TY - JOUR
T1 - Molecular basis for CPAP-tubulin interaction in controlling centriolar and ciliary length
AU - Zheng, Xiangdong
AU - Ramani, Anand
AU - Soni, Komal
AU - Gottardo, Marco
AU - Zheng, Shuangping
AU - Ming Gooi, Li
AU - Li, Wenjing
AU - Feng, Shan
AU - Mariappan, Aruljothi
AU - Wason, Arpit
AU - Widlund, Per
AU - Pozniakovsky, Andrei
AU - Poser, Ina
AU - Deng, Haiteng
AU - Ou, Guangshuo
AU - Riparbelli, Maria
AU - Giuliano, Callaini
AU - Hyman, Anthony A.
AU - Sattler, Michael
AU - Gopalakrishnan, Jay
AU - Li, Haitao
PY - 2016/6/16
Y1 - 2016/6/16
N2 - Centrioles and cilia are microtubule-based structures, whose precise formation requires controlled cytoplasmic tubulin incorporation. How cytoplasmic tubulin is recognized for centriolar/ciliary-microtubule construction remains poorly understood. Centrosomal-P4.1-associated-protein (CPAP) binds tubulin via its PN2-3 domain. Here, we show that a C-terminal loop-helix in PN2-3 targets β-tubulin at the microtubule outer surface, while an N-terminal helical motif caps microtubule's α-β surface of β-tubulin. Through this, PN2-3 forms a high-affinity complex with GTP-tubulin, crucial for defining numbers and lengths of centriolar/ciliary-microtubules. Surprisingly, two distinct mutations in PN2-3 exhibit opposite effects on centriolar/ciliary-microtubule lengths. CPAP F375A, with strongly reduced tubulin interaction, causes shorter centrioles and cilia exhibiting doublet- instead of triplet-microtubules. CPAP EE343RR that unmasks the β-tubulin polymerization surface displays slightly reduced tubulin-binding affinity inducing over-elongation of newly forming centriolar/ciliary-microtubules by enhanced dynamic release of its bound tubulin. Thus CPAP regulates delivery of its bound-tubulin to define the size of microtubule-based cellular structures using a €clutch-like' mechanism.
AB - Centrioles and cilia are microtubule-based structures, whose precise formation requires controlled cytoplasmic tubulin incorporation. How cytoplasmic tubulin is recognized for centriolar/ciliary-microtubule construction remains poorly understood. Centrosomal-P4.1-associated-protein (CPAP) binds tubulin via its PN2-3 domain. Here, we show that a C-terminal loop-helix in PN2-3 targets β-tubulin at the microtubule outer surface, while an N-terminal helical motif caps microtubule's α-β surface of β-tubulin. Through this, PN2-3 forms a high-affinity complex with GTP-tubulin, crucial for defining numbers and lengths of centriolar/ciliary-microtubules. Surprisingly, two distinct mutations in PN2-3 exhibit opposite effects on centriolar/ciliary-microtubule lengths. CPAP F375A, with strongly reduced tubulin interaction, causes shorter centrioles and cilia exhibiting doublet- instead of triplet-microtubules. CPAP EE343RR that unmasks the β-tubulin polymerization surface displays slightly reduced tubulin-binding affinity inducing over-elongation of newly forming centriolar/ciliary-microtubules by enhanced dynamic release of its bound tubulin. Thus CPAP regulates delivery of its bound-tubulin to define the size of microtubule-based cellular structures using a €clutch-like' mechanism.
UR - https://www.scopus.com/pages/publications/84975087475
U2 - 10.1038/ncomms11874
DO - 10.1038/ncomms11874
M3 - Article
C2 - 27306797
AN - SCOPUS:84975087475
SN - 2041-1723
VL - 7
JO - Nature Communications
JF - Nature Communications
M1 - 11874
ER -