Departamento de Química Inorgánica, Analítica y Química Física, and INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Buenos Aires, Argentina.
Departamento de Química Biológica and IQUIBICEN-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Buenos Aires, Argentina.
Protein Sci. 2024 Jul;33(7):e5064. doi: 10.1002/pro.5064.
Due to the low temperature, the Antarctic marine environment is challenging for protein functioning. Cold-adapted organisms have evolved proteins endowed with higher flexibility and lower stability in comparison to their thermophilic homologs, resulting in enhanced reaction rates at low temperatures. The Antarctic bacterium Pseudoalteromonas haloplanktis TAC125 (PhTAC125) genome is one of the few examples of coexistence of multiple hemoglobin genes encoding, among others, two constitutively transcribed 2/2 hemoglobins (2/2Hbs), also named truncated Hbs (TrHbs), belonging to the Group II (or O), annotated as PSHAa0030 and PSHAa2217. In this work, we describe the ligand binding kinetics and their interrelationship with the dynamical properties of globin Ph-2/2HbO-2217 by combining experimental and computational approaches and implementing a new computational method to retrieve information from molecular dynamic trajectories. We show that our approach allows us to identify docking sites within the protein matrix that are potentially able to transiently accommodate ligands and migration pathways connecting them. Consistently with ligand rebinding studies, our modeling suggests that the distal heme pocket is connected to the solvent through a low energy barrier, while inner cavities play only a minor role in modulating rebinding kinetics.
由于低温,南极海洋环境对蛋白质的功能具有挑战性。与嗜热同源物相比,适应寒冷的生物体已经进化出具有更高柔韧性和更低稳定性的蛋白质,从而在低温下提高了反应速率。南极细菌假交替单胞菌 TAC125(PhTAC125)的基因组是少数共存多个血红蛋白基因的例子之一,其中包括两种组成型转录的 2/2 血红蛋白(2/2Hbs),也称为截断血红蛋白(TrHbs),属于第二组(或 O),被注释为 PSHAa0030 和 PSHAa2217。在这项工作中,我们通过结合实验和计算方法描述了配体结合动力学及其与球蛋白 Ph-2/2HbO-2217 动力学特性的相互关系,并实施了一种新的计算方法来从分子动力学轨迹中检索信息。我们表明,我们的方法使我们能够识别蛋白质基质内潜在能够暂时容纳配体和连接它们的迁移途径的结合位点。与配体再结合研究一致,我们的模型表明,远端血红素口袋通过低能势垒与溶剂相连,而内部腔仅在调节再结合动力学方面起次要作用。