User:Christian Kassebaum/Sandbox 2
From Proteopedia
(Difference between revisions)
Line 9: | Line 9: | ||
== Composition & Function == | == Composition & Function == | ||
- | This protein's gene has 1,584 base pairs corresponding to 527 amino acid residues | + | This protein's gene has 1,584 base pairs corresponding to 527 amino acid residues<ref name="B"/>. The photosensitizer in this system that contributes to the CIDNP function for this protein is flavin adenine dinucleotide, <scene name='84/841086/Fad_highlight/1'>FAD</scene>. Cryptochrome 4 contains a DNA photolyase homology domain, an FAD binding domain, and four tryptophan residues thought to be involved in radical-pair formation known as the <scene name='84/841086/Trp_tetrad_fad_and_tyr319/1'>Trp-tetrad</scene><ref name="A"/>. |
The residue <scene name='84/841086/Asn391_highlight/1'>Asn391</scene> is adjacent to the N5 position of the FAD isoalloxazine ring which acts to promote the creation of a stable FADH^rad radicle<ref name="A"/>. This function has been shown in cryptochrome 1 proteins which, normally having a Cys instead of a Asn residue at this point, have previously been mutated to have a Asn and exhibited an increase in quantum yield after this change. It is assumed that this function is present in Cryptochrome 4 and thus Asn 391 will lead to a selection of a stable FADH^rad state<ref name="A"/>. | The residue <scene name='84/841086/Asn391_highlight/1'>Asn391</scene> is adjacent to the N5 position of the FAD isoalloxazine ring which acts to promote the creation of a stable FADH^rad radicle<ref name="A"/>. This function has been shown in cryptochrome 1 proteins which, normally having a Cys instead of a Asn residue at this point, have previously been mutated to have a Asn and exhibited an increase in quantum yield after this change. It is assumed that this function is present in Cryptochrome 4 and thus Asn 391 will lead to a selection of a stable FADH^rad state<ref name="A"/>. |
Revision as of 17:55, 20 April 2020
Cryptochrome 4
|
References
- ↑ 1.0 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 Zoltowski BD, Chelliah Y, Wickramaratne A, Jarocha L, Karki N, Xu W, Mouritsen H, Hore PJ, Hibbs RE, Green CB, Takahashi JS. Chemical and structural analysis of a photoactive vertebrate cryptochrome from pigeon. Proc Natl Acad Sci U S A. 2019 Sep 24;116(39):19449-19457. doi:, 10.1073/pnas.1907875116. Epub 2019 Sep 4. PMID:31484780 doi:http://dx.doi.org/10.1073/pnas.1907875116
- ↑ 2.0 2.1 Gunther A, Einwich A, Sjulstok E, Feederle R, Bolte P, Koch KW, Solov'yov IA, Mouritsen H. Double-Cone Localization and Seasonal Expression Pattern Suggest a Role in Magnetoreception for European Robin Cryptochrome 4. Curr Biol. 2018 Jan 22;28(2):211-223.e4. doi: 10.1016/j.cub.2017.12.003. Epub, 2018 Jan 4. PMID:29307554 doi:http://dx.doi.org/10.1016/j.cub.2017.12.003