PCL基聚合物的制备及其在生物医学工程中的应用
PDF下载 (18850)韦茜茜 1,金嘉长 1,周 密 1,王 剑 2,王幸媛 1,竺亚斌 1*.PCL基聚合物的制备及其在生物医学工程中的应用[J].宁波大学学报(理工版),2018,31(4):36-45.DOI:
WEI Qian-qian 1,JIN Jia-chang 1,ZHOU Mi 1,WANG Jian 2,WANG Xing-yuan 1,ZHU Ya-bin 1*.The preparation and application of PCL-based polymers in biomedical engineering[J].Journal of Ningbo University(Natural Science & Engineering Edition),2018,31(4):36-45.DOI:
| Title: | The preparation and application of PCL-based polymers in biomedical engineering |
| 作者: | 韦茜茜 1, 金嘉长 1, 周 密 1, 王 剑 2, 王幸媛 1, 竺亚斌 1* |
| Author(s): | WEI Qian-qian 1, JIN Jia-chang 1, ZHOU Mi 1, WANG Jian 2, WANG Xing-yuan 1, ZHU Ya-bin 1* |
| 关键词: | 聚己内酯; 生物降解性; 生物相容性; 组织工程支架; 药物控释 |
| Keywords: | polycaprolactone; biodegradability; biocompatibility; scaffold; controlled drug release |
| 分类号: | R31 |
| 文献标识码: | A |
| 摘要: | 聚己内酯(PCL)具有良好力学性能、生物相容性和生物降解性. 其在催化剂、加热等适当条件下, 可与其他如聚乙二醇(PEG)、聚乳酸(PLA)、聚乙交酯(PGA)等单体或低聚物发生共聚, 以改善聚合物性能; 也可通过与其他聚合物共混; 或者在PCL材料表面化学接枝其他化合物, 以得到性能更为理想的聚合物材料. 这些PCL基材料已在生物医学工程领域中得到广泛关注和开发应用, 尤其作为组织损伤修复的支撑材料、药物负载和可控释放的承载系统等方面, 具有很大的发展空间与应用潜能. 本文将就这方面的基础研究和应用作一综述. |
| Abstract: | Polycaprolactone (PCL) possesses good mechanical property, including biocompatibility and biodegradability. PCL can react with some monomers or oligomers, such as poly(ethylene glycol) (PEG), polylactide (PLA), polyglycolide (PGA) and polyurethane (PU) etc. under proper conditions like catalysts or heats, aiming at improving the performance of PCL-based polymers. In addition, PCL can blend with other polymers or graft given biomacromolecules via surface modification to promote the materials’ characteristics. These materials have been extensively studied for applications in tissue engineering, regenerative medicine and drug delivery system with controlled release. This paper will review the preparations of PCL-based polymers and their applications in biomedical engineering. |
| 参考文献 /References: | [1] Jonnalagadda J, Rivero I, Warzywoda J. In-vitro degradation characteristics of poly(e-caprolactone)/ poly(glycolic acid) scaffolds fabricated via solid-state cryomilling[J]. Journal of Biomaterials Applications, 2015, 30(4):472-483. [2] Yin G, Zhao D, Wang X, et al. Bio-compatible poly(ester-urethane)s based on PEG-PCL-PLLA copolymer with tunable crystallization and bio-degradation properties[J]. RSC Advances, 2015, 5(96):79070-79080. [3] Cui F, Li R, Liu Q, et al. Enhancement of radiotherapy efficacy by docetaxel-loaded gelatinase-stimuli PEG-Pep-PCL nanoparticles in gastric cancer[J]. Cancer Letters, 2014, 346(1):53-62. [4] Niu Y, Chen K, He T, et al. Scaffolds from block polyurethanes based on poly(?-caprolactone) (PCL) and poly(ethylene glycol) (PEG) for peripheral nerve regeneration[J]. Biomaterials, 2014, 35(14):4266-4277. [5] Guan S, Rosenecker J. Nanotechnologies in delivery of mRNA therapeutics using nonviral vector-based delivery systems[J]. Gene Therapy, 2017, 24(3):133-143. [6] Ravi P, Vats R, Dalal V, et al. Design, optimization and evaluation of poly-?-caprolactone (PCL) based polymeric nanoparticles for oral delivery of lopinavir[J]. Drug Development & Industrial Pharmacy, 2015, 41(1):131-140. [7] Ozturk K, Mashal A, Yegin B, et al. Preparation and in vitro evaluation of 5-fluorouracil-loaded PCL nano- particles for colon cancer treatment[J]. Pharmaceutical Development & Technology, 2015, 29:1-7. [8] Palama I, Cortese B, D’Amone S, et al. mRNA delivery using non-viral PCL nanoparticles[J]. Biomaterials Science, 2015, 3(1):144-151. [9] Karuppuswamy P, Venugopal J R, Navaneerthan B, et al. Polycaprolactone nanofibers for the controlled release of tetracycline hydrochloride[J]. Materials Letters, 2015, 141:180-186. [10] Rohner D, Hutmacher D, See P, et al. Individually