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Nucleic Acids Research|June 14, 2013
Programmable repression and activation of bacterial gene expression using an engineered CRISPR-Cas systemDavid Bikard, Wenyan Jiang, Poulami Samai, et al.
Cell Host & Microbe|February 3, 2019
Spacer Acquisition Rates Determine the Immunological Diversity of the Type II CRISPR-Cas Immune ResponseRobert Heler, Addison V Wright, Marija Vucelja, et al.
Science (New York, N.Y.)|April 10, 2025
Cat1 forms filament networks to degrade NAD+ during the type III CRISPR-Cas antiviral responseChristian F Baca, Puja Majumder, James H Hickling, et al.
The Journal of Biological Chemistry|July 13, 2004
Anchoring of surface proteins to the cell wall of Staphylococcus aureus. A conserved arginine residue is required for efficient catalysis of sortase ALuciano A Marraffini, Hung Ton-That, Yinong Zong, et al.
Cell Host & Microbe|September 28, 2021
Viral recombination systems limit CRISPR-Cas targeting through the generation of escape mutationsAmer A Hossain, Jon McGinn, Alexander J Meeske, et al.
Plos Genetics|October 3, 2013
Dealing with the evolutionary downside of CRISPR immunity: bacteria and beneficial plasmidsWenyan Jiang, Inbal Maniv, Fawaz Arain, et al.
Biorxiv : the Preprint Server for Biology|November 26, 2025
Cap1 forms a cyclic tetra-adenylate-induced membrane pore during the type III-A CRISPR-Cas immune responsePuja Majumder, Clare W Cahir, Cameron G Roberts, et al.
Molecular Cell|December 27, 2016
Mutations in Cas9 Enhance the Rate of Acquisition of Viral Spacer Sequences during the CRISPR-Cas Immune ResponseRobert Heler, Addison V Wright, Marija Vucelja, et al.
Cell|May 12, 2015
Co-transcriptional DNA and RNA Cleavage during Type III CRISPR-Cas ImmunityPoulami Samai, Nora Pyenson, Wenyan Jiang, et al.
Cell Host & Microbe|December 3, 2024
Cas10 relieves host growth arrest to facilitate spacer retention during type III-A CRISPR-Cas immunityNaama Aviram, Amanda K Shilton, Nia G Lyn, et al.
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