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Vancikova, K.

Publications and source records attributed to Vancikova, K..

2 recordsLinked to original sources

Dynamics of postnatal bone development and epiphyseal synostosis in the caprine autopod

Bones develop to structurally balance strength and mobility. Bone developmental dynamics are influenced by whether an animal is ambulatory at birth (i.e., precocial). Precocial species, such as goats, develop advanced skeletal maturity in utero, making them useful models for studying the dynamics of bone formation under mechanical load. Here, we used microcomputed tomography and histology to characterize postnatal bone development in the autopod of the caprine lower forelimb. The caprine autopod features two toes, fused by metacarpal synostosis (i.e., bone fusion) prior to birth. Our analysis focused on the phalanges 1 (P1) and metacarpals of the goat autopod from birth through adulthood (3.5 years). P1 cortical bone densified rapidly after birth (half-life using one-phase exponential decay model ({tau}1/2 = 1.6 {+/-} 0.4 months), but the P1 cortical thickness increased continually through adulthood ({tau}1/2 = 7.2 {+/-} 2.7 mo). Upon normalization by body mass, the normalized polar moment of inertia of P1 cortical bone was constant over time, suggestive of structural load adaptation. P1 trabecular bone increased in trabecular number ({tau}1/2 = 6.7 {+/-} 2.8 mo) and thickness ({tau}1/2 = 6.6 {+/-} 2.0 mo) until skeletal maturity, while metacarpal trabeculae grew primarily through trabecular thickening ({tau}1/2 = 7.9 {+/-} 2.2 mo). Unlike prenatal fusion of the metacarpal diaphysis, synostosis of the epiphyses occurred postnatally, prior to growth plate closure, through a unique fibrocartilaginous endochondral ossification. These findings implicate ambulatory loading in postnatal bone development of precocial goats and identify a novel postnatal synostosis event in the caprine metacarpal epiphysis.

developmental biology↗

Incorporating strontium enriched amorphous calcium phosphate granules in collagen/collagen-magnesium-hydroxyapatite osteochondral scaffold improves subchondral bone repair

To date, osteochondral defect repair with a collagen/collagen-magnesium-hydroxyapatite (Col/Col-Mg-HAp) scaffold has demonstrated good clinical results. However, subchondral bone repair has been suboptimal, potentially leading to damage to the regenerated overlying neocartilage. This study aimed at improving the bone repair potential of this scaffold by incorporating strontium (Sr) ion enriched amorphous calcium phosphate (Sr-ACP) granules (100-150 {micro}m). Sr concentration of Sr-ACP was determined with ICP-MS at 2.49 {+/-} 0.04 wt.%. Then 30 wt.% ACP or Sr-ACP granules were integrated into the scaffold prototypes. The ACP or Sr-ACP granules were well distributed and embedded in the collagenic matrix demonstrated by micro-CT and scanning electron microscopy/energy dispersive x-ray spectrometry. Good cytocompatibility of ACP/Sr-ACP granules and ACP/Sr-ACP enriched scaffolds was confirmed in in vitro cytotoxicity assays. An overall promising early tissue response and good biocompatibility of both ACP and Sr-ACP enriched scaffolds were demonstrated in a subcutaneous mouse model. In a goat osteochondral defect model, significantly more bone observed at 6 months with the treatment of Sr-ACP enriched scaffolds compared to scaffold only in particular in the weight-bearing femoral condyle subchondral bone defect. Overall, the incorporation of osteogenic Sr-ACP granules in Col/Col-Mg-HAp scaffolds showed to be a feasible and promising strategy to improve subchondral bone repair.

bioengineering↗