Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy

OSTEOTRANS MX® (Takiron Co., Ltd., Osaka, Japan) is a bioactive resorbable maxillofacial osteosynthetic material composed of an unsintered hydroxyapatite/poly-l-lactide composite, and its effective osteoconductive capacity has been previously documented. However, the mechanical strength of this plat...

Full description

Bibliographic Details
Main Authors: Shintaro Sukegawa, Takahiro Kanno, Yoshiki Manabe, Kenichi Matsumoto, Yuka Sukegawa-Takahashi, Masanori Masui, Yoshihiko Furuki
Format: Article
Language:English
Published: MDPI AG 2017-07-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/10/7/764
id doaj-1eadadea9df444a5b72f2c1d5cf09fee
record_format Article
spelling doaj-1eadadea9df444a5b72f2c1d5cf09fee2020-11-24T23:23:52ZengMDPI AGMaterials1996-19442017-07-0110776410.3390/ma10070764ma10070764Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus OsteotomyShintaro Sukegawa0Takahiro Kanno1Yoshiki Manabe2Kenichi Matsumoto3Yuka Sukegawa-Takahashi4Masanori Masui5Yoshihiko Furuki6Division of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanDivision of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanAdmission Center, Kagawa University, Takamatsu, Kagawa 760-0016, JapanDivision of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanDivision of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanDivision of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanDivision of Oral and Maxillofacial Surgery, Kagawa Prefectural Central Hospital, 1-2-1, Asahi-machi, Takamatsu, Kagawa 760-8557, JapanOSTEOTRANS MX® (Takiron Co., Ltd., Osaka, Japan) is a bioactive resorbable maxillofacial osteosynthetic material composed of an unsintered hydroxyapatite/poly-l-lactide composite, and its effective osteoconductive capacity has been previously documented. However, the mechanical strength of this plate system is unclear. Thus, the aim of this in vitro study was to assess its tensile and shear strength and evaluate the biomechanical intensity of different osteosynthesis plate designs after sagittal split ramus osteotomy by simulating masticatory forces in a clinical setting. For tensile and shear strength analyses, three mechanical strength measurement samples were prepared by fixing unsintered hydroxyapatite/poly-l-lactide composed plates to polycarbonate skeletal models. Regarding biomechanical loading evaluation, 12 mandibular replicas were used and divided into four groups for sagittal split ramus osteotomy fixation. Each sample was secured in a jig and subjected to vertical load on the first molar teeth. Regarding shear strength, the novel-shaped unsintered hydroxyapatite/poly-l-lactide plate had significantly high intensity. Upon biomechanical loading evaluation, this plate system also displayed significantly high stability in addition to bioactivity, with no observed plate fracture. Thus, we have clearly demonstrated the efficacy of this plate system using an in vitro model of bilateral sagittal split ramus osteotomy of the mandible.https://www.mdpi.com/1996-1944/10/7/764sagittal split ramus osteotomyunsintered hydroxyapatite/poly-">l-lactide composite platebioactive resorbable platebiomechanical loading evaluationtensile and shear strength evaluation
collection DOAJ
language English
format Article
sources DOAJ
author Shintaro Sukegawa
Takahiro Kanno
Yoshiki Manabe
Kenichi Matsumoto
Yuka Sukegawa-Takahashi
Masanori Masui
Yoshihiko Furuki
spellingShingle Shintaro Sukegawa
Takahiro Kanno
Yoshiki Manabe
Kenichi Matsumoto
Yuka Sukegawa-Takahashi
Masanori Masui
Yoshihiko Furuki
Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
Materials
sagittal split ramus osteotomy
unsintered hydroxyapatite/poly-
">l-lactide composite plate
bioactive resorbable plate
biomechanical loading evaluation
tensile and shear strength evaluation
author_facet Shintaro Sukegawa
Takahiro Kanno
Yoshiki Manabe
Kenichi Matsumoto
Yuka Sukegawa-Takahashi
Masanori Masui
Yoshihiko Furuki
author_sort Shintaro Sukegawa
title Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
title_short Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
title_full Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
title_fullStr Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
title_full_unstemmed Biomechanical Loading Evaluation of Unsintered Hydroxyapatite/poly-l-lactide Plate System in Bilateral Sagittal Split Ramus Osteotomy
title_sort biomechanical loading evaluation of unsintered hydroxyapatite/poly-l-lactide plate system in bilateral sagittal split ramus osteotomy
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2017-07-01
description OSTEOTRANS MX® (Takiron Co., Ltd., Osaka, Japan) is a bioactive resorbable maxillofacial osteosynthetic material composed of an unsintered hydroxyapatite/poly-l-lactide composite, and its effective osteoconductive capacity has been previously documented. However, the mechanical strength of this plate system is unclear. Thus, the aim of this in vitro study was to assess its tensile and shear strength and evaluate the biomechanical intensity of different osteosynthesis plate designs after sagittal split ramus osteotomy by simulating masticatory forces in a clinical setting. For tensile and shear strength analyses, three mechanical strength measurement samples were prepared by fixing unsintered hydroxyapatite/poly-l-lactide composed plates to polycarbonate skeletal models. Regarding biomechanical loading evaluation, 12 mandibular replicas were used and divided into four groups for sagittal split ramus osteotomy fixation. Each sample was secured in a jig and subjected to vertical load on the first molar teeth. Regarding shear strength, the novel-shaped unsintered hydroxyapatite/poly-l-lactide plate had significantly high intensity. Upon biomechanical loading evaluation, this plate system also displayed significantly high stability in addition to bioactivity, with no observed plate fracture. Thus, we have clearly demonstrated the efficacy of this plate system using an in vitro model of bilateral sagittal split ramus osteotomy of the mandible.
topic sagittal split ramus osteotomy
unsintered hydroxyapatite/poly-
">l-lactide composite plate
bioactive resorbable plate
biomechanical loading evaluation
tensile and shear strength evaluation
url https://www.mdpi.com/1996-1944/10/7/764
work_keys_str_mv AT shintarosukegawa biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT takahirokanno biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT yoshikimanabe biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT kenichimatsumoto biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT yukasukegawatakahashi biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT masanorimasui biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
AT yoshihikofuruki biomechanicalloadingevaluationofunsinteredhydroxyapatitepolyllactideplatesysteminbilateralsagittalsplitramusosteotomy
_version_ 1725563186933923840