How Does Cilium Length Affect Beating?

被引:35
作者
Bottier, Mathieu [1 ,2 ]
Thomas, Kyle A. [1 ]
Dutcher, Susan K. [2 ]
Bayly, Philip, V [1 ]
机构
[1] Washington Univ, Dept Mech Engn & Mat Sci, St Louis, MO 63130 USA
[2] Washington Univ, Dept Genet, St Louis, MO 63110 USA
基金
美国国家科学基金会;
关键词
CHLAMYDOMONAS FLAGELLA; FORCE GENERATION; DYNEIN ARMS; BENDING PATTERNS; PROXIMAL PORTION; GENETIC-ANALYSIS; WILD-TYPE; MOTION; REGENERATION; PROPAGATION;
D O I
10.1016/j.bpj.2019.02.012
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The effects of cilium length on the dynamics of cilia motion were investigated by high-speed video microscopy of uniciliated mutants of the swimming alga, Chlamydomonas reinhardtii. Cells with short cilia were obtained by deciliating cells via pH shock and allowing cilia to reassemble for limited times. The frequency of cilia beating was estimated from the motion of the cell body and of the cilium. Key features of the ciliary waveform were quantified from polynomial curves fitted to the cilium in each image frame. Most notably, periodic beating did not emerge until the cilium reached a critical length between 2 and 4 mm. Surprisingly, in cells that exhibited periodic beating, the frequency of beating was similar for all lengths with only a slight decrease in frequency as length increased from 4 mm to the normal length of 10-12 mu m. The waveform average curvature (rad/mm) was also conserved as the cilium grew. The mechanical metrics of ciliary propulsion (force, torque, and power) all increased in proportion to length. The mechanical efficiency of beating appeared to be maximal at the normal wild-type length of 10-12 mu m. These quantitative features of ciliary behavior illuminate the biophysics of cilia motion and, in future studies, may help distinguish competing hypotheses of the underlying mechanism of oscillation.
引用
收藏
页码:1292 / 1304
页数:13
相关论文
共 84 条
[1]   FORCE GENERATION OF ORGANELLE TRANSPORT MEASURED INVIVO BY AN INFRARED-LASER TRAP [J].
ASHKIN, A ;
SCHUTZE, K ;
DZIEDZIC, JM ;
EUTENEUER, U ;
SCHLIWA, M .
NATURE, 1990, 348 (6299) :346-348
[2]  
Asleson CM, 1998, GENETICS, V148, P693
[3]   Actin Is Required for IFT Regulation in Chlamydomonas reinhardtii [J].
Avasthi, Prachee ;
Onishi, Masayuki ;
Karpiak, Joel ;
Yamamoto, Ryosuke ;
Mackinder, Luke ;
Jonikas, Martin C. ;
Sale, Winfield S. ;
Shoichet, Brian ;
Pringle, John R. ;
Marshall, Wallace F. .
CURRENT BIOLOGY, 2014, 24 (17) :2025-2032
[4]   NPHP4 controls ciliary trafficking of membrane proteins and large soluble proteins at the transition zone [J].
Awata, Junya ;
Takada, Saeko ;
Standley, Clive ;
Lechtreck, Karl F. ;
Bellve, Karl D. ;
Pazour, Gregory J. ;
Fogarty, Kevin E. ;
Witman, George B. .
JOURNAL OF CELL SCIENCE, 2014, 127 (21) :4714-4727
[5]  
BARSEL SE, 1988, GENETICS, V118, P637
[6]   Steady dynein forces induce flutter instability and propagating waves in mathematical models of flagella [J].
Bayly, P. V. ;
Dutcher, S. K. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2016, 13 (123)
[7]   Analysis of unstable modes distinguishes mathematical models of flagellar motion [J].
Bayly, P. V. ;
Wilson, K. S. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2015, 12 (106)
[8]   Propulsive Forces on the Flagellum during Locomotion of Chlamydomonas reinhardtii [J].
Bayly, P. V. ;
Lewis, B. L. ;
Ranz, E. C. ;
Okamoto, R. J. ;
Pless, R. B. ;
Dutcher, S. K. .
BIOPHYSICAL JOURNAL, 2011, 100 (11) :2716-2725
[9]   Efficient Spatiotemporal Analysis of the Flagellar Waveform of Chlamydomonas reinhardtii [J].
Bayly, P. V. ;
Lewis, B. L. ;
Kemp, P. S. ;
Pless, R. B. ;
Dutcher, S. K. .
CYTOSKELETON, 2010, 67 (01) :56-69
[10]   Equations of Interdoublet Separation during Flagella Motion Reveal Mechanisms of Wave Propagation and Instability [J].
Bayly, Philip V. ;
Wilson, Kate S. .
BIOPHYSICAL JOURNAL, 2014, 107 (07) :1756-1772