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Items: 1 to 20 of 105

1.

Crystal structure of a pH-regulated luciferase catalyzing the bioluminescent oxidation of an open tetrapyrrole.

Schultz LW, Liu L, Cegielski M, Hastings JW.

Proc Natl Acad Sci U S A. 2005 Feb 1;102(5):1378-83. Epub 2005 Jan 21.

2.

Cloning and characterization of an active fragment of luciferase from a luminescent marine alga, Pyrocystis lunula.

Morishita H, Ohashi S, Oku T, Nakajima Y, Kojima S, Ryufuku M, Nakamura H, Ohmiya Y.

Photochem Photobiol. 2002 Mar;75(3):311-5.

PMID:
11950098
3.

C-terminal region of the active domain enhances enzymatic activity in dinoflagellate luciferase.

Suzuki-Ogoh C, Wu C, Ohmiya Y.

Photochem Photobiol Sci. 2008 Feb;7(2):208-11. doi: 10.1039/b713157g. Epub 2008 Jan 14.

PMID:
18264588
4.

Characterization and crystallization of active domains of a novel luciferase from a marine dinoflagellate.

Liu L, Im H, Cegielski M, LeMagueres P, Schultz LW, Krause KL, Hastings JW.

Acta Crystallogr D Biol Crystallogr. 2003 Apr;59(Pt 4):761-4. Epub 2003 Mar 25.

PMID:
12657805
5.

Three functional luciferase domains in a single polypeptide chain.

Li L, Hong R, Hastings JW.

Proc Natl Acad Sci U S A. 1997 Aug 19;94(17):8954-8.

6.

Members of a dinoflagellate luciferase gene family differ in synonymous substitution rates.

Okamoto OK, Liu L, Robertson DL, Hastings JW.

Biochemistry. 2001 Dec 25;40(51):15862-8.

PMID:
11747464
7.
8.

Crystal structure of nanoKAZ: The mutated 19 kDa component of Oplophorus luciferase catalyzing the bioluminescent reaction with coelenterazine.

Tomabechi Y, Hosoya T, Ehara H, Sekine S, Shirouzu M, Inouye S.

Biochem Biophys Res Commun. 2016 Jan 29;470(1):88-93. doi: 10.1016/j.bbrc.2015.12.123. Epub 2015 Dec 30.

PMID:
26746005
9.

Molecular evolution of dinoflagellate luciferases, enzymes with three catalytic domains in a single polypeptide.

Liu L, Wilson T, Hastings JW.

Proc Natl Acad Sci U S A. 2004 Nov 23;101(47):16555-60. Epub 2004 Nov 15.

10.

Two different domains of the luciferase gene in the heterotrophic dinoflagellate Noctiluca scintillans occur as two separate genes in photosynthetic species.

Liu L, Hastings JW.

Proc Natl Acad Sci U S A. 2007 Jan 16;104(3):696-701. Epub 2006 Nov 27. Erratum in: Proc Natl Acad Sci U S A. 2011 Aug 23;108(34):14371.

11.

Site-directed mutagenesis of firefly luciferase active site amino acids: a proposed model for bioluminescence color.

Branchini BR, Magyar RA, Murtiashaw MH, Anderson SM, Helgerson LC, Zimmer M.

Biochemistry. 1999 Oct 5;38(40):13223-30.

PMID:
10529195
12.

Three-dimensional structure of bacterial luciferase from Vibrio harveyi at 2.4 A resolution.

Fisher AJ, Raushel FM, Baldwin TO, Rayment I.

Biochemistry. 1995 May 23;34(20):6581-6.

PMID:
7756289
13.
14.

The 1.5-A resolution crystal structure of bacterial luciferase in low salt conditions.

Fisher AJ, Thompson TB, Thoden JB, Baldwin TO, Rayment I.

J Biol Chem. 1996 Sep 6;271(36):21956-68.

15.
16.

Identification of two catalytic domains in a luciferase secreted by the copepod Gaussia princeps.

Inouye S, Sahara Y.

Biochem Biophys Res Commun. 2008 Jan 4;365(1):96-101. Epub 2007 Nov 5.

PMID:
17981153
17.

Role of a luciferin-binding protein in the circadian bioluminescent reaction of Gonyaulax polyedra.

Morse D, Pappenheimer AM Jr, Hastings JW.

J Biol Chem. 1989 Jul 15;264(20):11822-6.

18.

Structural evolution of luciferase activity in Zophobas mealworm AMP/CoA-ligase (protoluciferase) through site-directed mutagenesis of the luciferin binding site.

Prado RA, Barbosa JA, Ohmiya Y, Viviani VR.

Photochem Photobiol Sci. 2011 Jul;10(7):1226-32. doi: 10.1039/c0pp00392a. Epub 2011 Apr 19.

PMID:
21505686
19.
20.

The influence of the loop between residues 223-235 in beetle luciferase bioluminescence spectra: a solvent gate for the active site of pH-sensitive luciferases.

Viviani VR, Silva Neto AJ, Arnoldi FG, Barbosa JA, Ohmiya Y.

Photochem Photobiol. 2008 Jan-Feb;84(1):138-44. doi: 10.1111/j.1751-1097.2007.00209.x.

PMID:
18173713

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