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Characterization of Primary Cilia in Osteoblasts Isolated From Patients With ADPKD and CKD
Renata C Pereira1, Berenice Y Gitomer2, Michel Chonchol2
1Department of Pediatrics David Geffen School of Medicine at UCL Los Angeles CA USA.
Insights
Autosomal dominant polycystic kidney disease (ADPKD) osteoblasts show abnormal primary cilia elongation, distinct from other chronic kidney disease (CKD) bone issues. This suggests altered cilia impact ADPKD bone cell activity and mineralization.
Area of Science:
- Cell Biology
- Nephrology
- Bone Biology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is the leading inherited cause of chronic kidney disease (CKD), often associated with a unique bone disease.
- The primary cilium, a cellular organelle, is implicated in ADPKD pathogenesis, particularly in mutations of polycystin-1 (PKD1) and polycystin-2 (PKD2).
- Bone disease in ADPKD is characterized by low bone turnover, but its cellular mechanisms remain unclear and poorly modeled in animal studies.
Purpose of the Study:
- To characterize primary cilia in osteoblasts derived from patients with ADPKD and non-ADPKD CKD.
- To investigate the relationship between cilia abnormalities and osteoblastic activity in ADPKD.
- To differentiate bone cell defects in ADPKD from those in adynamic bone disease associated with non-ADPKD CKD.
Main Methods:
- Primary osteoblasts were isolated from patients with ADPKD and non-ADPKD CKD with low bone turnover.
- Immunofluorescence assays were used to visualize and analyze primary cilia using markers like pericentrin and acetylated-α-tubulin.
- Osteoblastic activity was assessed by measuring alkaline phosphatase levels and mineralized matrix deposition.
Main Results:
- Primary cilia were successfully visualized in patient-derived osteoblasts and responded to elongation treatments.
- ADPKD osteoblasts exhibited abnormal cilia elongation, particularly in cells with PKD2 nontruncating and PKD1 mutations, unlike non-ADPKD CKD osteoblasts.
- ADPKD osteoblasts demonstrated significantly increased rates of mineralized matrix deposition compared to non-ADPKD CKD osteoblasts.
Conclusions:
- This study provides the first characterization of primary cilia in human osteoblasts from CKD and ADPKD patients.
- Altered primary cilia in ADPKD osteoblasts suggest a distinct mechanism contributing to ADPKD-related bone disease.
- The findings differentiate ADPKD bone defects from adynamic bone disease in non-ADPKD CKD, highlighting the role of cilia dysfunction.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is the most common inherited cause of chronic kidney disease (CKD) and leads to a specific type of bone disease. The primary cilium is a major cellular organelle implicated in the pathophysiology of ADPKD caused by mutations in polycystin-1 (PKD1) and polycystin-2 (PKD2). In this study, for the first time, cilia were characterized in primary preosteoblasts isolated from patients with ADPKD. All patients with ADPKD had low bone turnover and primary osteoblasts were also obtained from patients with non-ADPKD CKD with low bone turnover. Image-based immunofluorescence assays analyzed cilia using standard markers, pericentrin, and acetylated-α-tubulin, where cilia induction and elongation were chosen as relevant endpoints for these initial investigations. Osteoblastic activity was examined by measuring alkaline phosphatase levels and mineralized matrix deposition rates. It was found that primary cilia can be visualized in patient-derived osteoblasts and respond to elongation treatments. Compared with control cells, ADPKD osteoblasts displayed abnormal cilia elongation that was significantly more responsive in cells with PKD2 nontruncating mutations and PKD1 mutations. In contrast, non-ADPKD CKD osteoblasts were unresponsive and had shorter cilia. Finally, ADPKD osteoblasts showed increased rates of mineralized matrix deposition compared with non-ADPKD CKD. This work represents the first study of cilia in primary human-derived osteoblasts from patients with CKD and patients with ADPKD who have normal kidney function, offering new insights as bone disease phenotypes are not well recapitulated in animal models. These data support a model whereby altered cilia occurs in PKD-mutated osteoblasts, and that ADPKD-related defects in bone cell activity and mineralization are distinct from adynamic bone disease from patients with non-ADPKD CKD. © 2021 The Authors. JBMR Plus published by Wiley Periodicals LLC. on behalf of American Society for Bone and Mineral Research.
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