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EF-hand Ca~(2+) -binding Bioluminescent Proteins: Effects of Mutations and Alternative Divalent Cations

机译:ef-hand ca〜(2+) - 粘接生物发光蛋白:突变和替代二价阳离子的影响

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Bioluminescent photoproteins, such as aequorin and obelin, are proteins that emit light upon binding calcium. Aequorin and obelin contain four EF-hand domains arranged into a globular structure. The loop region of these EF-hand domains binds calcium by coordinating it in a pentagonal bipyramidal structure with oxygen atoms. The binding of calcium to these EF-hands causes a slight conformational change in the protein, which leads to the oxidation of the internally sequestered chromophore, coelenterazine, producing coelenteramide and CO_2. The excited coelenteramide then relaxes radiatively, emitting bioluminescence at 471 nm in aequorin or 491 nm in obelin. Although calcium is the traditional, and generally the most powerful, triggering ligand in this bioluminescence reaction, alternative di- and trivalent cations can also bind to the EF-hand loops and stimulate luminescence. Species capable of this cross-reactivity include: Cd~(2+), Ba~(2+), Mn~(2+), Sr~(2+), Mg~(2+), and several lanthanides. Magnesium is also known to modulate the bioluminescence of wild-type aequorin, increase its stability, and decrease its aggregation tendency. Both wild-type aequorin and wild-type obelin contain several cysteine residues, aequorin has three and obelin has five. It is believed that these cysteine residues play an important, but as of yet unknown, role in the bioluminescence of these proteins, since mutating most of these residues causes significant loss in bioluminescent activity. In order to explore whether or not these cysteine residues contributed to the specificity of the EF-hand domains for cations we generated four aequorin and obelin mutants and observed their luminescent intensity and decay kinetics by stimulation with calcium, barium, and magnesium. It was found that the cysteine mutations do appear to alter the effects that alternative divalent cations have on the bioluminescence of both aequorin and obelin.
机译:生物发光光蛋白,例如Aequorin和Obelin,是在结合钙时发光的蛋白质。 Aequorin和obelin含有四个被安排成球状结构的EF手域。这些EF-Hand结构域的环形区域通过将其与氧原子的五角形双吡酰胺结构协调而结合钙。钙对这些EF手的结合导致蛋白质的略微构象变化,这导致内部隔离发色团,共肠嗪,生产中央蛋白酰胺和CO_2的氧化。然后激发的Coelenteramides辐射性地放松,在471nm中在Aequorin或491nm中发射生物发光。虽然钙是传统的,并且通常是该生物发光反应中最强大的,触发的配体,但替代的二极管和三价阳离子也可以与EF手环结合并刺激发光。能够这种交叉反应性的物种包括:Cd〜(2+),Ba〜(2+),Mn〜(2+),Sr〜(2+),mg〜(2+)和几个镧系元素。还已知镁调节野生型Aequorin的生物发光,增加其稳定性,并降低其聚集趋势。野生型Aequorin和野生型Obelin都含有几种半胱氨酸残留物,Aequorin有三个,obelin有五个。据信,这些半胱氨酸残基起到重要的,但尚不赘述,因此在这些蛋白质的生物发光中起作用,因为突变大多数这些残留物导致生物发光活性的显着损失。为了探讨这些半胱氨酸残基是否有助于阳离子的EF手域域的特异性,我们通过用钙,钡和镁通过刺激观察其发光强度和衰变动力学。结果发现半胱氨酸突变似乎改变了替代二价阳离子对Aequorin和Obelin的生物发光的影响。

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