CAD-CAM technique designed, bioresorbable 3-dimen- sional polycaprolactone framework for experimental reconstruction of craniofacial defects in the pig[J]. Mund Kiefer Gesichtschir, 2002, 6(3):162-167. [11] Savkovic V, Flamig F, Schneider M, et al. Polycaprolactone fiber meshes provide a 3D environment suitable for cultivation and differentiation of melanocytes from the outer root sheath of hair follicle[J]. Journal of Biomedical Materials Research Part A, 2016, 104(1):26-36. [12] Salerno S, Morelli S, Giordano F, et al. Polymeric membranes modulate human keratinocyte differentiation in specific epidermal layers[J]. Colloids & Surfaces B Biointerfaces, 2016, 146:352-362. [13] Lee J, Choi Y, Yong W, et al. Development of a 3D cell printed construct considering angiogenesis for liver tissue engineering[J]. Biofabrication, 2016, 8(1):15007-15021. [14] Yu Y, Fan C, Hsu Y, et al. A novel biodegradable polycaprolactone fixator for osteosynthesis surgery of rib fracture: In vitro and in vivo study[J]. Materials, 2015, 8(12):7714-7722. [15] Limongi T, Schipani R, Di Vito A, et al. Photolithography and micromolding techniques for the realization of 3D polycaprolactone scaffolds for tissue engineering applications[J]. Microelectronic Engineering, 2015, 141:135-139. [16] Kim J A, Van A D. Neocollagenesis in human tissue injected with a polycaprolactone-based dermal filler[J]. Journal of Cosmetic & Laser Therapy, 2015, 17(2):1-8. [17] Galadari H, Abel D, Nuami K, et al. A randomized, prospective, blinded, split-face, single-center study com- paring polycaprolactone to hyaluronic acid for treatment of nasolabial folds[J]. Journal of Cosmetic Dermatology, 2014, 14(1):27-32. [18] Azouz L, Dahmoune F, Rezgui F, et al. Full factorial design optimization of anti-inflammatory drug release by PCL-PEG-PCL microspheres[J]. Materials Science & Engineering C, 2016, 58:412-419. [19] Shen Z S, Wang J, Lu D K, et al. Synthesis and properties of flexible polyurethane using ferric catalyst for hypopharyngeal tissue engineering[J]. Biomed Research International, 2015(3):798721-798731. [20] Jiang W, Li L, Zhang D, et al. Incorporation of aligned PCL-PEG nanofibers into porous chitosan scaffolds improved the orientation of collagen fibers in regenerated periodontium[J]. Acta Biomater, 2015, 25:240-252. [21] Shen Y, Leng M, Yu H, et al. Effect of amphiphilic PCL-PEG nano-micelles on HepG2 cell migration[J]. Macromolecular Bioscience, 2015, 15(3):372-384. [22] Han Q, Wang Y, Li X, et al. Effects of bevacizumab loaded PEG-PCL-PEG hydrogel intracameral application on intraocular pressure after glaucoma filtration surgery[J]. Journal of Materials Science Materials in Medicine, 2015, 26(8):1-9. [23] Yin H, Gong C, Shi S, et al. Toxicity evaluation of biodegradable and thermosensitive PEG-PCL-PEG hydrogel as a potential in situ sustained ophthalmic drug delivery system[J]. Journal of Biomedical Materials Research Part B Applied Biomaterials, 2010, 92(1):129- 137. [24] 雷钰娜, 竺亚斌, 陈玲, 等. 2011铁系化合物催化脂肪族环酯聚合反应[J]. 功能高分子学报, 2011, 24(3):297- 302. [25] Draoua Z, Harrane A, Belbachir M. Amphiphilic biodegradable poly(?-caprolactone)-poly(ethyleneglycol)- poly(?-caprolactone) triblock copolymer synthesis by maghnite-H+ as a green catalyst[J]. Journal of Macromolecular Science, Part A, 2015, 52(2):130-137. [26] Luo Z, Jin L, Xu L, et al. Thermosensitive PEG-PCL- PEG (PECE) hydrogel as an in situ gelling system for ocular drug delivery of diclofenac sodium[J]. Drug Delivery, 2016, 23(1):63-68. [27] Khodaverdi E, Heidari Z, Tabassi S, et al. Injectable supramolecular hydrogel from insulin-loaded triblock PCL-PEG-PCL copolymer and γ-cyclodextrin with sustained-release property[J]. AAPS Pharmscitech, 2015, 16(1):140-149. [28] Jung Y, Kim K, Heo J, et al. Induction of angiogenesis by matrigel coating of VEGF-loaded PEG/PCL-based hydrogel scaffolds for hBMSC transplantation[J]. Moleculer Cells, 2015, 38(7):663-668. [29] Anzai R, Murakami Y. Poly(?