scholarly journals Secondary ossification center induces and protects growth plate structure

2019 ◽  
Author(s):  
Meng Xie ◽  
Pavel Gol’din ◽  
Anna Nele Herdina ◽  
Jordi Estefa ◽  
Ekaterina V Medvedeva ◽  
...  

AbstractGrowth plate and articular cartilage constitute a single anatomical entity early in development, but later separate into two distinct structures by the secondary ossification center (SOC). The reason for such separation remains unknown. We found that evolutionarily SOC appears in animals conquering the land - amniotes. Analysis of ossification pattern in mammals with specialized extremities (whales, bats, jerboa) revealed that SOC development correlates with the extent of mechanical loads. Mathematical modelling revealed that SOC reduces mechanical stress within the growth plate. Functional experiments revealed high vulnerability of hypertrophic chondrocytes to mechanical stress and showed that SOC protects these cells from apoptosis caused by extensive loading. Atomic force microscopy showed that hypertrophic chondrocytes are the least mechanically stiff cells within the growth plate. Altogether, these findings suggest that SOC has evolved to protect the hypertrophic chondrocytes from the high mechanical stress encountered in the terrestrial environment.

eLife ◽  
2020 ◽  
Vol 9 ◽  
Author(s):  
Meng Xie ◽  
Pavel Gol'din ◽  
Anna Nele Herdina ◽  
Jordi Estefa ◽  
Ekaterina V Medvedeva ◽  
...  

Growth plate and articular cartilage constitute a single anatomical entity early in development but later separate into two distinct structures by the secondary ossification center (SOC). The reason for such separation remains unknown. We found that evolutionarily SOC appears in animals conquering the land - amniotes. Analysis of the ossification pattern in mammals with specialized extremities (whales, bats, jerboa) revealed that SOC development correlates with the extent of mechanical loads. Mathematical modeling revealed that SOC reduces mechanical stress within the growth plate. Functional experiments revealed the high vulnerability of hypertrophic chondrocytes to mechanical stress and showed that SOC protects these cells from apoptosis caused by extensive loading. Atomic force microscopy showed that hypertrophic chondrocytes are the least mechanically stiff cells within the growth plate. Altogether, these findings suggest that SOC has evolved to protect the hypertrophic chondrocytes from the high mechanical stress encountered in the terrestrial environment.


Bone Reports ◽  
2020 ◽  
Vol 13 ◽  
pp. 100663
Author(s):  
Meng Xie ◽  
Lei Li ◽  
Phillip Newton ◽  
Lauren Shumate ◽  
Shigeki Nishimori ◽  
...  

eLife ◽  
2014 ◽  
Vol 3 ◽  
Author(s):  
Arun Sampathkumar ◽  
Pawel Krupinski ◽  
Raymond Wightman ◽  
Pascale Milani ◽  
Alexandre Berquand ◽  
...  

Although it is a central question in biology, how cell shape controls intracellular dynamics largely remains an open question. Here, we show that the shape of Arabidopsis pavement cells creates a stress pattern that controls microtubule orientation, which then guides cell wall reinforcement. Live-imaging, combined with modeling of cell mechanics, shows that microtubules align along the maximal tensile stress direction within the cells, and atomic force microscopy demonstrates that this leads to reinforcement of the cell wall parallel to the microtubules. This feedback loop is regulated: cell-shape derived stresses could be overridden by imposed tissue level stresses, showing how competition between subcellular and supracellular cues control microtubule behavior. Furthermore, at the microtubule level, we identified an amplification mechanism in which mechanical stress promotes the microtubule response to stress by increasing severing activity. These multiscale feedbacks likely contribute to the robustness of microtubule behavior in plant epidermis.


Bone ◽  
2006 ◽  
Vol 39 (3) ◽  
pp. 530-541 ◽  
Author(s):  
Mathias Hauge Bünger ◽  
Morten Foss ◽  
Kurt Erlacher ◽  
Mads Bruun Hovgaard ◽  
Jacques Chevallier ◽  
...  

2020 ◽  
Author(s):  
Meng Xie ◽  
Pavel Gol'din ◽  
Anna Nele Herdina ◽  
Jordi Estefa ◽  
Ekaterina V Medvedeva ◽  
...  

Author(s):  
Meng Xie ◽  
Anna Nele Herdina ◽  
Jordi Estefa ◽  
Ekaterina V Medvedeva ◽  
Lei Li ◽  
...  

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