Abstract
The photoprotein aequorin isolated from the jellyfish Aequorea emits blue light in the presence of Ca2+ by an intramolecular process that involves chemical transformation of the coelenterazine moiety into coelenteramide and CO2. Because of its high sensitivity to Ca2+, aequorin has widely been used as a Ca2+ indicator in various biological systems. We have replaced the coelenterazine moiety in the protein with several synthetic coelenterazine analogues, providing semi-synthetic Ca2+-sensitive photoproteins. One of the semi-synthetic photoproteins, derived from coelenterazine analogue (II) (with an extra ethano group), showed highly promising properties for the measurement of Ca2+, namely (1) the rise time of luminescence in response to Ca2+ was shortened by approx. 4-fold compared with native aequorin and (2) the luminescence spectrum showed two peaks at 405 nm and 465 nm and the ratio of their peak heights was dependent on Ca2+ concentration in the range of pCa 5-7, thus allowing the determination of [Ca2+] directly from the ratio of two peak intensities. Coelenterazine analogue (I) (with a hydroxy group replaced by an amino group) was also incorporated into apo-aequorin, yielding a Ca2+-sensitive photoprotein, which indicates that an electrostatic interaction between the phenolate group in the coelenterazine moiety and some cationic centre in apo-aequorin is not important in native aequorin, contrary to a previous suggestion.
MeSH Terms
Aequorin/analogs & derivatives,chemical synthesis
Animals
Calcium/analysis
Imidazoles
Kinetics
Luminescent Measurements
Luminescent Proteins
Pyrazines
Scyphozoa
Spectrophotometry
Chemicals
Imidazoles
Luminescent Proteins
Pyrazines
coelenterazine
Aequorin
Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Shimomura O
Marine Biological Laboratory, Woods Hole, MA 02543.
Musicki B
Kishi Y
References (16)
16 references, click to expand
-
Mechanism of the luminescent intramolecular reaction of aequorin.
Biochemistry. 1974 Jul 30;13(16):3278-86
PMID: 4152180
-
Extraction, purification and properties of aequorin, a bioluminescent protein from the luminous hydromedusan, Aequorea.
J Cell Comp Physiol. 1962 Jun;59:223-39
PMID: 13911999
-
Photoproteins as biological calcium indicators.
Pharmacol Rev. 1976 MAR;28(1):1-93
PMID: 781694
-
Peroxidized coelenterazine, the active group in the photoprotein aequorin.
Proc Natl Acad Sci U S A. 1978 Jun;75(6):2611-5
PMID: 275832
-
Resistivity to denaturation of the apoprotein of aequorin and reconstitution of the luminescent photoprotein from the partially denatured apoprotein.
Biochem J. 1981 Dec 1;199(3):825-8
PMID: 7340830
-
Measurement of Ca2+ concentrations in living cells.
Prog Biophys Mol Biol. 1982;40(1-2):1-114
PMID: 6758036
-
Effect of calcium chelators on the Ca2+-dependent luminescence of aequorin.
Biochem J. 1984 Aug 1;221(3):907-10
PMID: 6433891
-
Cloning and expression of the cDNA coding for aequorin, a bioluminescent calcium-binding protein.
Biochem Biophys Res Commun. 1985 Feb 15;126(3):1259-68
PMID: 2579647
-
Cloning and sequence analysis of cDNA for the luminescent protein aequorin.
Proc Natl Acad Sci U S A. 1985 May;82(10):3154-8
PMID: 3858813
-
Response of aequorin bioluminescence to rapid changes in calcium concentration.
Nature. 1969 Jun 14;222(5198):1047-50
PMID: 4389183
-
Properties of the bioluminescent protein aequorin.
Biochemistry. 1969 Oct;8(10):3991-7
PMID: 4390576
-
Mechanisms in the quantum yield of Cypridina bioluminescence.
Photochem Photobiol. 1970 Oct;12(4):291-5
PMID: 5482164
-
Rapid kinetic studies of the light emitting protein aequorin.
Nat New Biol. 1971 Oct 27;233(43):273-4
PMID: 4399374
-
Halistaurin, phialidin and modified forms of aequorin as Ca2+ indicator in biological systems.
Biochem J. 1985 Jun 15;228(3):745-9
PMID: 4026808
-
Isolation and properties of various molecular forms of aequorin.
Biochem J. 1986 Mar 1;234(2):271-7
PMID: 3718467
-
Regeneration of the photoprotein aequorin.
Nature. 1975 Jul 17;256(5514):236-8
PMID: 239351