Sandbox GGC3: Difference between revisions
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But wait, there's more.. | But wait, there's more<ref name="Nakamura"/><ref name="Lembert">Lembert, N. (1996). Firefly luciferase can use L-luciferin to produce light. ‘’Biochemical Journal 317’’(1), 273-277. https://doi.org/10.1042/bj3170273</ref>.. | ||
Revision as of 15:31, 28 April 2021
Firefly Luciferase
waluigi menacingly stares
Firefly luciferase, of the common eastern firefly (Photinus pyralis), is responsible for the ability of the firefly to exhibit bioluminescence. The enzyme luciferin-4-monoxygenase, which catalyzes a multistep oxidative decarboxylation of the luciferyl-AMP intermediate (LH2-AMP) to produce bioluminescence, is a part of the ANL superfamily named so after the acyl-CoA syntheses, the adenylation domains of the modular non-ribosomal peptide synthetases (NRPs), and luciferase. ContentsFunctionThe ANL enzymes catalyze two-step reactions: the first an adenylating step in which an acyl-AMP intermediate is produced; the second step in which the adenylate then serves as a substrate for the multistep oxidative decarboxylation of the luciferyl-AMP (LH2-AMP) intermediate, resulting in bioluminescence. ANL enzymes follow a domain alternation strategy for the first adenylation reaction, in which the reaction is catalyzed by one conformation, and following the formation of the adenylate intermediate and release of pyrophosphate (PPi), the C-terminal domain undergoes a rotational transformation that is necessary for the second partial reaction. The active site[1] of ANL enzymes resides between a 400-500 residue N-terminal domain and a smaller C-terminal domain of ~110-130 amino acids[2]. Ten conserved regions of these proteins have been termed the A1-A10 motifs which play critical roles in either or both partial reactions[3]. Two lysine residues are required for each partial reaction, suggestive that luciferase similarly adopts a rotational transformation for complete catalysis. A mutation of Lys529, the A10 lysine, impairs only the initial adenylation reaction[2] whereas mutation of Lys443 in the A8 region disrupts the oxidative reaction[2].
Biochemical Mechanism of LH2-AMP OxidationThe first partial reaction entails the conversion of the carboxyl group of D-luciferin[2][4][5] by luciferase in the presence of ATP and Mg2+, yielding luciferyl-adenylate (LH2-AMP) and pyrophosphate as a by-product. Amino acid residues subsequently are recruited to promote the oxidation of LH2-AMP using molecular oxygen by luciferase (acting as a monooxygenase)[6], which then eventually yields oxyluciferin in the excited-state and CO2. It is upon the return from the excited-state to the ground state that the emittance of a yellow-green light is observed (λ≈560 nm)[5].
But wait, there's more[5][7]..
Structural highlights![]() ![]() The conserved catalytic lysine for the adenylation reaction[8], Lys529, interacts with the carbonyl oxygen of the adenylate, the O5 atom that bridges the ribose and sulfamate moiety, and the main chain carbonyl of Gly316. The second conformation observations show that the side chain amine of Lys443 adopts a nearly identical position as Lys529, and Gln448 of the C-terminal domain rotates into the binding pocket where it interacts with a sulfamate oxygen[2][4]. Altogether (with the inclusion of an ionic interaction between Glu479 and Arg437), these interactions are responsible for the stabilization of the new C-terminal conformation.
RelevanceFirefly luciferase has successfully been shown to act as modulatory bioluminescent indicator in the detection and quantification of protein kinase A activation in living cells [9]. Further, due to its bioluminescent sensitivity, firefly luciferase has been utilized in assays as a genetic reporter in eukaryotic cells[10][11][12], amongst other things.
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