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呼吸纤毛的多尺度对齐及其与黏液纤毛功能的关系。

Multi-scale alignment of respiratory cilia and its relation to mucociliary function.

机构信息

Institute of Applied Physics, University of Bern, Sidlerstrasse 5, Switzerland; Institute of Anatomy, University of Bern, Baltzerstrasse 2, Switzerland.

Institute of Anatomy, University of Bern, Baltzerstrasse 2, Switzerland.

出版信息

J Struct Biol. 2021 Mar;213(1):107680. doi: 10.1016/j.jsb.2020.107680. Epub 2020 Dec 21.

Abstract

The tracheobronchial tree is lined by a mucociliary epithelium containing millions of multiciliated cells. Their integrated oscillatory activity continuously propels an overlying pollution-protecting mucus layer in cranial direction, leading to mucociliary clearance - the primary defence mechanism of the airways. Mucociliary transport is commonly thought to co-emerge with the collective ciliary motion pattern under appropriate geometrical and rheological conditions. Proper ciliary alignment is therefore considered essential to establish mucociliary clearance in the respiratory system. Here, we used volume electron microscopy in combination with high-speed reflection contrast microscopy in order to examine ciliary orientation and its spatial organization, as well as to measure the propagation direction of metachronal waves and the direction of mucociliary transport on bovine tracheal epithelia with reference to the tracheal long axis (TLA). Ciliary orientation is measured in terms of the basal body orientation (BBO) and the axonemal orientation (AO), which are commonly considered to coincide, both equivalently indicating the effective stroke as well as the mucociliary transport direction. Our results, however, reveal that only the AO is in line with the mucociliary transport, which was found to run along a left-handed helical trajectory, whereas the BBO was found to be aligned with the TLA. Furthermore, we show that even if ciliary orientation remains consistent between adjacent cells, ciliary orientation exhibits a gradual shift within individual cells. Together with the symplectic beating geometry, this intracellular orientational pattern could provide for the propulsion of highly viscous mucus and likely constitutes a compromise between efficiency and robustness.

摘要

气管支气管树由含有数百万纤毛细胞的黏液纤毛上皮衬里。它们的整合振动活动不断地将一个覆盖的污染保护黏液层朝颅侧推进,导致黏液纤毛清除——这是气道的主要防御机制。通常认为,在适当的几何形状和流变学条件下,黏液纤毛输送与集体纤毛运动模式共同出现。因此,适当的纤毛排列被认为是在呼吸系统中建立黏液纤毛清除的必要条件。在这里,我们使用体积电子显微镜结合高速反射对比显微镜,以便检查纤毛的取向及其空间组织,以及测量牛气管上皮的纤毛波传播方向和相对于气管长轴 (TLA) 的黏液纤毛输送方向。纤毛取向通过基底体取向 (BBO) 和轴丝取向 (AO) 来测量,通常认为这两者是一致的,都等效地表示有效冲程和黏液纤毛输送方向。然而,我们的结果表明,只有 AO 与黏液纤毛输送一致,我们发现它沿着左手螺旋轨迹运行,而 BBO 则与 TLA 对齐。此外,我们表明,即使相邻细胞之间的纤毛取向保持一致,纤毛取向在单个细胞内也会逐渐发生变化。与交感振动力学几何形状一起,这种细胞内取向模式可以为高粘性黏液的推进提供动力,并且可能是效率和稳健性之间的妥协。

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