Protospacer Adjacent Motif (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Protospacer Adjacent Motif" in German language version.

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doi.org

  • S. A. Shah, S. Erdmann, F. J. Mojica, R. A. Garrett: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA biology. Band 10, Nummer 5, Mai 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext).
  • Mojica FJ, Díez-Villaseñor C, García-Martínez J, Almendros C: Short motif sequences determine the targets of the prokaryotic CRISPR defence system. In: Microbiology. 155. Jahrgang, Pt 3, 2009, S. 733–740, doi:10.1099/mic.0.023960-0, PMID 19246744 (sgmjournals.org).
  • Shah SA, Erdmann S, Mojica FJ, Garrett RA: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA Biology. 10. Jahrgang, Nr. 5, 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext) – (englisch, landesbioscience.com (Memento des Originals vom 4. September 2014 im Internet Archive) [abgerufen am 23. Oktober 2017]).
  • Jinek M, Chylinski K, Fonfara I, Hauer M, Doudna JA, Charpentier E: A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity. In: Science. 337. Jahrgang, Nr. 6096, 2012, S. 816–821, doi:10.1126/science.1225829, PMID 22745249 (sciencemag.org).
  • Sternberg SH, Redding S, Jinek M, Greene EC, Doudna JA: DNA interrogation by the CRISPR RNA-guided endonuclease Cas9. In: Nature. 507. Jahrgang, Nr. 7490, 2014, S. 62–67, doi:10.1038/nature13011, PMID 24476820, PMC 4106473 (freier Volltext).
  • Mali P, Esvelt KM, Church GM: Cas9 as a versatile tool for engineering biology. In: Nature Methods. 10. Jahrgang, Nr. 10, 2013, S. 957–963, doi:10.1038/nmeth.2649, PMID 24076990, PMC 4051438 (freier Volltext) – (nature.com).
  • Anders C, Niewoehner O, Duerst A, Jinek M: Structural basis of PAM-dependent target DNA recognition by the Cas9 endonuclease. In: Nature. 513. Jahrgang, Nr. 7519, 2014, S. 569–573, doi:10.1038/nature13579, PMID 25079318, PMC 4176945 (freier Volltext).
  • Esvelt KM, Mali P, Braff JL, Moosburner M, Yaung SJ, Church GM: Orthogonal Cas9 proteins for RNA-guided gene regulation and editing. In: Nature Methods. 10. Jahrgang, Nr. 11, 2013, S. 1116–1123, doi:10.1038/nmeth.2681, PMID 24076762, PMC 3844869 (freier Volltext).
  • Zhang Y, Ge X, Yang F, Zhang L, Zheng J, Tan X, Jin ZB, Qu J, Gu F: Comparison of non-canonical PAMs for CRISPR/Cas9-mediated DNA cleavage in human cells. In: Scientific Reports. 4. Jahrgang, 2014, S. 5405, doi:10.1038/srep05405, PMID 24956376, PMC 4066725 (freier Volltext).
  • Kleinstiver BP, Prew MS, Tsai SQ, Topkar VV, Nguyen NT, Zheng Z, Gonzales AP, Li Z, Peterson RT, Yeh JR, Aryee MJ, Joung JK: Engineered CRISPR-Cas9 nucleases with altered PAM specificities. In: Nature. 523. Jahrgang, Nr. 7561, 2015, S. 481–485, doi:10.1038/nature14592, PMID 26098369, PMC 4540238 (freier Volltext).
  • Hirano H, Gootenberg JS, Horii T, Abudayyeh OO, Kimura M, Hsu PD, Nakane T, Ishitani R, Hatada I, Zhang F, Nishimasu H, Nureki O: Structure and Engineering of Francisella novicida Cas9. In: Cell. 164. Jahrgang, Nr. 5, 2016, S. 950–961, doi:10.1016/j.cell.2016.01.039, PMID 26875867, PMC 4899972 (freier Volltext).
  • Kira S. Makarova, Yuri I. Wolf, Eugene V. Koonin: Evolutionary Classification of CRISPR‐Cas Systems. In: Crispr. 1. Auflage. Wiley, 2022, ISBN 978-1-68367-037-7, S. 13–38, doi:10.1002/9781683673798.ch2 (wiley.com [abgerufen am 25. August 2024]).
  • Zetsche B, Gootenberg JS, Abudayyeh OO, Slaymaker IM, Makarova KS, Essletzbichler P, Volz SE, Joung J, van der Oost J, Regev A, Koonin EV, Zhang F: Cpf1 is a single RNA-guided endonuclease of a class 2 CRISPR-Cas system. In: Cell. 163. Jahrgang, Nr. 3, 2015, S. 759–771, doi:10.1016/j.cell.2015.09.038, PMID 26422227.
  • Fonfara I, Richter H, Bratovič M, Le Rhun A, Charpentier E: The CRISPR-associated DNA-cleaving enzyme Cpf1 also processes precursor CRISPR RNA. In: Nature. 532. Jahrgang, Nr. 7600, 2016, S. 517–521, doi:10.1038/nature17945, PMID 27096362.
  • Abudayyeh OO, Gootenberg JS, Konermann S, Joung J, Slaymaker IM, Cox DB, Shmakov S, Makarova KS, Semenova E, Minakhin L, Severinov K, Regev A, Lander ES, Koonin EV, Zhang F: C2c2 is a single-component programmable RNA-guided RNA-targeting CRISPR effector. In: Science. 2016, doi:10.1126/science.aaf5573, PMID 27256883.
  • Kira S. Makarova, Feng Zhang, Eugene V. Koonin: SnapShot: Class 2 CRISPR-Cas Systems. In: Cell. Band 168, Nr. 1-2, Januar 2017, S. 328–328.e1, doi:10.1016/j.cell.2016.12.038 (elsevier.com [abgerufen am 17. Mai 2020]).
  • Omar O. Abudayyeh, Jonathan S. Gootenberg, Patrick Essletzbichler, Shuo Han, Julia Joung: RNA targeting with CRISPR–Cas13. In: Nature. Band 550, Nr. 7675, Oktober 2017, ISSN 0028-0836, S. 280–284, doi:10.1038/nature24049, PMID 28976959, PMC 5706658 (freier Volltext) – (nature.com [abgerufen am 17. Mai 2020]).
  • David B. T. Cox, Jonathan S. Gootenberg, Omar O. Abudayyeh, Brian Franklin, Max J. Kellner: RNA editing with CRISPR-Cas13. In: Science. Band 358, Nr. 6366, 24. November 2017, ISSN 0036-8075, S. 1019–1027, doi:10.1126/science.aaq0180, PMID 29070703, PMC 5793859 (freier Volltext) – (sciencemag.org [abgerufen am 17. Mai 2020]).

