161
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Time-Regulated Drug Delivery System Based on Coaxially Incorporated Platelet α-Granules for Biomedical Use

, , , , , , & show all
Pages 1137-1154 | Received 21 Mar 2012, Accepted 08 Aug 2012, Published online: 25 Jun 2013

References

  • Yarin AL , KoombhongseS, RenekerDH. Bending instability in electrospinning of nanofibers. J. Appl. Phys.89(5), 3018–3026 (2001).
  • Lukas D , SarkarA, MartinováLet al. Physical principles of electrospinning (electrospinning as a nano-scale technology of the twenty-first century). Textile Progress 41(2), 59–140 (2009).
  • Yang F , MuruganR, WangS, RamakrishnaS. Electrospinning of nano/micro scale poly(L-lactic acid) aligned fibers and their potential in neural tissue engineering. Biomaterials26(15), 2603–2610 (2005).
  • Yoshimoto H , ShinYM, TeraiH, VacantiJP. A biodegradable nanofiber scaffold by electrospinning and its potential for bone tissue engineering. Biomaterials24(12), 2077–2082 (2003).
  • Geng X , KwonOH, JangJ. Electrospinning of chitosan dissolved in concentrated acetic acid solution. Biomaterials26(27), 5427–5432 (2005).
  • Matthews JA , WnekGE, SimpsonDG, BowlinGL. Electrospinning of collagen nanofibers. Biomacromolecules3(2), 232–238 (2002).
  • Um IC , FangD, HsiaoBS, OkamotoA, ChuB. Electro-spinning and electro-blowing of hyaluronic acid. Biomacromolecules5(4), 1428–1436 (2004).
  • Li W-J , Tuli R, Okafor C et al. A three-dimensional nanofibrous scaffold for cartilage tissue engineering using human mesenchymal stem cells. Biomaterials26(6), 599–609 (2005).
  • Keun Kwon I , KidoakiS, MatsudaT. Electrospun nano- to microfiber fabrics made of biodegradable copolyesters: structural characteristics, mechanical properties and cell adhesion potential. Biomaterials26(18), 3929–3939 (2005).
  • Tian F , HosseinkhaniH, HosseinkhaniMet al. Quantitative analysis of cell adhesion on aligned micro- and nanofibers. J. Biomed. Mater. Res.A 84(2), 291–299 (2008).
  • Baker SC , AtkinN, GunningPAet al. Characterisation of electrospun polystyrene scaffolds for three-dimensional in vitro biological studies. Biomaterials 27(16), 3136–3146 (2006).
  • Pham QP , SharmaU, MikosAG. Electrospun poly(epsilon-caprolactone) microfiber and multilayer nanofiber/microfiber scaffolds: characterization of scaffolds and measurement of cellular infiltration. Biomacromolecules7(10), 2796–2805 (2006).
  • Dahlin RL , KasperFK, MikosAG. Polymeric nanofibers in tissue engineering. Tissue Eng. Part B Rev.17(5), 349–364 (2011).
  • Huang XJ , XuZK, WanLS, InnocentC, SetaP. Electrospun nanofibers modified with phospholipid moieties for enzyme immobilization. Macromol. Rapid Comm.27(16), 1341–1345 (2006).
  • Martins A , DuarteARC, FariaS, MarquesAP, ReisRL, NevesNM. Osteogenic induction of hBMSCs by electrospun scaffolds with dexamethasone release functionality. Biomaterials31(22), 5875–5885 (2010).
  • Zeng J , AignerA, CzubaykoF, KisselT, WendorffJH, GreinerA. Poly(vinyl alcohol) nanofibers by electrospinning as a protein delivery system and the retardation of enzyme release by additional polymer coatings. Biomacromolecules6(3), 1484–1488 (2005).
  • Cui W , ZhouY, ChangJ. Electrospun nanofibrous materials for tissue engineering and drug delivery. Sci. Technol. Adv. Mat.11(1), 014108 (2010).
