Literature DB >> 33227483

Inclusion of a 3D-printed Hyperelastic Bone mesh improves mechanical and osteogenic performance of a mineralized collagen scaffold.

Marley J Dewey1, Andrey V Nosatov1, Kiran Subedi2, Ramille Shah3, Adam Jakus3, Brendan A C Harley4.   

Abstract

Regenerative repair of craniomaxillofacial bone injuries is challenging due to both the large size and irregular shape of many defects. Mineralized collagen scaffolds have previously been shown to be a promising biomaterial implant to accelerate craniofacial bone regeneration in vivo. Here we describe inclusion of a 3D-printed polymer or ceramic-based mesh into a mineralized collagen scaffold to improve mechanical and biological activity. Mineralized collagen scaffolds were reinforced with 3D-printed Fluffy-PLG (ultraporous polylactide-co-glycolide co-polymer) or Hyperelastic Bone (90wt% calcium phosphate in PLG) meshes. We show degradation byproducts and acidic release from the printed structures have limited negative impact on the viability of mesenchymal stem cells. Further, inclusion of a mesh formed from Hyperelastic Bone generates a reinforced composite with significantly improved mechanical performance (elastic modulus, push-out strength). Composites formed from the mineralized collagen scaffold and either Hyperelastic Bone or Fluffy-PLG reinforcement both supported human bone-marrow derived mesenchymal stem cell osteogenesis and new bone formation. This was observed by increased mineral formation in Fluffy-PLG composites and increased cell viability and upregulation of RUNX2, Osterix, and COL1A2 genes in both composites. Strikingly, composites reinforced with Hyperelastic Bone mesh elicited significantly increased secretion of osteoprotegerin, a soluble glycoprotein and endogenous inhibitor of osteoclast activity. These results suggest that architectured meshes can be integrated into collagen scaffolds to boost mechanical performance and actively instruct cell processes that aid osteogenicity; specifically, secretion of a factor crucial to inhibiting osteoclast-mediated bone resorption. Future work will focus on further adapting the polymer mesh architecture to confer improved shape-fitting capacity as well as to investigate the role of polymer reinforcement on MSC-osteoclast interactions as a means to increase regenerative potential.
Copyright © 2020. Published by Elsevier Ltd.

Entities:  

Keywords:  3D-paints; 3D-printing; Bone repair; Craniomaxillofacial; Mineralized collagen; Shape-fitting

Mesh:

Substances:

Year:  2020        PMID: 33227483      PMCID: PMC7856202          DOI: 10.1016/j.actbio.2020.11.028

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  58 in total

1.  Fixation effects on membranous and endochondral onlay bone graft revascularization and bone deposition.

Authors:  J H Phillips; B A Rahn
Journal:  Plast Reconstr Surg       Date:  1990-06       Impact factor: 4.730

2.  Nanoparticulate mineralized collagen glycosaminoglycan materials directly and indirectly inhibit osteoclastogenesis and osteoclast activation.

Authors:  Xiaoyan Ren; Qi Zhou; David Foulad; Marley J Dewey; David Bischoff; Timothy A Miller; Dean T Yamaguchi; Brendan A C Harley; Justine C Lee
Journal:  J Tissue Eng Regen Med       Date:  2019-04-15       Impact factor: 3.963

3.  3D-printing porosity: A new approach to creating elevated porosity materials and structures.

Authors:  A E Jakus; N R Geisendorfer; P L Lewis; R N Shah
Journal:  Acta Biomater       Date:  2018-03-27       Impact factor: 8.947

4.  Three-Dimensionally Printed Hyperelastic Bone Scaffolds Accelerate Bone Regeneration in Critical-Size Calvarial Bone Defects.

Authors:  Yu-Hui Huang; Adam E Jakus; Sumanas W Jordan; Zari Dumanian; Kelly Parker; Linping Zhao; Pravin K Patel; Ramille N Shah
Journal:  Plast Reconstr Surg       Date:  2019-05       Impact factor: 4.730

5.  A Mineralized Collagen-Polycaprolactone Composite Promotes Healing of a Porcine Mandibular Defect.

Authors:  Daniel W Weisgerber; Derek J Milner; Heather Lopez-Lake; Marcello Rubessa; Sammi Lotti; Kathryn Polkoff; Rebecca A Hortensius; Colleen L Flanagan; Scott J Hollister; Matthew B Wheeler; Brendan A C Harley
Journal:  Tissue Eng Part A       Date:  2018-02-01       Impact factor: 3.845

6.  Comparison of push-in versus pull-out tests on bone-implant interfaces of rabbit tibia dental implant healing model.

Authors:  Wook-Jin Seong; Shahrzad Grami; Soo Cheol Jeong; Heather J Conrad; James S Hodges
Journal:  Clin Implant Dent Relat Res       Date:  2011-12-15       Impact factor: 3.932

7.  Nanoparticulate mineralized collagen scaffolds induce in vivo bone regeneration independent of progenitor cell loading or exogenous growth factor stimulation.

