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April 8, 2026Journal of Cellular and Molecular Medicine0 citationsOpen Access

OMICS Profiling Identifies Signatures of Senescence in Osteogenesis Imperfecta Osteoblasts Counteracted by 4‐PBA

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RBRoberta BesioEMElisa MaffioliEPErika Palladino

Key Points

  • This research aims to explore the effects of mutant collagen retention on osteoblast function and the mitigating role of 4-PBA.
  • Conducted secretomic and transcriptomic analyses in two OI mouse models.
  • Used MS/MS proteomic analysis on conditioned media to study secreted proteins.
  • Assessed β-galactosidase activity and expression of cell cycle-related proteins to characterize senescence.
  • Evaluated the effects of 4-PBA on senescence-associated protein expression.
  • Identified proteins associated with senescence and altered cell adhesion in OI osteoblasts.
  • Confirmed premature senescence activation via increased p16 expression and decreased Ki67 levels.
  • Observed that 4-PBA treatment eliminated senescence markers and improved osteoblast function.

Abstract

Mutations in collagen I are the most common cause of osteogenesis imperfecta (OI), leading to delayed protein folding and structurally abnormal molecules. While some aberrant collagen is secreted into the extracellular matrix (ECM), impairing bone quality, a significant fraction is retained intracellularly, disrupting osteoblast homeostasis. 4-phenylbutyrate (4-PBA) has been shown to improve osteoblast function and ECM composition in OI models. To investigate the intracellular consequences of mutant collagen retention and the mechanisms of 4-PBA, we analysed the secretome and transcriptome of two dominant OI mouse models, Col1a1+/G349C and Col1a2+/G610C. MS/MS proteomic analysis of conditioned media revealed senescence-associated secretory phenotype proteins, together with components linked to altered cytoskeletal organization and cell adhesion. Transcriptomic analysis identified P53 as a central hub gene, supporting premature senescence activation. Increased senescence-associated β-galactosidase activity, elevated expression of the cyclin-dependent kinase inhibitor P16, and reduced Ki67 levels further supported a senescent phenotype. Notably, senescence-associated proteins were absent from the secretome following 4-PBA treatment, which also modulated cytoskeletal and adhesion-related protein expression. Moreover, 4-PBA significantly reduced senescence marker expression and decreased the number of senescent cells. Overall, these findings indicate that cellular senescence underlies osteoblast dysfunction in OI and uncover a novel contribution of 4-PBA to osteoblast homeostasis.

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Cite This Study

Besio et al. (2026) studied this question.

synapsesocial.com/papers/69d5f0d774eaea4b11a7a516https://doi.org/10.1111/jcmm.71120
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Pleotropic effects of a recessive C<i>OL1α2</i>mutation occurring in a mouse model of severe osteogenesis imperfecta2024
  2. 2The Role of Osteoblasts in Phenotypic Variability of Dominant Osteogenesis Imperfecta: Evidence from Patients and Murine Models2025
  3. 3Murine model of high bone mass osteogenesis imperfecta exhibits bone matrix hyper-mineralization, misaligned mineral crystals, and altered osteoblast differentiation2026
  4. 4Proteomic alterations in patient bone-derived stromal cells and their secretomes in osteogenesis imperfecta2026
  5. 5A New Perspective on Osteogenesis Imperfecta: From Cellular Mechanisms to the Systemic Impact of Collagen Dysfunction2026