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Combined antiresorptive and new anabolic drug approach in osteogenesis imperfecta zebrafish models
Cecilia Masiero1, Francesca Tonelli1, Carla Aresi1
1Department of Molecular Medicine, Biochemistry Unit, University of Pavia, 27100 Pavia, Italy.
Abstract:
Osteogenesis imperfecta (OI) is a family of heritable collagen I-related skeletal disorders for which, to date, no definitive cure is available. Individuals with OI are mainly treated with bisphosphonates that enhance bone mass by inhibiting bone resorption. However, new strategies combining antiresorptive molecules with bone anabolic drugs are likely to provide valid alternatives for skeletal health, protecting physiological bone turnover. Recently, cellular stress has been identified as a therapeutic target in both dominant and recessive forms of OI characterized by overmodified collagen I. The chemical chaperone 4-phenylbutyrate (4PBA) successfully ameliorated cell homeostasis in both in vitro and in vivo OI models. In this study, dominant Chihuahua (Chi/+) and recessive p3h1-/- zebrafish OI models were treated for 2 mo either with the bisphosphonate alendronate (ALN) or with 4PBA or with a combination of the two. The treatment effect at the tissue level was evaluated by microCT analysis of the vertebral body, while histology and gene expression analyses allowed to dissect the consequences at a cellular level. Only ALN administration improved the vertebral thickness in the dominant Chi/+ model. The combined therapy synergistically improved osteoblast homeostasis and promoted the formation of mature extracellular collagen fibers in both models. All treatment conditions reduced osteoclast TRAP activity in Chi/+, whereas 4PBA and 4PBA + ALN had the opposite effect on p3h1-/- . Finally, 4PBA and the combination of ALN and 4PBA reduced osteocyte apoptosis only in p3h1-/- . Our data demonstrated for the first time in vivo a differential effect of the combination of an antiresorptive and a new anabolic compound in dominant and recessive OI zebrafish models, stressing the importance of identifying the specific causative molecular defect to define the best treatment option.
Insights
New research explores combining bisphosphonates with 4-phenylbutyrate (4PBA) for Osteogenesis Imperfecta (OI). This combined therapy shows promise in improving bone health and collagen formation in zebrafish models of OI.
Area of Science:
- Biochemistry
- Genetics
- Pharmacology
Background:
- Osteogenesis Imperfecta (OI) is a group of heritable skeletal disorders affecting collagen I.
- Current treatments, primarily bisphosphonates, inhibit bone resorption but do not offer a definitive cure.
- Emerging strategies focus on combining antiresorptive and anabolic drugs, targeting cellular stress in OI.
Purpose of the Study:
- To evaluate the in vivo efficacy of alendronate (ALN), 4-phenylbutyrate (4PBA), and their combination in dominant and recessive zebrafish OI models.
- To investigate the effects of these treatments on bone tissue, cellular homeostasis, and collagen structure.
- To determine if a combined therapeutic approach offers synergistic benefits for OI treatment.
Main Methods:
- Treatment of dominant (Chi/+) and recessive (p3h1-/-) zebrafish OI models with ALN, 4PBA, or both for two months.
- MicroCT analysis of vertebral bodies for bone structure assessment.
- Histology, gene expression, and TRAP activity assays for cellular and molecular evaluations.
Main Results:
- Alendronate (ALN) alone improved vertebral thickness in the dominant Chi/+ model.
- Combined therapy synergistically enhanced osteoblast homeostasis and mature collagen fiber formation in both OI models.
- 4PBA and combined therapy differentially affected osteoclast activity and reduced osteocyte apoptosis in the recessive p3h1-/- model.
Conclusions:
- The combination of antiresorptive (ALN) and anabolic (4PBA) compounds demonstrates differential in vivo effects in dominant and recessive OI zebrafish models.
- Targeting cellular stress with 4PBA shows therapeutic potential, especially when combined with bisphosphonates.
- Personalizing OI treatment based on the specific causative molecular defect is crucial for optimal therapeutic outcomes.

