Research map: Bacterial immune systems

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Papers in this map

  1. A Programmable Dual-RNA–Guided DNA Endonuclease in Adaptive Bacterial Immunity · Martin Jínek · 2012 · 17808 citations · Cited by this paper
  2. Detection of nontuberculous mycobacteria in milk and nasal swab of cattle tested positive by tuberculin skin test, Interferon-γ release assay and MycoPac dual lateral flow assay · 2026 · Related
  3. CRISPR-Cas systems for editing, regulating and targeting genomes · Jeffry D. Sander · 2014 · 3228 citations · Cited by this paper
  4. Integrating machine learning and WGCNA to identify core candidate genes and decipher immune-related molecular networks in TcdA/TcdB-associated CDI · 2026 · Related
  5. An updated evolutionary classification of CRISPR–Cas systems · Kira S. Makarova · 2015 · 2640 citations · Cited by this paper
  6. Duganella paludis sp. nov. and Pedobacter jaeyakensis sp. nov., isolated from the wetland fresh water · 2026 · Related
  7. Evolutionary classification of CRISPR–Cas systems: a burst of class 2 and derived variants · Kira S. Makarova · 2019 · 2563 citations · Cited by this paper
  8. Chryseobacterium intestini sp. nov., a denitrifying bacterium isolated from the intestine of the Spanish mackerel, Scomberomorus niphonius · 2026 · Related
  9. Evolution and classification of the CRISPR–Cas systems · Kira S. Makarova · 2011 · 2561 citations · Cited by this paper
  10. Stenotrophomonas maltophilia in a Rhipicephalus linnaei tick cell culture: detection, antibiotic resistance and multi-locus sequence typing · 2026 · Related
  11. The next generation of CRISPR–Cas technologies and applications · Adrian Pickar‐Oliver · 2019 · 1543 citations · Cited by this paper
  12. Deterministic selection and compositional turnover in Parkinson’s disease-associated gut dysbiosis · 2026 · Related
  13. Phage therapy: An alternative to antibiotics in the age of multi-drug resistance · Derek M. Lin · 2017 · 1158 citations · Cited by this paper
  14. Marine microorganisms as probiotics in the aquaculture of sea cucumber (Apostichopus japonicus) · 2026 · Related
  15. The Biology of CRISPR-Cas: Backward and Forward · Frank Hille · 2018 · 1120 citations · Cited by this paper
  16. Coordinated attenuation of oxidative stress metabolism and alterations of root exudates in maize (Zea mays L.) induced by Streptomyces rhizobacteria · 2026 · Related
  17. CRISPR-Cas Systems: Prokaryotes Upgrade to Adaptive Immunity · Rodolphe Barrangou · 2014 · 938 citations · Cited by this paper
  18. Phagetherapy updates: New frontiers against antibiotic resistance · 2025 · Related
  19. Diverse evolutionary roots and mechanistic variations of the CRISPR-Cas systems · Prarthana Mohanraju · 2016 · 712 citations · Cited by this paper
  20. Advancing CRISPR genome editing into gene therapy clinical trials: progress and future prospects · 2025 · Related
  21. Diverse enzymatic activities mediate antiviral immunity in prokaryotes · Linyi Alex Gao · 2020 · 700 citations · Cited by this paper
  22. Molecular memory of prior infections activates the CRISPR/Cas adaptive bacterial immunity system · Kirill A. Datsenko · 2012 · 602 citations · Cited by this paper
  23. The phage abortive infection system, ToxIN, functions as a protein–RNA toxin–antitoxin pair · Peter C. Fineran · 2009 · 585 citations · Cited by this paper
  24. The CRISPR-Cas immune system: Biology, mechanisms and applications · Devashish Rath · 2015 · 585 citations · Cited by this paper
  25. Past, present, and future of CRISPR genome editing technologies · Martin Pačesa · 2024 · 585 citations · Cited by this paper
  26. CRISPR/Cas System: Recent Advances and Future Prospects for Genome Editing · Hakim Manghwar · 2019 · 542 citations · Cited by this paper
  27. Abortive Infection: Bacterial Suicide as an Antiviral Immune Strategy · Anna Lopatina · 2020 · 526 citations · Cited by this paper
  28. Annotation and Classification of CRISPR-Cas Systems · Kira S. Makarova · 2015 · 455 citations · Cited by this paper
  29. Engineering Phage Host-Range and Suppressing Bacterial Resistance through Phage Tail Fiber Mutagenesis · Kevin M. Yehl · 2019 · 455 citations · Cited by this paper
  30. An expanded arsenal of immune systems that protect bacteria from phages · Adi Millman · 2022 · 452 citations · Cited by this paper
  31. CRISPR-Cas systems: Overview, innovations and applications in human disease research and gene therapy · Yuanyuan Xu · 2020 · 419 citations · Cited by this paper
  32. The CRISPR-Cas toolbox and gene editing technologies · Guanwen Liu · 2021 · 418 citations · Cited by this paper
  33. CRISPR Interference Directs Strand Specific Spacer Acquisition · Daan C. Swarts · 2012 · 396 citations · Cited by this paper
  34. Multiple mechanisms for CRISPR–Cas inhibition by anti-CRISPR proteins · Joseph Bondy‐Denomy · 2015 · 390 citations · Cited by this paper
  35. Highlights of the DNA cutters: a short history of the restriction enzymes · Wil A. M. Loenen · 2013 · 385 citations · Cited by this paper
  36. Evolutionary Genomics of Defense Systems in Archaea and Bacteria · Eugene V. Koonin · 2017 · 385 citations · Cited by this paper
  37. Molecular Mechanisms of RNA Targeting by Cas13-containing Type VI CRISPR–Cas Systems · Mitchell R. O’Connell · 2018 · 363 citations · Cited by this paper
  38. A widespread bacteriophage abortive infection system functions through a Type IV toxin–antitoxin mechanism · Ron Leonard V. Dy · 2014 · 332 citations · Cited by this paper
  39. CRISPR-Cas9 system: A new-fangled dawn in gene editing · Darshana Gupta · 2019 · 332 citations · Cited by this paper

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