Inteine (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Inteine" in German language version.

Last modified:

Ref.Un. Ref.Website
Global rank German rank
5th place
7th place
2nd place
3rd place
7,977th place
5,942nd place
low place
low place

doi.org (Global: 2nd place; German: 3rd place)

  • Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten: The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band 2012, 2012, doi:10.1155/2012/418964, PMID 22844638 (englisch, Online).
  • S. Elleuche et al.: Proteinspleißen: Inteine – die “Introns” der Proteine und ihre biotechnologische Anwendung. In: Biologie in unserer Zeit, Volume 36, Issue 5, Oktober 2006, Seiten 294–301, doi:10.1002/biuz.200610314.
  • O. Novikova et al.: Enigmatic Distribution, Evolution, and Function of Inteins. Figure 2. In: J Biol Chem. vom 23. Mai 2014; 289(21): 14490–14497. doi:10.1074/jbc.R114.548255. PMC 4031506 (freier Volltext)
  • Inbase, F. B. Perler: InBase: the Intein Database. In: Nucleic Acids Research. 30. Jahrgang, Nr. 1, 2002, S. 383–384, doi:10.1093/nar/30.1.383, PMID 11752343, PMC 99080 (freier Volltext) – (englisch).
  • H. Ogata et al.: A new example of viral intein in Mimivirus. In: BioMed Central Virology Journal 2005 2:8, doi:10.1186/1743-422X-2-8
  • Y. Anraku, R. Mizutani, Y. Satow: Protein splicing: its discovery and structural insight into novel chemical mechanisms. In: IUBMB Life. Band 57, Nr. 8, 2005, S. 563–574, doi:10.1080/15216540500215499, PMID 16118114 (englisch).
  • G. Volkmann, H. D. Mootz: Recent progress in intein research: from mechanism to directed evolution and applications. In: Cellular and molecular life sciences : CMLS. Band 70, Nummer 7, April 2013, S. 1185–1206. doi:10.1007/s00018-012-1120-4. PMID 22926412.

hindawi.com (Global: 7,977th place; German: 5,942nd place)

  • Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten: The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band 2012, 2012, doi:10.1155/2012/418964, PMID 22844638 (englisch, Online).

neb.com (Global: low place; German: low place)

tools.neb.com

nih.gov (Global: 5th place; German: 7th place)

ncbi.nlm.nih.gov

  • Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten: The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band 2012, 2012, doi:10.1155/2012/418964, PMID 22844638 (englisch, Online).
  • O. Novikova et al.: Enigmatic Distribution, Evolution, and Function of Inteins. Figure 2. In: J Biol Chem. vom 23. Mai 2014; 289(21): 14490–14497. doi:10.1074/jbc.R114.548255. PMC 4031506 (freier Volltext)
  • Inbase, F. B. Perler: InBase: the Intein Database. In: Nucleic Acids Research. 30. Jahrgang, Nr. 1, 2002, S. 383–384, doi:10.1093/nar/30.1.383, PMID 11752343, PMC 99080 (freier Volltext) – (englisch).
  • Y. Anraku, R. Mizutani, Y. Satow: Protein splicing: its discovery and structural insight into novel chemical mechanisms. In: IUBMB Life. Band 57, Nr. 8, 2005, S. 563–574, doi:10.1080/15216540500215499, PMID 16118114 (englisch).
  • G. Volkmann, H. D. Mootz: Recent progress in intein research: from mechanism to directed evolution and applications. In: Cellular and molecular life sciences : CMLS. Band 70, Nummer 7, April 2013, S. 1185–1206. doi:10.1007/s00018-012-1120-4. PMID 22926412.
  • S. Chong, F. B. Mersha, D. G. Comb, M. E. Scott, D. Landry, L. M. Vence, F. B. Perler, J. Benner, R. B. Kucera, C. A. Hirvonen, J. J. Pelletier, H. Paulus, M. Q. Xu: Single-column purification of free recombinant proteins using a self-cleavable affinity tag derived from a protein splicing element. In: Gene. Band 192(2), 1997, S. 271–281. PMID 9224900.
  • S. Chong, G. E. Montello, A. Zhang, E. J. Cantor, W. Liao, M. Q. Xu, J. Benner: Utilizing the C-terminal cleavage activity of a protein splicing element to purify recombinant proteins in a single chromatographic step. In: Nucleic Acids Res. Band 26(22), 1998, S. 5109–5115. PMID 9801307; PMC 147948 (freier Volltext).
  • D. W. Wood, W. Wu, G. Belfort, V. Derbyshire, M. Belfort: A genetic system yields self-cleaving inteins for bioseparations. In: Nat Biotechnol. Band 17(9), 1999, S. 889–892. PMID 10471931.
  • E. J. Bowman, K. Tenney, B. J. Bowman: Isolation of genes encoding the Neurospora vacuolar ATPase. Analysis of vma-1 encoding the 67-kDa subunit reveals homology to other ATPases. In: The Journal of biological chemistry. Band 263, Nummer 28, Oktober 1988, S. 13994–14001, PMID 2971651.
  • L. Zimniak, P. Dittrich, J. P. Gogarten, H. Kibak, L. Taiz: The cDNA sequence of the 69-kDa subunit of the carrot vacuolar H+-ATPase. Homology to the beta-chain of F0F1-ATPases. In: The Journal of biological chemistry. Band 263, Nummer 19, Juli 1988, S. 9102–9112, PMID 2897965.
  • C. K. Shih, R. Wagner, S. Feinstein, C. Kanik-Ennulat, N. Neff: A dominant trifluoperazine resistance gene from Saccharomyces cerevisiae has homology with F0F1 ATP synthase and confers calcium-sensitive growth. In: Molecular and cellular biology. Band 8, Nummer 8, August 1988, S. 3094–3103, PMID 2905423, PMC 363536 (freier Volltext).
  • R. Hirata, Y. Ohsumk, A. Nakano, H. Kawasaki, K. Suzuki, Y. Anraku: Molecular structure of a gene, VMA1, encoding the catalytic subunit of H(+)-translocating adenosine triphosphatase from vacuolar membranes of Saccharomyces cerevisiae. In: The Journal of biological chemistry. Band 265, Nummer 12, April 1990, S. 6726–6733, PMID 2139027.