  • Xie J , Hsieh Y-L. Ultra-high surface fibrous membranes from electrospinning of natural proteins: casein and lipase enzyme. J. Mater. Sci.38(10), 2125–2133 (2003).
  • Dror Y , KuhnJ, AvrahamiR, ZussmanE. Encapsulation of enzymes in biodegradable tubular structures. Macromolecules41(12), 4187–4192 (2008).
  • Salalha W , KuhnJ, DrorY, ZussmanE. Encapsulation of bacteria and viruses in electrospun nanofibres. Nanotechnology17(18), 4675 (2006).
  • Ji W , SunY, YangFet al. Bioactive electrospun scaffolds delivering growth factors and genes for tissue engineering applications. Pharmaceut. Res. 28(6), 1259–1272 (2011).
  • Jiang H , HuY, ZhaoP, LiY, ZhuK. Modulation of protein release from biodegradable core-shell structured fibers prepared by coaxial electrospinning. J. Biomed. Mater. Res. B Appl. Biomater.79(1), 50–57 (2006).
  • Sahoo S , AngLT, GohJCH, TohSL. Growth factor delivery through electrospun nanofibers in scaffolds for tissue engineering applications. J. Biomed. Mater. Res. A93A(4), 1539–1550 (2010).
  • Li H , ZhaoC, WangZ, ZhangH, YuanX, KongD. Controlled release of PDGF-bb by coaxial electrospun dextran/poly(L-lactide-co-epsilon-caprolactone) fibers with an ultrafine core/shell structure. J. Biomater. Sci. Polym. Ed.21(6), 803–819 (2010).
  • Saraf A , BaggettLS, RaphaelRM, KasperFK, MikosAG. Regulated non-viral gene delivery from coaxial electrospun fiber mesh scaffolds. J. Control. Release143(1), 95–103 (2010).
  • Cao HQ , JiangX, ChaiC, ChewSY. RNA interference by nanofiber-based siRNA delivery system. J. Control. Release144(2), 203–212 (2010).
  • Chen FM , ZhangM, WuZF. Toward delivery of multiple growth factors in tissue engineering. Biomaterials31(24), 6279–6308 (2010).
  • White JG . An overview of platelet structural physiology. Scanning Microsc.1(4), 1677–1700 (1987).
  • Blair P , FlaumenhaftR. Platelet alpha-granules: basic biology and clinical correlates. Blood Rev.23(4), 177–189 (2009).
  • Italiano JE , Jr, Richardson JL, Patel-Hett S et al. Angiogenesis is regulated by a novel mechanism: pro- and antiangiogenic proteins are organized into separate platelet α-granules and differentially released. Blood111(3), 1227–1233 (2008).
  • Stellos K , LangerH, DaubKet al. Platelet-derived stromal cell-derived factor-1 regulates adhesion and promotes differentiation of human CD34+ cells to endothelial progenitor cells. Circulation 117(2), 206–215 (2008).
  • Von Hundelshausen P , WeberC. Platelets as immune cells: bridging inflammation and cardiovascular disease. Circ. Res.100(1), 27–40 (2007).
  • Marx RE , CarlsonER, EichstaedtRM, SchimmeleSR, StraussJE, GeorgeffKR. Platelet-rich plasma: growth factor enhancement for bone grafts. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. Endod.85(6), 638–646 (1998).
  • Ehrenfest DM , RasmussonL, AlbrektssonT. Classification of platelet concentrates: from pure platelet-rich plasma (P-PRP) to leucocyte- and platelet-rich fibrin (L-PRF). Trends Biotechnol.27(3), 158–167 (2009).
  • Lacci KM , DardikA. Platelet-rich plasma: support for its use in wound healing. Yale J. Biol. Med.83(1), 1–9 (2010).
  • Alsousou J , ThompsonM, HulleyP, NobleA, WillettK. The biology of platelet-rich plasma and its application in trauma and orthopaedic surgery: a review of the literature. J. Bone Joint Surg. Br.91(8), 987–996 (2009).
