Data from: Dynamic curvature regulation accounts for the symmetric and asymmetric beats of Chlamydomonas flagella
Data files
May 12, 2016 version files 2.70 GB
-
mbo2_1.zip
329.21 MB
-
mbo2_10.zip
182.39 MB
-
mbo2_2.zip
177.88 MB
-
mbo2_3.zip
212.48 MB
-
mbo2_4.zip
280.14 MB
-
mbo2_5.zip
117.64 MB
-
mbo2_6.zip
291.57 MB
-
mbo2_7.zip
361.82 MB
-
mbo2_8.zip
199.80 MB
-
mbo2_9.zip
196.93 MB
-
README_for_mbo2_1.txt
2.06 KB
-
README_for_mbo2_10.txt
2.06 KB
-
README_for_mbo2_2.txt
2.06 KB
-
README_for_mbo2_3.txt
2.06 KB
-
README_for_mbo2_4.txt
2.06 KB
-
README_for_mbo2_5.txt
2.06 KB
-
README_for_mbo2_6.txt
2.06 KB
-
README_for_mbo2_7.txt
2.06 KB
-
README_for_mbo2_8.txt
2.06 KB
-
README_for_mbo2_9.txt
2.06 KB
-
README_for_WT_1.txt
2.06 KB
-
README_for_WT_10.txt
2.06 KB
-
README_for_WT_2.txt
2.06 KB
-
README_for_WT_3.txt
2.06 KB
-
README_for_WT_4.txt
2.06 KB
-
README_for_WT_5.txt
2.06 KB
-
README_for_WT_6.txt
2.06 KB
-
README_for_WT_7.txt
2.06 KB
-
README_for_WT_8.txt
2.06 KB
-
README_for_WT_9.txt
2.06 KB
-
WT_1.zip
23.74 MB
-
WT_10.zip
32.79 MB
-
WT_2.zip
30.54 MB
-
WT_3.zip
24.91 MB
-
WT_4.zip
28.73 MB
-
WT_5.zip
24.48 MB
-
WT_6.zip
34.89 MB
-
WT_7.zip
95.25 MB
-
WT_8.zip
25.63 MB
-
WT_9.zip
26.76 MB
Abstract
Cilia and flagella are model systems for studying how mechanical forces control morphology. The periodic bending motion of cilia and flagella is thought to arise from mechanical feedback: dynein motors generate sliding forces that bend the flagellum, and bending leads to deformations and stresses, which feed back and regulate the motors. Three alternative feedback mechanisms have been proposed: regulation by the sliding forces, regulation by the curvature of the flagellum, and regulation by the normal forces that deform the cross-section of the flagellum. In this work, we combined theoretical and experimental approaches to show that the curvature control mechanism is the one that accords best with the bending waveforms of Chlamydomonas flagella. We make the surprising prediction that the motors respond to the time derivative of curvature, rather than curvature itself, hinting at an adaptation mechanism controlling the flagellar beat.
