Literature DB >> 30321863

Guided tissue engineering for healing of cancellous and cortical bone using a combination of biomaterial based scaffolding and local bone active molecule delivery.

Deepak Bushan Raina1, Irfan Qayoom2, David Larsson3, Ming Hao Zheng4, Ashok Kumar2, Hanna Isaksson5, Lars Lidgren6, Magnus Tägil6.   

Abstract

A metaphyseal bone defect due to infection, tumor or fracture leads to loss of cancellous and cortical bone. An animal model separating the cancellous and cortical healing was used with a combination of a macroporous gelatin-calcium sulphate-hydroxyapatite (Gel-CaS-HA) biomaterial as a cancellous defect filler, and a thin collagen membrane (CM) guiding cortical bone regeneration. The membrane was immobilized with bone morphogenic protein-2 (rhBMP-2) to enhance the osteoinductive properties. The Gel-CaS-HA cancellous defect filler contained both rhBMP-2 and a bisphosphonate, (zoledronate = ZA) to prevent premature callus resorption induced by the pro-osteoclast effect of rhBMP-2 alone. In the first part of the study, the CM delivering both rhBMP-2 and ZA was tested in a muscle pouch model in rats and the co-delivery of rhBMP-2 and ZA via the CM resulted in higher amounts of bone compared to rhBMP-2 alone. Secondly, an established tibia defect model in rats was used to study cortical and cancellous bone regeneration. The defect was left empty, filled with Gel-CaS-HA alone, Gel-CaS-HA immobilized with ZA or Gel-CaS-HA immobilized with rhBMP-2+ZA. Functionalization of the Gel-CaS-HA scaffold with bioactive molecules produced significantly more bone in the cancellous defect and its surroundings but cortical defect healing was delayed likely due to the protrusion of the Gel-CaS-HA into the cortical bone. To guide cortical regeneration, the cortical defect was sealed endosteally by a CM with or without rhBMP-2. Subsequently, the cancellous defect was filled with Gel-CaS-HA containing ZA and rhBMP-2+ZA. In the groups where the CM was doped with rhBMP-2, significantly higher number of cortices bridged. The approach to guide cancellous as well as cortical bone regeneration separately in a metaphyseal defect using two bioactive molecule immobilized biomaterials is promising and could improve the clinical care of patients with metaphyseal defects.
Copyright © 2018 The Authors. Published by Elsevier Ltd.. All rights reserved.

Entities:  

Keywords:  BMP-2; Collagen membrane; Cortical defect; Metaphyseal defect; Zoledronic acid

Mesh:

Substances:

Year:  2018        PMID: 30321863     DOI: 10.1016/j.biomaterials.2018.10.004

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  12 in total

Review 1.  Segmental long bone regeneration guided by degradable synthetic polymeric scaffolds.

Authors:  Xiaowen Xu; Jie Song
Journal:  Biomater Transl       Date:  2020-12-28

2.  Bone Tissue Engineering in Rat Calvarial Defects Using Induced Bone-like Tissue by rhBMPs from Immature Muscular Tissues In Vitro.

Authors:  Tatsuhide Hayashi; Masaki Asakura; Mayu Kawase; Masakazu Matsubara; Yasuaki Uematsu; Akimichi Mieki; Tatsushi Kawai
Journal:  Int J Mol Sci       Date:  2022-06-22       Impact factor: 6.208

3.  A facile one-stage treatment of critical bone defects using a calcium sulfate/hydroxyapatite biomaterial providing spatiotemporal delivery of bone morphogenic protein-2 and zoledronic acid.

Authors:  Deepak Bushan Raina; Lucas-Maximilian Matuszewski; Corina Vater; Julia Bolte; Hanna Isaksson; Lars Lidgren; Magnus Tägil; Stefan Zwingenberger
Journal:  Sci Adv       Date:  2020-11-27       Impact factor: 14.136

4.  Injectable hydrogel systems with multiple biophysical and biochemical cues for bone regeneration.

Authors:  Weinan Cheng; Zhaozhao Ding; Xin Zheng; Qiang Lu; Xiangdong Kong; Xiaozhong Zhou; Guozhong Lu; David L Kaplan
Journal:  Biomater Sci       Date:  2020-05-06       Impact factor: 6.843

5.  Combination of optimized tissue engineering bone implantation with heel-strike like mechanical loading to repair segmental bone defect in New Zealand rabbits.

Authors:  Cong Zhu; Jianbiao Lin; Huixiang Jiang; Jianting Gao; Mingming Gao; Benwen Wu; Weibin Lin; Guofeng Huang; Zhenqi Ding
Journal:  Cell Tissue Res       Date:  2021-05-08       Impact factor: 5.249

6.  Photobiomodulation Therapy Associated with Heterologous Fibrin Biopolymer and Bovine Bone Matrix Helps to Reconstruct Long Bones.

Authors:  Marcelie Priscila de Oliveira Rosso; Aline Tiemi Oyadomari; Karina Torres Pomini; Bruna Botteon Della Coletta; João Vitor Tadashi Cosin Shindo; Rui Seabra Ferreira Júnior; Benedito Barraviera; Claudia Vilalva Cassaro; Daniela Vieira Buchaim; Daniel de Bortoli Teixeira; Sandra Maria Barbalho; Murilo Priori Alcalde; Marco Antonio Hungaro Duarte; Jesus Carlos Andreo; Rogério Leone Buchaim
Journal:  Biomolecules       Date:  2020-03-02

7.  Single Application of Low-Dose, Hydroxyapatite-Bound BMP-2 or GDF-5 Induces Long-Term Bone Formation and Biomechanical Stabilization of a Bone Defect in a Senile Sheep Lumbar Osteopenia Model.

Authors:  Ines Hasenbein; André Sachse; Peter Hortschansky; Klaus D Schmuck; Victoria Horbert; Christoph Anders; Thomas Lehmann; René Huber; Alexander Maslaris; Frank Layher; Christina Braun; Andreas Roth; Frank Plöger; Raimund W Kinne
Journal:  Biomedicines       Date:  2022-02-21

8.  Orchestration of energy metabolism and osteogenesis by Mg2+ facilitates low-dose BMP-2-driven regeneration.

Authors:  Sihan Lin; Shi Yin; Junfeng Shi; Guangzheng Yang; Xutao Wen; Wenjie Zhang; Mingliang Zhou; Xinquan Jiang
Journal:  Bioact Mater       Date:  2022-03-24

Review 9.  Biodegradable materials for bone defect repair.

Authors:  Shuai Wei; Jian-Xiong Ma; Lai Xu; Xiao-Song Gu; Xin-Long Ma
Journal:  Mil Med Res       Date:  2020-11-10

10.  Long-Term Response to a Bioactive Biphasic Biomaterial in the Femoral Neck of Osteoporotic Rats.

Authors:  Deepak Bushan Raina; Aurimas Širka; Irfan Qayoom; Arun Kumar Teotia; Yang Liu; Sarunas Tarasevicius; Kathleen Elizabeth Tanner; Hanna Isaksson; Ashok Kumar; Magnus Tägil; Lars Lidgren
Journal:  Tissue Eng Part A       Date:  2020-10       Impact factor: 3.845

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