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Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Systemic Activation of Activin A Signaling Causes Chronic Kidney Disease-Mineral Bone Disorder
1Department of Pediatrics, Washington University School of Medicine, 660 S. Euclid, St. Louis, MO 63110, USA. sugatani_t@wustl.edu.
Insights
Chronic kidney disease (CKD) worsens bone health through CKD-mineral bone disorder (CKD-MBD). Activin A drives osteoclast activity in CKD, suggesting activin A inhibition as a potential treatment for bone loss.
Area of Science:
- Nephrology
- Endocrinology
- Bone Biology
Background:
- Chronic kidney disease (CKD) is linked to high cardiovascular mortality, partly due to CKD-mineral bone disorder (CKD-MBD).
- CKD-MBD encompasses skeletal, vascular, and cardiac pathologies driven by metabolic changes from kidney disease.
- Renal osteodystrophy (ROD), a skeletal component of CKD-MBD, presents as osteopenia/osteoporosis, exceeding general population prevalence and posing a public health concern.
Purpose of the Study:
- To clarify the molecular mechanisms by which CKD causes renal osteodystrophy (ROD).
- To investigate the role of activin A and Smad signaling in CKD-induced bone remodeling.
- To explore potential therapeutic targets for CKD-related bone disorders.
Main Methods:
- Investigated activin A's role in receptor activator of nuclear factor kappa-B ligand (RANKL)-induced osteoclastogenesis.
- Assessed systemic activin receptor activation and activin A levels in CKD mouse models (diabetic CKD, Alport syndrome).
- Administered an activin receptor ligand trap to CKD mouse models to evaluate effects on bone resorption and formation.
Main Results:
- Activin A, a TGF-β superfamily member, positively regulates RANKL-induced osteoclastogenesis via Smad signaling.
- CKD mouse models exhibited systemic activin receptor activation and elevated activin A levels.
- Treatment with an activin receptor ligand trap reduced osteoclast-mediated bone resorption and enhanced osteoblastic bone formation in CKD mice, independent of parathyroid hormone (PTH).
Conclusions:
- Activin A is a key mediator of CKD-induced high-turnover renal osteodystrophy.
- Inhibition of activin A signaling via a decoy receptor presents a promising therapeutic strategy for CKD-induced osteopenia and osteoporosis.
- These findings identify novel therapeutic targets for managing bone loss in CKD and potentially other bone disorders.
Abstract:
The high cardiovascular mortality associated with chronic kidney disease (CKD) is caused in part by the CKD-mineral bone disorder (CKD-MBD) syndrome. The CKD-MBD consists of skeletal, vascular and cardiac pathology caused by metabolic derangements produced by kidney disease. The prevalence of osteopenia/osteoporosis resulting from the skeletal component of the CKD-MBD, renal osteodystrophy (ROD), in patients with CKD exceeds that of the general population and is a major public health concern. That CKD is associated with compromised bone health is widely accepted, yet the mechanisms underlying impaired bone metabolism in CKD are not fully understood. Therefore, clarification of the molecular mechanisms by which CKD produces ROD is of crucial significance. We have shown that activin A, a member of the transforming growth factor (TGF)-β super family, is an important positive regulator of receptor activator of nuclear factor kappa-B ligand (RANKL)-induced osteoclastogenesis with Smad-mediated signaling being crucial for inducing osteoclast development and function. Recently, we have demonstrated systemic activation of activin receptors and activin A levels in CKD mouse models, such as diabetic CKD and Alport (AL) syndrome. In these CKD mouse models, bone remodeling caused by increased osteoclast numbers and activated osteoclastic bone resorption was observed and treatment with an activin receptor ligand trap repaired CKD-induced-osteoclastic bone resorption and stimulated individual osteoblastic bone formation, irrespective of parathyroid hormone (PTH) elevation. These findings have opened a new field for exploring mechanisms of activin A-enhanced osteoclast formation and function in CKD. Activin A appears to be a strong candidate for CKD-induced high-turnover ROD. Therefore, the treatment with the decoy receptor for activin A might be a good candidate for treatment for CKD-induced osteopenia or osteoporosis, indicating that the new findings from in these studies will lead to the identification of novel therapeutic targets for CKD-related and osteopenia and osteoporosis in general. In this review, we describe the impact of CKD-induced Smad signaling in osteoclasts, osteoblasts and vascular cells in CKD.
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