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Bone fracture healing with magnesium: a computational model of immune modulation and regenerative dynamics in union and non-union cases

dc.contributor.authorOnder, Sakip
dc.contributor.authorNoroozbabaee, Leyla
dc.contributor.authorMarradi, Matilde
dc.contributor.authorCarlier, Aurelie
dc.date.accessioned2026-06-27T15:32:19Z
dc.date.issued2026
dc.description.abstractMagnesium (Mg2+)-based biomaterials have gained attention due to their biodegradability and ability to influence both the inflammatory response and osteogenic activity during bone regeneration. However, how these effects depend on the concentration and delivery profile of Mg2+ and how they vary across successful (union) and impaired (non-union) conditions, have not been systematically characterized. To address this, we built upon an established model in the literature and incorporated Mg2+-responsive mechanisms into a system of nonlinear differential equations representing the dynamics of macrophage polarization, cytokine signaling, mesenchymal stem cell behavior, and bone tissue formation. Fracture healing was simulated across a range of Mg2+ concentrations (0-20 mM) and delivery profiles (constant, burst, delayed) under both union and non-union conditions. The results revealed that healing is supported within a specific concentration range (1-5 mM), where Mg2+ promotes polarization toward regenerative, anti-inflammatory M2 macrophage polarization, enhances progenitor cell activity, and accelerates tissue regeneration. Higher concentrations (>= 10 mM) led to unfavorable immune responses and impaired cell function, though delayed-release profiles mitigated these effects while preserving the regenerative potential. Importantly, under non-union conditions, appropriate Mg2+ dosing and delayed delivery restored healing dynamics and initiated bone formation, demonstrating therapeutic promise in impaired bone healing scenarios. The model predictions aligned well with reported in vivo data, supporting the validity of the simulated outcomes. In summary, the in silico Mg2+ model offers a mechanistic framework to understand how local Mg2+ concentration and delivery influence the coordination between immune modulation and tissue repair during bone healing.en
dc.description.sponsorshipGravitation Program Materials Driven Regeneration - Netherlands Organization for Scientific Research [024.003.013]
dc.description.sponsorshipScientific and Technological Research Council of Turkey (TUBITAK) under the 2219 Program [1059B192402615]
dc.description.urihttps://doi.org/10.1016/j.jtbi.2026.112420
dc.identifier.doi10.1016/j.jtbi.2026.112420
dc.identifier.eissn1095-8541
dc.identifier.issn0022-5193
dc.identifier.pubmed41748015
dc.identifier.urihttps://hdl.handle.net/20.500.14981/71685
dc.identifier.volume624
dc.identifier.wos001709608800001
dc.language.isoeng
dc.publisherACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
dc.relation.ispartofJOURNAL OF THEORETICAL BIOLOGY
dc.rightsopenAccess
dc.subjectMagnesium ion
dc.subjectImmune modulation
dc.subjectIn silico bone repair
dc.subjectControlled release
dc.subjectSTEM-CELLS IMPLICATIONS
dc.subjectDIFFERENTIATION
dc.subjectINFLAMMATION
dc.subjectOSTEOGENESIS
dc.subjectSCAFFOLDS
dc.subjectLife Sciences & Biomedicine - Other Topics
dc.subjectMathematical & Computational Biology
dc.titleBone fracture healing with magnesium: a computational model of immune modulation and regenerative dynamics in union and non-union cases
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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