Biology Department, Rosenstiel Center, MS029, Brandeis University, Waltham, Massachusetts 02454.
Department of Genetics, Cell Biology, and Development, University of Minnesota, Minneapolis, Minnesota 55455, and.
J Biol Chem. 2011 Aug 19;286(33):29175-29191. doi: 10.1074/jbc.M111.241760. Epub 2011 Jun 23.
The directional flow generated by motile cilia and flagella is critical for many processes, including human development and organ function. Normal beating requires the control and coordination of thousands of dynein motors, and the nexin-dynein regulatory complex (N-DRC) has been identified as an important regulatory node for orchestrating dynein activity. The nexin link appears to be critical for the transformation of dynein-driven, linear microtubule sliding to flagellar bending, yet the molecular composition and mechanism of the N-DRC remain largely unknown. Here, we used proteomics with special attention to protein phosphorylation to analyze the composition of the N-DRC and to determine which subunits may be important for signal transduction. Two-dimensional electrophoresis and MALDI-TOF mass spectrometry of WT and mutant flagellar axonemes from Chlamydomonas identified 12 N-DRC-associated proteins, including all seven previously observed N-DRC components. Sequence and PCR analyses identified the mutation responsible for the phenotype of the sup-pf-4 strain, and biochemical comparison with a radial spoke mutant revealed two components that may link the N-DRC and the radial spokes. Phosphoproteomics revealed eight proteins with phosphorylated isoforms for which the isoform patterns changed with the genotype as well as two components that may play pivotal roles in N-DRC function through their phosphorylation status. These data were assembled into a model of the N-DRC that explains aspects of its regulatory function.
纤毛和鞭毛的定向流动对于许多过程至关重要,包括人类发育和器官功能。正常的拍打需要数千个动力蛋白的控制和协调,并且已经确定连丝-动力蛋白调节复合物(N-DRC)是协调动力蛋白活性的重要调节节点。连丝连接似乎对于将动力蛋白驱动的线性微管滑动转化为鞭毛弯曲至关重要,但 N-DRC 的分子组成和机制在很大程度上仍然未知。在这里,我们使用蛋白质组学特别注意蛋白质磷酸化来分析 N-DRC 的组成,并确定哪些亚基可能对信号转导很重要。用二维电泳和 MALDI-TOF 质谱对来自衣藻的 WT 和突变鞭毛轴丝进行分析,鉴定出 12 种与 N-DRC 相关的蛋白质,包括以前观察到的所有七个 N-DRC 成分。序列和 PCR 分析确定了导致 sup-pf-4 菌株表型的突变,并与辐射辐条突变体的生化比较揭示了两个可能将 N-DRC 和辐射辐条联系起来的成分。磷酸化蛋白质组学揭示了 8 种具有磷酸化同工型的蛋白质,其同工型模式随基因型而变化,并且有两个成分可能通过其磷酸化状态在 N-DRC 功能中发挥关键作用。这些数据被组装成一个 N-DRC 模型,解释了其调节功能的各个方面。