  • Siclari A , MascaroG, GentiliC, CanceddaR, BouxE. A cell-free scaffold-based cartilage repair provides improved function hyaline-like repair at one year. Clin. Orthop. Relat. Res.470(3), 910–919 (2012).
  • Krüger JP , HondkeS, EndresM, PrussA, SiclariA, KapsC. Human platelet-rich plasma stimulates migration and chondrogenic differentiation of human subchondral progenitor cells. J. Orthopaed. Res.30(6), 845–852 (2012).
  • Gupta PK , DasAK, ChullikanaA, MajumdarAS. Mesenchymal stem cells for cartilage repair in osteoarthritis. Stem Cell Res. Ther.3(4), 25 (2012).
  • Mishra A , TummalaP, KingAet al. Buffered platelet-rich plasma enhances mesenchymal stem cell proliferation and chondrogenic differentiation. Tissue Eng. Part C Methods 15(3), 431–435 (2009).
  • Baenziger NL , BrodieGN, MajerusPW. A thrombin-sensitive protein of human platelet membranes. Proc. Natl Acad. Sci. USA68(1), 240–243 (1971).
  • Lukas D , SarkarA, PokornyP. Self-organization of jets in electrospinning from free liquid surface: a generalized approach. J. Appl. Phys.103(8), 084309 (2008).
  • Jakubova R , MickovaA, BuzgoMet al. Immobilization of thrombocytes on PCL nanofibres enhances chondrocyte proliferation in vitro. Cell Prolif. 44(2), 183–191 (2011).
  • Zhang YZ , HuangZM, XuXJ, LimCT, RamakrishnaS. Preparation of core-shell structured PCL-r-gelatin Bi-component nanofibers by coaxial electrospinning. Chem. Mater.16(18), 3406–3409 (2004).
  • Mickova A , BuzgoM, BenadaOet al. Core/shell nanofibers with embedded liposomes as a drug delivery system. Biomacromolecules 13(4), 952–962 (2012).
  • Filova E , RampichovaM, HandlMet al. Composite hyaluronate-type I collagen–fibrin scaffold in the therapy of osteochondral defects in miniature pigs. Physiol. Res. 56 (Suppl. 1), S5–S16 (2007).
  • Filova E , BurdikovaZ, RampichovaMet al. Analysis and three-dimensional visualization of collagen in artificial scaffolds using nonlinear microscopy techniques. J. Biomed. Opt. 15(6), 066011 (2010).
  • Anitua E , SanchezM, OriveG, AndiaI. The potential impact of the preparation rich in growth factors (PRGF) in different medical fields. Biomaterials28(31), 4551–4560 (2007).
  • Niessen J , JedlitschkyG, GrubeMet al. Subfractionation and purification of intracellular granule-structures of human platelets. an improved method based on magnetic sorting. J. Immunol. Methods 328 (1–2), 89–96 (2007).
  • Currie LM , LiveseySA, HarperJR, ConnorJ. Cryopreservation of single-donor platelets with a reduced dimethyl sulfoxide concentration by the addition of second-messenger effectors: enhanced retention of in vitro functional activity. Transfusion38(2), 160–167 (1998).
  • Nie Y , De Pablo JJ, Palecek SP. Platelet cryopreservation using a trehalose and phosphate formulation. Biotechnol. Bioeng.92(1), 79–90 (2005).
  • Isogai N , MorotomiT, HayakawaSet al. Combined chondrocyte–copolymer implantation with slow release of basic fibroblast growth factor for tissue engineering an auricular cartilage construct. J. Biomed Mater. Res. Part A 74A(3), 408–418 (2005).
  • Hokugo A , OzekiM, KawakamiOet al. Augmented bone regeneration activity of platelet-rich plasma by biodegradable gelatin hydrogel. Tissue Eng. 11 (7–8), 1224–1233 (2005).
  • Sell SA , WolfePS, EricksenJJ, SimpsonDG, BowlinGL. Incorporating platelet-rich plasma into electrospun scaffolds for tissue engineering applications. Tissue Eng. Part A17(21–22), 2723–2737 (2011).
