Periodontal tissue engineering using an apatite/collagen scaffold obtained by a plasma‐ and precursor‐assisted biomimetic process

Author(s):  
Yukimi Kanemoto ◽  
Hirofumi Miyaji ◽  
Erika Nishida ◽  
Saori Miyata ◽  
Kayoko Mayumi ◽  
...  
Materials ◽  
2021 ◽  
Vol 14 (5) ◽  
pp. 1269
Author(s):  
Gareth Sheppard ◽  
Karl Tassenberg ◽  
Bogdan Nenchev ◽  
Joel Strickland ◽  
Ramy Mesalam ◽  
...  

In tissue engineering, scaffolds are a key component that possess a highly elaborate pore structure. Careful characterisation of such porous structures enables the prediction of a variety of large-scale biological responses. In this work, a rapid, efficient, and accurate methodology for 2D bulk porous structure analysis is proposed. The algorithm, “GAKTpore”, creates a morphology map allowing quantification and visualisation of spatial feature variation. The software achieves 99.6% and 99.1% mean accuracy for pore diameter and shape factor identification, respectively. There are two main algorithm novelties within this work: (1) feature-dependant homogeneity map; (2) a new waviness function providing insights into the convexity/concavity of pores, important for understanding the influence on cell adhesion and proliferation. The algorithm is applied to foam structures, providing a full characterisation of a 10 mm diameter SEM micrograph (14,784 × 14,915 px) with 190,249 pores in ~9 min and has elucidated new insights into collagen scaffold formation by relating microstructural formation to the bulk formation environment. This novel porosity characterisation algorithm demonstrates its versatility, where accuracy, repeatability, and time are paramount. Thus, GAKTpore offers enormous potential to optimise and enhance scaffolds within tissue engineering.


2020 ◽  
Vol 55 (3) ◽  
pp. 331-341 ◽  
Author(s):  
Reuben J. Staples ◽  
Saso Ivanovski ◽  
Cedryck Vaquette

2016 ◽  
Vol 22 (2) ◽  
pp. 165-172 ◽  
Author(s):  
Jie Zhang ◽  
Aran M.G. Sisley ◽  
Alexander J. Anderson ◽  
Andrew J. Taberner ◽  
Charles N.J. McGhee ◽  
...  

Author(s):  
Mehdi Razavi ◽  
Erfan Salahinejad ◽  
Mina Fahmy ◽  
Aatif Nowman ◽  
Hossein Jazayeri ◽  
...  

2019 ◽  
Vol 20 (18) ◽  
pp. 4364 ◽  
Author(s):  
Chan Ho Park

Currently, various tissue engineering strategies have been developed for multiple tissue regeneration and integrative structure formations as well as single tissue formation in musculoskeletal complexes. In particular, the regeneration of periodontal tissues or tooth-supportive structures is still challenging to spatiotemporally compartmentalize PCL (poly-ε-caprolactone)-cementum constructs with micron-scaled interfaces, integrative tissue (or cementum) formations with optimal dimensions along the tooth-root surfaces, and specific orientations of engineered periodontal ligaments (PDLs). Here, we discuss current advanced approaches to spatiotemporally control PDL orientations with specific angulations and to regenerate cementum layers on the tooth-root surfaces with Sharpey’s fiber anchorages for state-of-the-art periodontal tissue engineering.


Author(s):  
Rania M. Moussa ◽  
Hala H. Yassin ◽  
Manal M. Saad ◽  
Naglaa B. Nagy ◽  
Mona K. Marei

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