Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten:The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band2012, 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. PMC4031506(freier Volltext)
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. Band57, 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.
Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten:The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band2012, 2012, doi:10.1155/2012/418964, PMID 22844638 (englisch, Online).
Kristen Swithers, Shannon M. Soucy, J. Peter Gogarten:The Role of Reticulate Evolution in Creating Innovation and Complexity. In: International Journal of Evolutionary Biology. Band2012, 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. PMC4031506(freier Volltext)
Y. Anraku, R. Mizutani, Y. Satow:Protein splicing: its discovery and structural insight into novel chemical mechanisms. In: IUBMB Life. Band57, 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; PMC147948(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, PMC363536(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.