  • Puppi D , ChielliniF, PirasAM, ChielliniE. Polymeric materials for bone and cartilage repair. Prog. Polym. Sci.35(4), 403–440 (2010).
  • Chastain SR , KunduAK, DharS, CalvertJW, PutnamAJ. Adhesion of mesenchymal stem cells to polymer scaffolds occurs via distinct ECM ligands and controls their osteogenic differentiation. J. Biomed. Mater. Res. A78(1), 73–85 (2006).
  • Shabani I , Haddadi-AslV, SeyedjafariE, BabaeijandaghiF, SoleimaniM. Improved infiltration of stem cells on electrospun nanofibers. Biochem. Biophys. Res. Commun.382(1), 129–133 (2009).
  • Baker BM , GeeAO, MetterRBet al. The potential to improve cell infiltration in composite fiber-aligned electrospun scaffolds by the selective removal of sacrificial fibers. Biomaterials 29(15), 2348–2358 (2008).
  • Guimaraes A , MartinsA, PinhoED, FariaS, ReisRL, NevesNM. Solving cell infiltration limitations of electrospun nanofiber meshes for tissue engineering applications. Nanomedicine (Lond.)5(4), 539–554 (2010).
  • Li D , OuyangG, MccannJT, XiaY. Collecting electrospun nanofibers with patterned electrodes. Nano Lett.5(5), 913–916 (2005).
  • Zussman E . Formation of nanofiber crossbars in electrospinning. Appl. Phys. Lett.82(6), 973 (2003).
  • Hosseinkhani H , HosseinkhaniM, KhademhosseiniA, KobayashiH, TabataY. Enhanced angiogenesis through controlled release of basic fibroblast growth factor from peptide amphiphile for tissue regeneration. Biomaterials27(34), 5836–5844 (2006).
  • Hosseinkhani H , HosseinkhaniM, TianF, KobayashiH, TabataY. Ectopic bone formation in collagen sponge self-assembled peptide–amphiphile nanofibers hybrid scaffold in a perfusion culture bioreactor. Biomaterials27(29), 5089–5098 (2006).
  • Hosseinkhani H , HosseinkhaniM, TianF, KobayashiH, TabataY. Osteogenic differentiation of mesenchymal stem cells in self-assembled peptide-amphiphile nanofibers. Biomaterials27(22), 4079–4086 (2006).
  • Akeda K , AnHS, OkumaMet al. Platelet-rich plasma stimulates porcine articular chondrocyte proliferation and matrix biosynthesis. Osteoarthritis Cartilage 14(12), 1272–1280 (2006).
  • Da Silva MA , CrawfordA, MundyJet al. Evaluation of extracellular matrix formation in polycaprolactone and starch-compounded polycaprolactone nanofiber meshes when seeded with bovine articular chondrocytes. Tissue Eng. Part A 15(2), 377–385 (2009).
  • Catelas I , DwyerJF, HelgersonS. Controlled release of bioactive transforming growth factor beta-1 from fibrin gels in vitro. Tissue Eng. Part C Methods14(2), 119–128 (2008).
  • Harrison S , VavkenP, KevyS, JacobsonM, ZurakowskiD, MurrayMM. Platelet activation by collagen provides sustained release of anabolic cytokines. Am. J. Sports Med.39(4), 729–734 (2011).
  • Stattin P , RinaldiS, BiessyC, Stenman U-H, Hallmans G, Kaaks R. High levels of circulating insulin-like growth factor-I increase prostate cancer risk: a prospective study in a population-based nonscreened cohort. J. Clin. Oncol.22(15), 3104–3112 (2004).
  • Friedman E , GoldLI, KlimstraD, ZengZS, WinawerS, CohenA. High levels of transforming growth factor beta 1 correlate with disease progression in human colon cancer. Cancer Epidemiol. Biomarkers Prev.4(5), 549–554 (1995).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.