ArticleBioengineering (Basel, Switzerland)2022
Hierarchical Structure and Properties of the Bone at Nano Level.
Article in Bioengineering (Basel, Switzerland), 2022. 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.
- Cortical bone material / compositional changes in children with mild osteogenesis imperfecta.Bone reports · 2026Article
- Bioinspired and living multiscale composites for regenerative medicine in the treatment of surgical site infections.Journal of nanobiotechnology · 2026Review
- Bone Tissue Engineering: Scaffold Design Principles, Biomaterial Advances, and Strategies for Functional Regeneration and Clinical Translation.Bioengineering (Basel, Switzerland) · 2026Review
- Multiscale Interface Engineering for Orthopedic and Dental Implants: A Review.Journal of functional biomaterials · 2026Review
- Capturing the Multiscale Nature of Bone Behavior: Classical, Data-Driven and Hybrid Techniques.Annals of biomedical engineering · 2026Review
- Analysis of Biomechanical Characteristics of Bone Tissues Using a Bayesian Neural Network: A Narrative Review.Journal of functional biomaterials · 2025Review
- Bone grafts and synthetic substitutes in dental applications: a comprehensive review of molecular mechanisms, materials evolution, and clinical perspective.Frontiers in bioengineering and biotechnology · 2025Review
- Bridging the Gap in Understanding Bone Metastasis: A Multifaceted Perspective.International journal of molecular sciences · 2024Review
- Harnessing the Potential of PLGA Nanoparticles for Enhanced Bone Regeneration.Pharmaceutics · 2024Review
- Biomaterials-based engineering of the bone microenvironment for osteoporosis therapy.Journal of tissue engineeringReview
Corrections and comments
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Authors and funding
2 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Bone is a highly hierarchical complex structure that consists of organic and mineral components represented by collagen molecules (CM) and hydroxyapatite crystals (HAC), respectively. The nanostructure of bone can significantly affect its mechanical properties. There is a lack of understanding how collagen fibrils (CF) in different orientations may affect the mechanical properties of the bone. The objective of this study is to investigate the effect of interaction, orientation, and hydration on atomic models of the bone composed of collagen helix (CH) and HAC, using molecular dynamics simulations and therefrom bone-related disease origins. The results demonstrate that the mechanical properties of the bone are affected significantly by the orientation of the CF attributed to contact areas at 0° and 90° models. The molecular dynamics simulation illustrated that there is significant difference (p < 0.005) in the ultimate tensile strength and toughness with respect to the orientation of the hydrated and un-hydrated CF. Additionally, the results indicated that having the force in a longitudinal direction (0°) provides more strength compared with the CF in the perpendicular direction (90°). Furthermore, the results show that substituting glycine (GLY) with any other amino acid affects the mechanical properties and strength of the CH, collagen−hydroxyapatite interface, and eventually affects the HAC. Generally, hydration dramatically influences bone tissue elastic properties, and any change in the orientation or any abnormality in the atomic structure of either the CM or the HAC would be the main reason of the fragility in the bone, affecting bone pathology.
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