Publication:
Inter-site variability of the osteocyte lacunar network in the cortical bone underpins fracture susceptibility of the superolateral femoral neck

dc.contributor.authorRolvien, Tim (56671307900)
dc.contributor.authorvom Scheidt, Annika (56925348500)
dc.contributor.authorStockhausen, Kilian E. (57201975207)
dc.contributor.authorMilovanovic, Petar (25927301300)
dc.contributor.authorDjonic, Danijela (6504271198)
dc.contributor.authorHubert, Jan (36343717400)
dc.contributor.authorHawellek, Thelonius (36343773700)
dc.contributor.authorWacker, Alexander (57201981492)
dc.contributor.authorJebens, Volker (57201986123)
dc.contributor.authorPüschel, Klaus (35500896800)
dc.contributor.authorZimmermann, Elizabeth A. (58035972400)
dc.contributor.authorDjuric, Marija (12243542300)
dc.contributor.authorAmling, Michael (7005175450)
dc.contributor.authorBusse, Björn (26533959100)
dc.date.accessioned2025-07-02T12:13:26Z
dc.date.available2025-07-02T12:13:26Z
dc.date.issued2018
dc.description.abstractBackground: The osteocytic lacunar network is considered to be an integral player in the regulation of bone homeostasis, and reduction in osteocytes is associated with reduced bone strength. Here, we analyzed site-specific patterns in osteocyte characteristics and matrix composition in the cortical compartment of the femoral neck to reveal the structural basis of its fragility. Methods: Cross-sections of the human femoral neck - one of the most common fracture sites - were acquired from 12 female cadavers (age 34–86 years) and analyzed with backscattered scanning electron microscopy and high-resolution micro-computed tomography (μ-CT). The 2D/3D density and size of the osteocyte lacunae as well as bone mineral density distribution (BMDD) were measured in two regions subject to different biomechanical loads in vivo: the inferomedial (medial) region (habitually highly loaded in compression) and the superolateral (lateral) region (lower habitual loading intensity). Using quantitative polarized light microscopy, collagen fiber orientation was quantified in these two regions, accordingly. Results: In 2D measurements, the inferomedial region displayed lower mineralization heterogeneity, 19% higher osteocyte lacunar density (p = 0.005), but equal lacunar size compared to the superolateral region. 3D measurements confirmed a significantly higher osteocyte lacunar density in the inferomedial region (p = 0.015). Osteocyte lacunar density decreased in aged individuals, and inter-site differences were reduced. Site-specific osteocyte characteristics were not accompanied by changes in collagen fiber orientation. Conclusions: Since osteocyte characteristics may provide valuable insights into bone mechanical competence, the variations in osteocyte properties might reflect the increased fracture susceptibility of the superolateral neck. © 2018
dc.identifier.urihttps://doi.org/10.1016/j.bone.2018.04.018
dc.identifier.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85046687950&doi=10.1016%2fj.bone.2018.04.018&partnerID=40&md5=74f51801f29948e8e3e61a4b284c82a4
dc.identifier.urihttps://remedy.med.bg.ac.rs/handle/123456789/12883
dc.subjectBiomechanical load
dc.subjectCollagen orientation
dc.subjectFemoral neck
dc.subjectOsteocytes
dc.subjectμ-CT
dc.titleInter-site variability of the osteocyte lacunar network in the cortical bone underpins fracture susceptibility of the superolateral femoral neck
dspace.entity.typePublication

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