elsevier.com

linkinghub.elsevier.com

  • Kira S. Makarova, Feng Zhang, Eugene V. Koonin: SnapShot: Class 2 CRISPR-Cas Systems. In: Cell. Band 168, Nr. 1-2, Januar 2017, S. 328–328.e1, doi:10.1016/j.cell.2016.12.038 (elsevier.com [abgerufen am 17. Mai 2020]).

genome.jp

nature.com

nih.gov

ncbi.nlm.nih.gov

  • S. A. Shah, S. Erdmann, F. J. Mojica, R. A. Garrett: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA biology. Band 10, Nummer 5, Mai 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext).
  • Mojica FJ, Díez-Villaseñor C, García-Martínez J, Almendros C: Short motif sequences determine the targets of the prokaryotic CRISPR defence system. In: Microbiology. 155. Jahrgang, Pt 3, 2009, S. 733–740, doi:10.1099/mic.0.023960-0, PMID 19246744 (sgmjournals.org).
  • Shah SA, Erdmann S, Mojica FJ, Garrett RA: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA Biology. 10. Jahrgang, Nr. 5, 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext) – (englisch, landesbioscience.com (Memento des Originals vom 4. September 2014 im Internet Archive) [abgerufen am 23. Oktober 2017]).
  • Jinek M, Chylinski K, Fonfara I, Hauer M, Doudna JA, Charpentier E: A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity. In: Science. 337. Jahrgang, Nr. 6096, 2012, S. 816–821, doi:10.1126/science.1225829, PMID 22745249 (sciencemag.org).
  • Sternberg SH, Redding S, Jinek M, Greene EC, Doudna JA: DNA interrogation by the CRISPR RNA-guided endonuclease Cas9. In: Nature. 507. Jahrgang, Nr. 7490, 2014, S. 62–67, doi:10.1038/nature13011, PMID 24476820, PMC 4106473 (freier Volltext).
  • Mali P, Esvelt KM, Church GM: Cas9 as a versatile tool for engineering biology. In: Nature Methods. 10. Jahrgang, Nr. 10, 2013, S. 957–963, doi:10.1038/nmeth.2649, PMID 24076990, PMC 4051438 (freier Volltext) – (nature.com).
  • Anders C, Niewoehner O, Duerst A, Jinek M: Structural basis of PAM-dependent target DNA recognition by the Cas9 endonuclease. In: Nature. 513. Jahrgang, Nr. 7519, 2014, S. 569–573, doi:10.1038/nature13579, PMID 25079318, PMC 4176945 (freier Volltext).
  • Esvelt KM, Mali P, Braff JL, Moosburner M, Yaung SJ, Church GM: Orthogonal Cas9 proteins for RNA-guided gene regulation and editing. In: Nature Methods. 10. Jahrgang, Nr. 11, 2013, S. 1116–1123, doi:10.1038/nmeth.2681, PMID 24076762, PMC 3844869 (freier Volltext).
  • Zhang Y, Ge X, Yang F, Zhang L, Zheng J, Tan X, Jin ZB, Qu J, Gu F: Comparison of non-canonical PAMs for CRISPR/Cas9-mediated DNA cleavage in human cells. In: Scientific Reports. 4. Jahrgang, 2014, S. 5405, doi:10.1038/srep05405, PMID 24956376, PMC 4066725 (freier Volltext).
  • Kleinstiver BP, Prew MS, Tsai SQ, Topkar VV, Nguyen NT, Zheng Z, Gonzales AP, Li Z, Peterson RT, Yeh JR, Aryee MJ, Joung JK: Engineered CRISPR-Cas9 nucleases with altered PAM specificities. In: Nature. 523. Jahrgang, Nr. 7561, 2015, S. 481–485, doi:10.1038/nature14592, PMID 26098369, PMC 4540238 (freier Volltext).