-caprolactone) (PCL)-polymeric micelle hybrid sheets for the incorporation and release of hydrophilic proteins[J]. Colloids Surf B Biointerfaces, 2015, 127:292-299. [30] Zhu Y, Gao C, Liu X, et al. Surface modification of polycaprolactone membrane via aminolysis and biomacromolecule immobilization for promoting cytocompatibility of human endothelial cells[J]. Biomacromolecules, 2002, 3(6):1312-1319. [31] Yang G, Wang J, Wang Y, et al. An implantable active-targeting micelle-in-nanofiber device for efficient and safe cancer therapy[J]. ACS Nano, 2015, 9(2):1161-1174. [32] Zhao H, Zhao G. Mechanical and thermal properties of conventional and microcellular injection molded poly (lactic acid)/poly (?-caprolactone) blends[J]. Journal of the Mechanical Behavior of Biomedical Materials, 2016, 53:59-67. [33] Zhou W, Qian H, Yan L, et al. Controlled release of clodronate from PLA/PCL complex microsphere[J]. Materials Letters, 2015, 152:293-297. [34] Kim S, Bo R, Jin I, et al. Preparation of topographically modified poly(L-lactic acid)-b-poly(?-caprolactone)-b-poly(L-lactic acid) tri-block copolymer film surfaces and its blood compatibility[J]. Macromolecular Research, 2014, 22(11):1229-1237. [35] Jiao M, Yang K, Cao J, et al. Designing and characterization of poly(L-lactide)/poly(?-Caprolactone) multiblock copolymers[J]. Journal of Macromolecular Science, Part B, 2013, 53(2):191-204. [36] Vieira A, Guedes R, Tita V. Damage-induced hydrolyses modelling of biodegradable polymers for tendons and ligaments repair[J]. Journal of Biomechanics, 2015, 48(12):3478-3485. [37] 阳范文, 林永亮, 田秀梅, 等. PLA/PCL共混物的制备及其在医用材料中的应用[J]. 工程塑料应用, 2014, 42(2):1-5. [38] Sankaran K, Krishnan U, Sethuraman S. Axially aligned 3D nanofibrous grafts of PLA-PCL for small diameter cardiovascular applications[J]. Journal of Biomaterials Science Polymer Edition, 2014, 25(16):1791-1812. [39] Zhu Y, Chian K, Chan-Park M, et al. Protein bonding on biodegradable poly(L-lactide-co-caprolactone) membrane for esophageal tissue engineering[J]. Biomaterials, 2006, 27(1):68-78. [40] Zhu Y, Leong M, Ong W, et al. Esophageal epithelium regeneration on fibronectin grafted poly(L-lactide-co- caprolactone) (PLLC) nanofiber scaffold[J]. Biomaterials, 2007, 28(5):861-688. [41] Zhu Y, Ong W, Chan W, et al. Construct of asymmetrical scaffold and primary cells for tissue engineered esophagus[J]. Materials Science and Engineering C, 2010, 30(3):400-406. [42] Hou L, Jin J, Lü J, et al. Constitution and in vivo test of microporous tubular scaffold for esophageal tissue engineering[J]. Journal of Biomaterials Applications, 2015, 30(5):568-578. [43] Xu X, Yang J, Ding L, et al. Bone morphogenetic protein-2-encapsulated grafted-poly-lactic acid-polyca- prolactone nanoparticles promote bone repair[J]. Cell Biochem Biophys, 2015, 71(1):215-225. [44] Haroosh H, Dong Y, Lau K. Tetracycline hydrochloride (TCH)-loaded drug carrier based on PLA:PCL nanofibre mats: Experimental characterisation and release kinetics modelling[J]. Journal of Materials Science, 2014, 49(18):6270-6281. [45] Spearman S, Irin F, Rivero I, et al. Effect of dsDNA wrapped single-walled carbon nanotubes on the thermal and mechanical properties of polycaprolactone and polyglycolide fiber blend composites[J]. Polymer, 2015, 56:476-481. [46] Spearman S, Rivero I, Abidi N. Influence of polycaprolactone/polyglycolide blended electrospun fibers on the morphology and mechanical properties of polycaprolactone[J]. Journal of Applied Polymer