Department of Molecular Anatomy, Molecular Imaging Advanced Research Center, Hamamatsu University School of Medicine, Hamamatsu, Shizuoka 431-3192, Japan.
Proc Natl Acad Sci U S A. 2010 Jun 8;107(23):10490-5. doi: 10.1073/pnas.1002128107. Epub 2010 May 24.
Airway epithelial cilia protect the mammalian respiratory system from harmful inhaled materials by providing the force necessary for effective mucociliary clearance. Ciliary beating is asymmetric, composed of clearly distinguished effective and recovery strokes. Neither the importance of nor the essential components responsible for the beating asymmetry has been directly elucidated. We report here that the beating asymmetry is crucial for ciliary function and requires tubulin glutamylation, a unique posttranslational modification that is highly abundant in cilia. WT murine tracheal cilia have an axoneme-intrinsic structural curvature that points in the direction of effective strokes. The axonemal curvature was lost in tracheal cilia from mice with knockout of a tubulin glutamylation-performing enzyme, tubulin tyrosine ligase-like protein 1. Along with the loss of axonemal curvature, the axonemes and tracheal epithelial cilia from these knockout (KO) mice lost beating asymmetry. The loss of beating asymmetry resulted in a reduction of cilia-generated fluid flow in trachea from the KO mice. The KO mice displayed a significant accumulation of mucus in the nasal cavity, and also emitted frequent coughing- or sneezing-like noises. Thus, the beating asymmetry is important for airway ciliary function. Our findings provide evidence that tubulin glutamylation is essential for ciliary function through the regulation of beating asymmetry, and provides insight into the molecular basis underlying the beating asymmetry.
气道上皮纤毛通过提供有效清除黏液所需的力量,保护哺乳动物的呼吸系统免受有害吸入物的侵害。纤毛的摆动是不对称的,由明显区分的有效运动和恢复运动组成。但对于这种不对称性的重要性以及负责不对称性的基本组成部分,尚未直接阐明。我们在这里报告,纤毛的不对称性对于纤毛功能至关重要,需要微管谷氨酰胺化,这是一种在纤毛中高度丰富的独特翻译后修饰。WT 鼠气管纤毛具有指向有效运动方向的轴丝固有结构弯曲。气管纤毛中微管酪氨酸连接酶样蛋白 1 敲除的小鼠中,这种轴丝弯曲消失了。随着轴丝弯曲的消失,这些 KO 小鼠的轴丝和气管上皮纤毛也失去了不对称性。纤毛不对称性的丧失导致 KO 小鼠气管中的纤毛产生的液流减少。这些 KO 小鼠鼻腔中黏液明显积聚,也经常发出类似咳嗽或打喷嚏的声音。因此,纤毛的不对称性对于气道纤毛功能很重要。我们的发现提供了证据,表明微管谷氨酰胺化通过调节纤毛的不对称性对纤毛功能至关重要,并深入了解了纤毛不对称性的分子基础。