Richardson
Charles C. Richardson Harvard University
Binghui Shen
Binghui Shen City Of Hope National Medical Center
Peter M. J. Burgers
Peter M. J. Burgers Washington University in St. Louis
John Abelson
John Abelson University of California, San Francisco
Michael Snyder
Michael Snyder Stanford University
Susan E. Celniker
Susan E. Celniker Lawrence Berkeley National Laboratory
Leroy Hood
Leroy Hood University of Washington

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