Collagen-PEG composite microspheres for bone regeneration

乙二醇 化学 骨愈合 体内 PLGA公司 生物医学工程 化学工程 生物物理学 材料科学 生物化学 外科 体外 有机化学 生物 医学 生物技术 工程类
作者
Sears Candice,Dang Sarah,Dodson Colin,Rice-Ficht Allison,Gregory Carl,Kaunas Roland
出处
期刊:Frontiers in Bioengineering and Biotechnology [Frontiers Media]
卷期号:4 被引量:1
标识
DOI:10.3389/conf.fbioe.2016.01.00780
摘要

Event Abstract Back to Event Collagen-PEG composite microspheres for bone regeneration Candice Sears1, Sarah Dang2, Colin Dodson1, Allison Rice-Ficht3, Carl Gregory3 and Roland Kaunas1 1 Texas A&M University, Biomedical Engineering, United States 2 Texas A&M University, Chemical Engineering, United States 3 Texas A&M Health Science Center, Molecular and Cellular Medicine, United States Introduction: Of the 5.6 million bone fractures that occur annually in the United States, about 10% fail to repair[1]. The canonical Wingless (cWnt) signaling pathway is critical for healing of bone fractures[2]. We have demonstrated that inhibiting peroxisome proliferator-activating receptor gamma with GW9662 (GW) reduces negative cross-talk on the cWnt pathway, resulting in a pro-osteogenic hMSC phenotype (OEhMSCs)[3]. OEhMSCs secrete an extracellular matrix (hMatrix) that mimics the composition of anabolic bone tissue and strongly enhances hMSC retention and subsequent bone repair in vivo[3]. We designed composite microspheres for co-administration of GW and hMatrix to facilitate cell retention and bone repair in vivo. Materials and Methods: GW was co-dissolved with poly(lactic-co-glycolic acid) (PLGA, 10%, w/v) in dichloromethane and PLGA solution was added to poly(vinyl alcohol) solution (8%, w/v). The solution was added to distilled water, and stirring was continued to obtain spheres that were then sieved to obtain a size of 20-32 µm. Poly(ethylene glycol) diacrylate (PEGDA) spheres containing the PLG microspheres were produced using a continuous-flow emulsion and photocrosslinking technique. The continuous phase consisted of mineral oil with 0.5% Span 80, while the dispersed phase was a solution of PLGA spheres, 30% PEGDA and 8% Lithium phenyl-2,4,6-trimethylbenzoylphosphinate in a functionalized collagen (Acrylate-PEG-Collagen) solution. ELISA and qRT-PCR for osteogenic markers were used to assess osteogenesis. Results and Discussion: An osteogenic microsphere was developed to coadminister hMatrix and GW to enhance hMSC retainment and promote osteorepair in vivo. Initial feasibility was demonstrated using collagen type I since this is the major component of hMatrix. We have functionalized collagen type I with photo-cross-linkable groups[4] to enable their incorporation into PEGDA microspheres. We also loaded GW into PLGA nanoparticles which were encapsulated in the PEGDA spheres and quantified the drug release profile. Specific gene and protein detection by qRT-PCR and osteoprotegerin assay of the adhered hMSCs revealed that GW induced osteogenesis. Conclusions: Conventional hMSC therapies have had limited success in bone regeneration. Autologous bone grafting is the gold standard to regenerate critical sized bone defects. Conversely, this procedure is associated with donor site morbidity and a limited volume of material available. The use of bone morphogenetic proteins have also been used, however, their use is associated with ectopic bone growth, paralysis, and inflammation[5]-[9]. Our composite microspheres incorporate biopolymers such as hMatrix to provide a favorable microenvironment and signal to cells to enhance their performance in vivo. We have developed a method to create microspheres for bone regeneration that provides both chemical and bioactive cues to promote new bone growth for critical sized bone defects. References:[1] Mathew, G. et al. Indian J Orthop 2009[2] Silkstone, D. et al. Nature 2008[3] Zeitouni, S. et al. Sci Transl Med 2012[4] Browning, M. et al. Biomacromolecules 2013[5] Lewandrowski, K. et al. Spine J 2007[6] Perri, B. et al. Spine J 2007[7] Robin, B. et al. Spine 2010[8] Wong, D. et al. Spine J 2008[9] Smucker, J. et al. Spine 2006 Keywords: Cell Differentiation, Regenerative Medicine, stem cell, Bone repair Conference: 10th World Biomaterials Congress, Montréal, Canada, 17 May - 22 May, 2016. Presentation Type: Poster Topic: Biomaterials in mesenchymal and hematopoietic stem cell biology Citation: Sears C, Dang S, Dodson C, Rice-Ficht A, Gregory C and Kaunas R (2016). Collagen-PEG composite microspheres for bone regeneration. Front. Bioeng. Biotechnol. Conference Abstract: 10th World Biomaterials Congress. doi: 10.3389/conf.FBIOE.2016.01.00780 Copyright: The abstracts in this collection have not been subject to any Frontiers peer review or checks, and are not endorsed by Frontiers. They are made available through the Frontiers publishing platform as a service to conference organizers and presenters. The copyright in the individual abstracts is owned by the author of each abstract or his/her employer unless otherwise stated. Each abstract, as well as the collection of abstracts, are published under a Creative Commons CC-BY 4.0 (attribution) licence (https://creativecommons.org/licenses/by/4.0/) and may thus be reproduced, translated, adapted and be the subject of derivative works provided the authors and Frontiers are attributed. For Frontiers’ terms and conditions please see https://www.frontiersin.org/legal/terms-and-conditions. Received: 27 Mar 2016; Published Online: 30 Mar 2016. Login Required This action requires you to be registered with Frontiers and logged in. To register or login click here. Abstract Info Abstract The Authors in Frontiers Candice Sears Sarah Dang Colin Dodson Allison Rice-Ficht Carl Gregory Roland Kaunas Google Candice Sears Sarah Dang Colin Dodson Allison Rice-Ficht Carl Gregory Roland Kaunas Google Scholar Candice Sears Sarah Dang Colin Dodson Allison Rice-Ficht Carl Gregory Roland Kaunas PubMed Candice Sears Sarah Dang Colin Dodson Allison Rice-Ficht Carl Gregory Roland Kaunas Related Article in Frontiers Google Scholar PubMed Abstract Close Back to top Javascript is disabled. Please enable Javascript in your browser settings in order to see all the content on this page.

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