  • Hirano H, Gootenberg JS, Horii T, Abudayyeh OO, Kimura M, Hsu PD, Nakane T, Ishitani R, Hatada I, Zhang F, Nishimasu H, Nureki O: Structure and Engineering of Francisella novicida Cas9. In: Cell. 164. Jahrgang, Nr. 5, 2016, S. 950–961, doi:10.1016/j.cell.2016.01.039, PMID 26875867, PMC 4899972 (freier Volltext).
  • Zetsche B, Gootenberg JS, Abudayyeh OO, Slaymaker IM, Makarova KS, Essletzbichler P, Volz SE, Joung J, van der Oost J, Regev A, Koonin EV, Zhang F: Cpf1 is a single RNA-guided endonuclease of a class 2 CRISPR-Cas system. In: Cell. 163. Jahrgang, Nr. 3, 2015, S. 759–771, doi:10.1016/j.cell.2015.09.038, PMID 26422227.
  • Fonfara I, Richter H, Bratovič M, Le Rhun A, Charpentier E: The CRISPR-associated DNA-cleaving enzyme Cpf1 also processes precursor CRISPR RNA. In: Nature. 532. Jahrgang, Nr. 7600, 2016, S. 517–521, doi:10.1038/nature17945, PMID 27096362.
  • Abudayyeh OO, Gootenberg JS, Konermann S, Joung J, Slaymaker IM, Cox DB, Shmakov S, Makarova KS, Semenova E, Minakhin L, Severinov K, Regev A, Lander ES, Koonin EV, Zhang F: C2c2 is a single-component programmable RNA-guided RNA-targeting CRISPR effector. In: Science. 2016, doi:10.1126/science.aaf5573, PMID 27256883.
  • Omar O. Abudayyeh, Jonathan S. Gootenberg, Patrick Essletzbichler, Shuo Han, Julia Joung: RNA targeting with CRISPR–Cas13. In: Nature. Band 550, Nr. 7675, Oktober 2017, ISSN 0028-0836, S. 280–284, doi:10.1038/nature24049, PMID 28976959, PMC 5706658 (freier Volltext) – (nature.com [abgerufen am 17. Mai 2020]).
  • David B. T. Cox, Jonathan S. Gootenberg, Omar O. Abudayyeh, Brian Franklin, Max J. Kellner: RNA editing with CRISPR-Cas13. In: Science. Band 358, Nr. 6366, 24. November 2017, ISSN 0036-8075, S. 1019–1027, doi:10.1126/science.aaq0180, PMID 29070703, PMC 5793859 (freier Volltext) – (sciencemag.org [abgerufen am 17. Mai 2020]).

redirecter.toolforge.org

  • Shah SA, Erdmann S, Mojica FJ, Garrett RA: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA Biology. 10. Jahrgang, Nr. 5, 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext) – (englisch, landesbioscience.com (Memento des Originals vom 4. September 2014 im Internet Archive) [abgerufen am 23. Oktober 2017]).

sciencemag.org

sgmjournals.org

mic.sgmjournals.org

uniprot.org

web.archive.org

  • Shah SA, Erdmann S, Mojica FJ, Garrett RA: Protospacer recognition motifs: mixed identities and functional diversity. In: RNA Biology. 10. Jahrgang, Nr. 5, 2013, S. 891–899, doi:10.4161/rna.23764, PMID 23403393, PMC 3737346 (freier Volltext) – (englisch, landesbioscience.com (Memento des Originals vom 4. September 2014 im Internet Archive) [abgerufen am 23. Oktober 2017]).

wiley.com

onlinelibrary.wiley.com

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