The primary cilium dynamics in cancer progression: a central regulator of chemoresistance and metastatic behavior

Primary cilia are integrative sensory organelles that function as spatially confined hubs for both oncogenic signaling and tumor-suppressive signaling in cancer. Early oncogenic events, including KRAS activation and EZH2-mediated epigenetic repression, actively silence ciliogenesis, increase spatial constraints on key pathways and facilitate malignant transformation across several tumor types such as pancreatic, breast, renal, melanoma, and glioblastoma. However, under therapeutic, metabolic, or genotoxic stress, cancer cells can reassemble primary cilia via the DNA damage response (DDR), autophagy, and related mechanisms, using the ciliary compartment to engage survival pathways, acquire chemoresistance, and remodel their metastatic behavior. In some contexts, restored cilia promote the epithelial–mesenchymal transition, invasion, and dissemination, whereas in others, persistent deciliation sustains nuclear β‑catenin signaling and supports metastatic outgrowth, underscoring the context‑dependent nature of ciliary functions. This review synthesizes current evidence on how dynamic gain and loss of primary cilia orchestrate therapeutic resistance and metastatic progression and surveys emerging strategies to pharmacologically modulate ciliary structure and signaling. Understanding ciliary status as a dynamic biomarker and therapeutic vulnerability may enable cilia-directed precision oncology and more rational stratification of patients for cilia-targeted interventions.

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Publication Details

Journal
Cellular Oncology
Published
2026-09-11
DOI
https://doi.org/10.1007/s13402-026-01295-2
Primary Topic
Genetic and Kidney Cyst Diseases
Type
article
Field-Weighted Citation Impact
0.00

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article

The primary cilium dynamics in cancer progression: a central regulator of chemoresistance and metastatic behavior

Chia‐Yih Wang, Chu-An Wang, Yan-Shen Shan, Ruei-Ci Lin et al.
Cellular Oncology
Genetic and Kidney Cyst Diseases
article

The primary cilium dynamics in cancer progression: a central regulator of chemoresistance and metastatic behavior

Chia‐Yih Wang, Chu-An Wang, Yan-Shen Shan, Ruei-Ci Lin, Chieh Shen
article en

Abstract

Primary cilia are integrative sensory organelles that function as spatially confined hubs for both oncogenic signaling and tumor-suppressive signaling in cancer. Early oncogenic events, including KRAS activation and EZH2-mediated epigenetic repression, actively silence ciliogenesis, increase spatial constraints on key pathways and facilitate malignant transformation across several tumor types such as pancreatic, breast, renal, melanoma, and glioblastoma. However, under therapeutic, metabolic, or genotoxic stress, cancer cells can reassemble primary cilia via the DNA damage response (DDR), autophagy, and related mechanisms, using the ciliary compartment to engage survival pathways, acquire chemoresistance, and remodel their metastatic behavior. In some contexts, restored cilia promote the epithelial–mesenchymal transition, invasion, and dissemination, whereas in others, persistent deciliation sustains nuclear β‑catenin signaling and supports metastatic outgrowth, underscoring the context‑dependent nature of ciliary functions. This review synthesizes current evidence on how dynamic gain and loss of primary cilia orchestrate therapeutic resistance and metastatic progression and surveys emerging strategies to pharmacologically modulate ciliary structure and signaling. Understanding ciliary status as a dynamic biomarker and therapeutic vulnerability may enable cilia-directed precision oncology and more rational stratification of patients for cilia-targeted interventions.

Cellular Oncology
National Cheng Kung University Hospital (TW), National Cheng Kung University (TW)
Ministry of Science and Technology, Taiwan
Good health and well-being
Openalex Percentile: Top 11%
Genetic and Kidney Cyst Diseases
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