HALOmem, Institut für Biochemie und Biotechnologie, Martin-Luther-Universität Halle-Wittenberg, Halle (Saale), Germany.
Proteins. 2013 May;81(5):830-40. doi: 10.1002/prot.24241. Epub 2013 Feb 25.
Neisseria meningitidis is the main causative agent of bacterial meningitis. In its outer membrane, the trimeric Neisserial porin PorB is responsible for the diffusive transport of essential hydrophilic solutes across the bilayer. Previous molecular dynamics simulations based on the recent crystal structure of PorB have suggested the presence of distinct solute translocation pathways through this channel. Although PorB has been electrophysiologically characterized as anion-selective, cation translocation through nucleotide-bound PorB during pathogenesis is thought to be instrumental for host cell death. As a result, we were particularly interested in further characterizing cation transport through the pore. We combined a structural approach with additional computational analysis. Here, we present two crystal structures of PorB at 2.1 and 2.65 Å resolution. The new structures display additional electron densities around the protruding loop 3 (L3) inside the pore. We show that these electron densities can be identified as monovalent cations, in our case Cs(+), which are tightly bound to the inner channel. Molecular dynamics simulations reveal further ion interactions and the free energy landscape for ions inside PorB. Our results suggest that the crystallographically identified locations of Cs(+) form a cation transport pathway inside the pore. This finding suggests how positively charged ions are translocated through PorB when the channel is inserted into mitochondrial membranes during Neisserial infection, a process which is considered to dissipate the mitochondrial transmembrane potential gradient and thereby induce apoptosis.
脑膜炎奈瑟菌是细菌性脑膜炎的主要病原体。在其外膜中,三聚体奈瑟菌孔蛋白 PorB 负责将必需的亲水性溶质扩散穿过双层。基于最近的 PorB 晶体结构的先前分子动力学模拟表明,该通道存在不同的溶质转运途径。尽管 PorB 已被电生理学鉴定为阴离子选择性,但在发病过程中,核苷酸结合的 PorB 中的阳离子转运被认为对宿主细胞死亡至关重要。因此,我们特别有兴趣进一步表征通过孔的阳离子转运。我们结合了结构方法和额外的计算分析。在这里,我们展示了两个 PorB 的晶体结构,分辨率分别为 2.1 和 2.65Å。新结构显示在孔内突出的环 3(L3)周围有额外的电子密度。我们表明,这些电子密度可以被鉴定为单价阳离子,在我们的情况下为 Cs(+),它们与内通道紧密结合。分子动力学模拟揭示了离子在 PorB 内的进一步相互作用和自由能景观。我们的结果表明,晶体学鉴定的 Cs(+)位置在孔内形成了一个阳离子转运途径。这一发现表明,当通道在奈瑟菌感染期间插入线粒体膜时,带正电荷的离子如何通过 PorB 转运,这一过程被认为会耗散线粒体跨膜电势梯度,从而诱导细胞凋亡。