ArticleInternational journal of molecular sciences2021
3D Environment Is Required In Vitro to Demonstrate Altered Bone Metabolism Characteristic for Type 2 Diabetics.
Article in International journal of molecular sciences, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Free Fatty acid-induced disruption of hepatic vitamin D metabolism impairs bone homeostasis in an in vitro 3D human liver-bone model.Archives of toxicology · 2026Article
- Dynamic modelling of liver-bone axis: A microphysiological approach to hepatic osteodystrophy.Bioactive materials · 2026Article
- Article
- In silico & in vitro approaches suggest osteoclastogenesis induction underlying fractures in Entrectinib-treated children.Archives of toxicology · 2025Article
- In Vitro Modeling of Diurnal Changes in Bone Metabolism.International journal of molecular sciences · 2025Article
- Establishment of a human 3D in vitro liver-bone model as a potential system for drug toxicity screening.Archives of toxicology · 2025Article
- Aggregation of human osteoblasts unlocks self-reliant differentiation and constitutes a microenvironment for 3D-co-cultivation with other bone marrow cells.Scientific reports · 2024Article
- Maqui Berry and Ginseng Extracts Reduce Cigarette Smoke-Induced Cell Injury in a 3D Bone Co-Culture Model.Antioxidants (Basel, Switzerland) · 2022Article
- Smoking Impairs Hematoma Formation and Dysregulates Angiogenesis as the First Steps of Fracture Healing.Bioengineering (Basel, Switzerland) · 2022Article
- Altered Secretome of Diabetic Monocytes Could Negatively Influence Fracture Healing-An In Vitro Study.International journal of molecular sciences · 2021Article
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Authors and funding
9 authors.
Funding
Abstract
A large British study, with almost 3000 patients, identified diabetes as main risk factor for delayed and nonunion fracture healing, the treatment of which causes large costs for the health system. In the past years, much progress has been made to treat common complications in diabetics. However, there is still a lack of advanced strategies to treat diabetic bone diseases. To develop such therapeutic strategies, mechanisms leading to massive bone alterations in diabetics have to be well understood. We herein describe an in vitro model displaying bone metabolism frequently observed in diabetics. The model is based on osteoblastic SaOS-2 cells, which in direct coculture, stimulate THP-1 cells to form osteoclasts. While in conventional 2D cocultures formation of mineralized matrix is decreased under pre-/diabetic conditions, formation of mineralized matrix is increased in 3D cocultures. Furthermore, we demonstrate a matrix stability of the 3D carrier that is decreased under pre-/diabetic conditions, resembling the in vivo situation in type 2 diabetics. In summary, our results show that a 3D environment is required in this in vitro model to mimic alterations in bone metabolism characteristic for pre-/diabetes. The ability to measure both osteoblast and osteoclast function, and their effect on mineralization and stability of the 3D carrier offers the possibility to use this model also for other purposes, e.g., drug screenings.
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