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首页> 外文期刊>Journal of Molecular Biology >Structural and biochemical characterization of the therapeutic Anabaena variabilis phenylalanine ammonia lyase.
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Structural and biochemical characterization of the therapeutic Anabaena variabilis phenylalanine ammonia lyase.

机译:治疗性鱼腥藻苯丙氨酸氨裂合酶的结构和生化特征。

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摘要

We have recently observed promising success in a mouse model for treating the metabolic disorder phenylketonuria with phenylalanine ammonia lyase (PAL) from Rhodosporidium toruloides and Anabaena variabilis. Both molecules, however, required further optimization in order to overcome problems with protease susceptibility, thermal stability, and aggregation. Previously, we optimized PAL from R. toruloides, and in this case we reduced aggregation of the A. variabilis PAL by mutating two surface cysteine residues (C503 and C565) to serines. Additionally, we report the structural and biochemical characterization of the A. variabilis PAL C503S/C565S double mutant and carefully compare this molecule with the R. toruloides engineered PAL molecule. Unlike previously published PAL structures, significant electron density is observed for the two active-site loops in the A. variabilis C503S/C565S double mutant, yielding a complete view of the active site. Docking studies and N-hydroxysuccinimide-biotin binding studies support a proposed mechanism in which the amino group of the phenylalanine substrate is attacked directly by the 4-methylidene-imidazole-5-one prosthetic group. We propose a helix-to-loop conformational switch in the helices flanking the inner active-site loop that regulates accessibility of the active site. Differences in loop stability among PAL homologs may explain the observed variation in enzyme efficiency, despite the highly conserved structure of the active site. A. variabilis C503S/C565S PAL is shown to be both more thermally stable and more resistant to proteolytic cleavage than R. toruloides PAL. Additional increases in thermal stability and protease resistance upon ligand binding may be due to enhanced interactions among the residues of the active site, possibly locking the active-site structure in place and stabilizing the tetramer. Examination of the A. variabilis C503S/C565S PAL structure, combined with analysis of its physical properties, provides a structural basis for further engineering of residues that could result in a better therapeutic molecule.
机译:我们最近观察到在小鼠模型中成功的成功前景,该小鼠模型可用于使用来自圆核红假单胞菌和变异鱼腥藻的苯丙氨酸氨裂合酶(PAL)治疗代谢性疾病苯丙酮尿症。然而,两个分子都需要进一步优化,以克服蛋白酶敏感性,热稳定性和聚集的问题。以前,我们从R. toruloides优化了PAL,在这种情况下,我们通过将两个表面半胱氨酸残基(C503和C565)突变为丝氨酸来减少了变异曲霉PAL的聚集。此外,我们报告了变异的拟南芥PAL C503S / C565S双突变体的结构和生化特征,并仔细比较了该分子与R. toruloides工程PAL分子。与以前发布的PAL结构不同,在变异曲霉C503S / C565S双突变体中的两个活性位点环中观察到了显着的电子密度,从而获得了活性位点的完整视图。对接研究和N-羟基琥珀酰亚胺-生物素结合研究支持了一种拟议的机制,其中苯丙氨酸底物的氨基被4-亚甲基-咪唑-5-酮基直接攻击。我们提出了一个螺旋到环的构象开关,位于内部活性位点环的两侧,调节活性位点的可及性。尽管活性位点的结构高度保守,但PAL同源物之间环稳定性的差异可能解释了观察到的酶效率变化。变种曲霉C503S / C565S PAL的热稳定性和抗蛋白水解性的能力均优于圆核拟南芥PAL。配体结合后热稳定性和蛋白酶抗性的进一步增加可能是由于活性位点残基之间的相互作用增强,可能将活性位点结构锁定在适当的位置并使四聚体稳定。变异曲霉C503S / C565S PAL结构的检查,以及对其物理性质的分析,为进一步改造可能产生更好治疗分子的残基提供了结构基础。

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