Science, 2014, 131(9):742-751. [47] Paskiabi F, Mirzaei E, Amani A, et al. Optimizing parameters on alignment of PCL/PGA nanofibrous scaffold: An artificial neural networks approach[J]. International Journal of Biological Macromolecules, 2014, 81:1089-1097. [48] Jonnalagadda J, Rivero I, Dertien J. In vitro chondrocyte behavior on porous biodegradable poly(e-caprolactone)/polyglycolic acid scaffolds for articular chondrocyte adhesion and proliferation[J]. Journal of Biomaterials Science Polymer Edition, 2015, 26(7):401-419. [49] Pena J, Gutierrez S, Villamil J, et al. Policaprolactone/polyvinylpyrrolidone/siloxane hybrid materials: Synthesis and in vitro delivery of diclofenac and biocompatibility with periodontal ligament fibroblasts[J]. Materials Science & Engineering C Materials for Biological Applications, 2016, 58:60-69. [50] Patel S P, Vaishya R, Pal D, et al. Novel pentablock copolymer-based nanoparticulate systems for sustained protein delivery[J]. AAPS Pharmscitech, 2014, 16(2):327-343. [51] 於学婵, 沈秋霞, 卢珍珍, 等. 电纺丝技术制备组织工程食管仿生支架[J]. 中国组织工程研究, 2014, 18(30):4772-4776. [52] Lü J, Chen L, Zhu Y, et al. Promoting epithelium regeneration for esophageal tissue engineering through basement membrane reconstitution[J]. ACS Applied Materials & Interfaces, 2014, 6(7):4954-4964. [53] Augustine R, Kalarikkal N, Thomas S. Effect of zinc oxide nanoparticles on the in vitro degradation of electrospun polycaprolactone membranes in simulated body fluid[J]. International Journal of Polymeric Materials and Polymeric Biomaterials, 2015, 65(1):28-37. [54] Chen M, Parsons A, Felfel R, et al. In-situ polymerisation of fully bioresorbable polycaprolactone/phosphate glass fibre composites: In vitro degradation and mechanical properties[J]. Journal of the Mechanical Behavior of Biomedical Materials, 2016, 59:78-89. [55] Gao X, Song J, Ji P, et al. Polydopamine-templated hydroxyapatite reinforced polycaprolactone composite nanofibers with enhanced cytocompatibility and osteogenesis for bone tissue engineering[J]. ACS Applied Materials & Interfaces, 2016, 8(5):3499-3515. [56] Wei B, Yao Q, Guo Y, et al. Three-dimensional polycaprolactone-hydroxyapatite scaffolds combined with bone marrow cells for cartilage tissue engineering[J]. Journal of Biomaterials Applications, 2015, 30(2):160-170. [57] 竺亚斌. 高分子材料表面化学改性的方法—–提高材料的生物相容性[J]. 宁波大学学报(理工版), 2001, 14(2):77-81. [58] Zhu Y, Gao C, Liu X, et al. Immobilization of biomacro-molecules onto aminolyzed poly(L-lactic acid) toward acceleration of endothelium regeneration[J]. Tissue Engineering, 2004, 10(1/2):53-61. [59] Zhu Y, Gao C, He T, et al. Endothelium regeneration on luminal surface of polyurethane vascular scaffold modified with diamine and covalently grafted with gelatin[J]. Biomaterials, 2004, 25(3):423-430. [60] Sun M, Deng J, Gao C. The correlation between fibronectin adsorption and attachment of vascular cells on heparinized polycaprolactone membrane[J]. Journal of Colloid & Interface Science, 2015, 448:231-237. [61] Zhu Y, Gao C, Shen J. Surface modification of polycaprolactone with poly(met hacrylic acid) and gelat incovalent immobilization for promoting its cytocompatibility[J]. Biomaterials, 2002, 23(224):4889-4895. [62] Zhao X, Lui Y, Choo C, et al. Calcium phosphate coated Keratin-PCL scaffolds for potential bone tissue regeneration[J]. Materials Science & Engineering C, 2015, 49:746-753. |
| 备注/Memo: | 收稿日期: 2017-05-09. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/基金项目: 国家自然科学基金(81471797); 宁波市创新团队项目(2015B11050).第一作者: 韦茜茜(1990-), 女, 广西南宁人, 在读硕士研究生, 主要研究方向: 组织工程. E-mail: weixixi0727@163.com*通信作者: 竺亚斌(1967-), 女, 浙江宁波人, 教授, 主要研究方向: 组织工程. E-mail: zhuyabin@nbu.edu.cn 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |