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Reversal of ciliary mechanisms of disassembly rescues olfactory dysfunction in ciliopathies
Chao Xie, Julien C. Habif, Kirill Ukhanov, Cedric R. Uytingco, Lian Zhang, Robert J. Campbell, Jeffrey R. Martens
Chao Xie, Julien C. Habif, Kirill Ukhanov, Cedric R. Uytingco, Lian Zhang, Robert J. Campbell, Jeffrey R. Martens
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Research Article Cell biology Genetics

Reversal of ciliary mechanisms of disassembly rescues olfactory dysfunction in ciliopathies

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Abstract

Ciliopathies are a class of genetic diseases resulting in cilia dysfunction in multiple organ systems, including the olfactory system. Currently, there are no available curative treatments for olfactory dysfunction and other symptoms in ciliopathies. The loss or shortening of olfactory cilia, as seen in multiple mouse models of the ciliopathy Bardet–Biedl syndrome (BBS), results in olfactory dysfunction. However, the underlying mechanism of the olfactory cilia reduction is unknown, thus limiting the development of therapeutic approaches for BBS and other ciliopathies. Here, we demonstrated that phosphatidylinositol 4,5-bisphosphate [PI(4,5)P2], a phosphoinositide typically excluded from olfactory cilia, aberrantly redistributed into the residual cilia of BBS mouse models, which caused F-actin ciliary infiltration. Importantly, PI(4,5)P2 and F-actin were necessary for olfactory cilia shortening. Using a gene therapeutic approach, the hydrolyzation of PI(4,5)P2 by overexpression of inositol polyphosphate-5-phosphatase E (INPP5E) restored cilia length and rescued odor detection and odor perception in BBS. Together, our data indicate that PI(4,5)P2/F-actin–dependent cilia disassembly is a common mechanism contributing to the loss of olfactory cilia in BBS and provide valuable pan-therapeutic intervention targets for the treatment of ciliopathies.

Authors

Chao Xie, Julien C. Habif, Kirill Ukhanov, Cedric R. Uytingco, Lian Zhang, Robert J. Campbell, Jeffrey R. Martens

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Figure 1

PI(4,5)P2 aberrantly redistributes into olfactory cilia in Bbs4KO.

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PI(4,5)P2 aberrantly redistributes into olfactory cilia in Bbs4KO.
Repre...
Representative en face images of PI(4,5)P2 (PLCδ1-PH-GFP) in the WT (A) and the Bbs4KO (B) olfactory cilia. At 10 days after MP-mCherry and PLCδ1-PH-GFP AV infection, the WT and Bbs4KO mice were used for en face imaging. The endogenous PI(4,5)P2 distribution was labeled by PLCδ1-PH-GFP and the full length of olfactory cilia was marked by MP-mCherry. Scale bars, 10 μm. (C) Quantification of olfactory cilia length per OSN (left) and the cilia number per OSN (right) showing Bbs4KO OSNs have significantly shorter (WT [n = 54 OSNs] vs. Bbs4KO [n = 43 OSNs]: 23.18 ± 1.382 μm vs. 7.411 ± 0.4752 μm, respectively) and fewer olfactory cilia (WT [n = 61 OSNs] vs. Bbs4KO [n = 51 OSNs]: 20.92 ± 0.7240 vs. 7.667 ± 0.3816, respectively) than WT. (D) Quantification of relative PI(4,5)P2-positive OSN cilia length (left) and the percentage of PI(4,5)P2-positive cilia per OSN (right) showing Bbs4KO OSNs have relatively longer (WT [n = 161 cilia] vs. Bbs4KO [n = 124 cilia]: 8.347 ± 1.950 vs. 88.98 ± 2.078, respectively) and more PI(4,5)P2 (WT [n = 23 OSNs] vs. Bbs4KO [n = 24 OSNs]: 8.399 ± 2.102 vs. 94.63 ± 1.649, respectively) redistributed cilia. Unpaired t test, ****P < 0.0001. Values represent mean ± SEM.

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