Authors:  Xiaoyan Ren; Victor Tu; David Bischoff; Daniel W Weisgerber; Michael S Lewis; Dean T Yamaguchi; Timothy A Miller; Brendan A C Harley; Justine C Lee
Journal:  Biomaterials       Date:  2016-02-18       Impact factor: 12.479

8.  Development of collagen-hydroxyapatite scaffolds incorporating PLGA and alginate microparticles for the controlled delivery of rhBMP-2 for bone tissue engineering.

Authors:  Elaine Quinlan; Adolfo López-Noriega; Emmet Thompson; Helena M Kelly; Sally Ann Cryan; Fergal J O'Brien
Journal:  J Control Release       Date:  2014-12-04       Impact factor: 9.776

9.  Effect of cranioplasty on cerebrospinal fluid hydrodynamics in patients with the syndrome of the trephined.

Authors:  H Fodstad; J A Love; J Ekstedt; H Fridén; B Liliequist
Journal:  Acta Neurochir (Wien)       Date:  1984       Impact factor: 2.216

10.  3D printed hyperelastic "bone" scaffolds and regional gene therapy: A novel approach to bone healing.

Authors:  Ram Alluri; Adam Jakus; Sofia Bougioukli; William Pannell; Osamu Sugiyama; Amy Tang; Ramille Shah; Jay R Lieberman
Journal:  J Biomed Mater Res A       Date:  2018-01-11       Impact factor: 4.396

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  6 in total

1.  Repair of critical-size porcine craniofacial bone defects using a collagen-polycaprolactone composite biomaterial.

Authors:  Marley J Dewey; Derek J Milner; Daniel Weisgerber; Colleen L Flanagan; Marcello Rubessa; Sammi Lotti; Kathryn M Polkoff; Sarah Crotts; Scott J Hollister; Matthew B Wheeler; Brendan A C Harley
Journal:  Biofabrication       Date:  2021-11-01       Impact factor: 9.954

2.  Biomaterial design strategies to address obstacles in craniomaxillofacial bone repair.

Authors:  Marley J Dewey; Brendan A C Harley
Journal:  RSC Adv       Date:  2021-05-17       Impact factor: 4.036

Review 3.  A Review of Recent Advances in Natural Polymer-Based Scaffolds for Musculoskeletal Tissue Engineering.

Authors:  Jingzhi Fan; Keyvan Abedi-Dorcheh; Asma Sadat Vaziri; Fereshteh Kazemi-Aghdam; Saeed Rafieyan; Masoume Sohrabinejad; Mina Ghorbani; Fatemeh Rastegar Adib; Zahra Ghasemi; Kristaps Klavins; Vahid Jahed
Journal:  Polymers (Basel)       Date:  2022-05-20       Impact factor: 4.967

Review 4.  Mimicking the Hierarchical Organization of Natural Collagen: Toward the Development of Ideal Scaffolding Material for Tissue Regeneration.

Authors:  Luca Salvatore; Nunzia Gallo; Maria Lucia Natali; Alberta Terzi; Alessandro Sannino; Marta Madaghiele
Journal:  Front Bioeng Biotechnol       Date:  2021-04-27

5.  Sequential gastrodin release PU/n-HA composite scaffolds reprogram macrophages for improved osteogenesis and angiogenesis.

Authors:  Limei Li; Qing Li; Li Gui; Yi Deng; Lu Wang; Jianlin Jiao; Yingrui Hu; Xiaoqian Lan; Jianhong Hou; Yao Li; Di Lu
Journal:  Bioact Mater       Date:  2022-04-01

6.  3D-Printed, Dual Crosslinked and Sterile Aerogel Scaffolds for Bone Tissue Engineering.

Authors:  Ana Iglesias-Mejuto; Carlos A García-González
Journal:  Polymers (Basel)       Date:  2022-03-17       Impact factor: 4.329

  6 in total

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