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同样,使用 3D spt-PALM 观察到活大肠杆菌细胞中 BAM 和 SecYEG 复合物的扩散也非常缓慢。

Similarly slow diffusion of BAM and SecYEG complexes in live E. coli cells observed with 3D spt-PALM.

机构信息

Department of Biochemistry, University of Colorado Boulder, Boulder, Colorado.

BioFrontiers Institute, University of Colorado Boulder, Boulder, Colorado.

出版信息

Biophys J. 2023 Nov 21;122(22):4382-4394. doi: 10.1016/j.bpj.2023.10.017. Epub 2023 Oct 17.

Abstract

The β-barrel assembly machinery (BAM) complex is responsible for inserting outer membrane proteins (OMPs) into the Escherichia coli outer membrane. The SecYEG translocon inserts inner membrane proteins into the inner membrane and translocates both soluble proteins and nascent OMPs into the periplasm. Recent reports describe Sec possibly playing a direct role in OMP biogenesis through interactions with the soluble polypeptide transport-associated (POTRA) domains of BamA (the central OMP component of BAM). Here we probe the diffusion behavior of these protein complexes using photoactivatable super-resolution localization microscopy and single-particle tracking in live E. coli cells of BAM and SecYEG components BamA and SecE and compare them to other outer and inner membrane proteins. To accurately measure trajectories on the highly curved cell surface, three-dimensional tracking was performed using double-helix point-spread function microscopy. All proteins tested exhibit two diffusive modes characterized by "slow" and "fast" diffusion coefficients. We implement a diffusion coefficient analysis as a function of the measurement lag time to separate positional uncertainty from true mobility. The resulting true diffusion coefficients of the slow and fast modes showed a complete immobility of full-length BamA constructs in the time frame of the experiment, whereas the OMP OmpLA displayed a slow diffusion consistent with the high viscosity of the outer membrane. The periplasmic POTRA domains of BamA were found to anchor BAM to other cellular structures and render it immobile. However, deletion of individual distal POTRA domains resulted in increased mobility, suggesting that these domains are required for the full set of cellular interactions. SecE diffusion was much slower than that of the inner membrane protein PgpB and was more like OMPs and BamA. Strikingly, SecE diffused faster upon POTRA domain deletion. These results are consistent with the existence of a BAM-SecYEG trans-periplasmic assembly in live E. coli cells.

摘要

β-桶状膜装配机器(BAM)复合物负责将外膜蛋白(OMPs)插入大肠杆菌外膜。SecYEG 转运体将内膜蛋白插入内膜,并将可溶性蛋白和新生的 OMP 转运到周质中。最近的报告描述了 Sec 可能通过与 BamA(BAM 的中央 OMP 成分)的可溶性多肽转运相关(POTRA)结构域相互作用,在外膜蛋白生物发生中发挥直接作用。在这里,我们使用光可激活的超分辨率定位显微镜和活大肠杆菌细胞中的单粒子跟踪技术,研究了这些蛋白质复合物的扩散行为,其中包括 BAM 和 SecYEG 成分 BamA 和 SecE 的研究。我们将它们与其他外膜和内膜蛋白进行了比较。为了准确测量高度弯曲的细胞表面上的轨迹,我们使用双螺旋点扩散函数显微镜进行了三维跟踪。所有测试的蛋白质都表现出两种扩散模式,其特征是“慢”和“快”扩散系数。我们实施了扩散系数分析,作为测量滞后时间的函数,以将位置不确定性与真实迁移能力区分开来。慢模式和快模式的真实扩散系数的结果表明,全长 BamA 结构在实验时间范围内完全处于固定状态,而 OMP OmpLA 则表现出与外膜高粘度一致的缓慢扩散。发现 BamA 的周质 POTRA 结构域将 BAM 锚定到其他细胞结构上,并使其处于固定状态。然而,单独缺失远端 POTRA 结构域会导致迁移能力增加,这表明这些结构域是细胞相互作用的全部所需。SecE 的扩散速度比内膜蛋白 PgpB 慢得多,更类似于 OMPs 和 BamA。引人注目的是,在 POTRA 结构域缺失后,SecE 的扩散速度更快。这些结果与活大肠杆菌细胞中存在 BAM-SecYEG 跨周质组装是一致的。

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