用户名: 密码: 验证码:
水生生物启发的医用粘合剂的研究进展
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Advances in aquatic bio-inspired medical adhesives
  • 作者:吴云 ; 李健
  • 英文作者:WU Yun;LI Jian;Pharmacy, People's Liberation Army Southern Theater General Hospital;College of Pharmacy, Guangdong Pharmaceutical University;Pharmacy, University of Chinese Academy of Sciences Shenzhen Hospital;
  • 关键词:医用粘合剂 ; 粘合机制 ; 水生生物 ; 组织粘合
  • 英文关键词:medical adhesive;;adhesion mechanism;;underwater biology;;tissue adhesion
  • 中文刊名:SWGC
  • 英文刊名:Journal of Biomedical Engineering
  • 机构:中国人民解放军南部战区总医院药剂科;广东药科大学药学院;中国科学院大学深圳医院药剂科;
  • 出版日期:2019-03-19 18:19
  • 出版单位:生物医学工程学杂志
  • 年:2019
  • 期:v.36
  • 基金:军队后勤科研技术产品研究项目(CG216C009);; 广州市产学研协同创新重大专项(201704020173);; 广州市科技计划项目(201509010012)
  • 语种:中文;
  • 页:SWGC201902021
  • 页数:9
  • CN:02
  • ISSN:51-1258/R
  • 分类号:155-163
摘要
近年来,由于外科手术数量的急剧上升,临床上对能够在血液或者组织液等湿润环境中发挥黏附止血作用的医用粘合剂需求显著增加。随着对水生生物自然黏附机制和关键要素认识的不断深入,许多研究通过模仿生物黏附过程或者利用其作用官能团,开发了多种医用粘合剂。本文将从水生生物章鱼、贻贝启发的仿生医用粘合剂的分类、粘合机制、用途、临床应用进展及发展前景进行概述。
        In recent years, due to the dramatic increase in the number of surgical operations, there has been a clinically significant increase in the demand for medical adhesives capable of cohesion in a moist environment that can overcome blood or tissue fluids in vivo. As the understanding of the mechanisms and key elements of natural adhesion to aquatic organisms continues to develop, a variety of medical adhesives have been developed by mimicking adhesion procedures or utilizing key functional groups. This article will review the classification, adhesion mechanism, use, research progress and development prospects of biomedical adhesives inspired by aquatic organisms octopus and mussels.
引文
1Seo S, Lee D W, Ahn J S, et al. Significant performance enhancement of polymer resins by bioinspired dynamic bonding.Adv Mater, 2017, 29(39). DOI:10.1002/adma.201703026.
    2Priemel T, Degtyar E, Dean M N, et al. Rapid self-assembly of complex biomolecular architectures during mussel byssus biofabrication. Nat Commun, 2017, 8:14539.
    3Rapp M V, Maier G P, Dobbs H A, et al. Defining the catecholcation synergy for enhanced wet adhesion to mineral surfaces. J Am Chem Soc, 2016, 138(29):9013-9016.
    4Zhao Yanhua, Wu Yang, Wang Liang, et al. Bio-inspired reversible underwater adhesive. Nat Commun, 2017, 8(1):2218.
    5Lee H, Um D S, Lee Y, et al. Octopus-inspired smart adhesive pads for transfer printing of semiconducting nanomembranes. Adv Mater, 2016, 28(34):7457-7465.
    6Chen Yingchu, Yang Hongta. Octopus-inspired assembly of nanosucker arrays for dry/wet adhesion. ACS Nano, 2017, 11(6):5332-5338.
    7Baik S, Kim D W, Park Y, et al. A wet-tolerant adhesive patch inspired by protuberances in suction cups of octopi. Nature, 2017,546(7658):396-400.
    8 Chen L, An H Z, Haghgooie R, et al. Flexible octopus-shapedhydrogel particles for specific cell capture. Small, 2016, 12(15):2001-2008.
    9Went P T, Lugli A, Meier S, et al. Frequent EpCam protein expression in human carcinomas. Hum Pathol, 2004, 35(1):122-128.
    10Dendukuri D, Pregibon D C, Collins J, et al. Continuous-flow lithography for high-throughput microparticle synthesis. Nat Mater, 2006, 5(5):365-369.
    11Dendukuri D, Gu S S, Pregibon D C, et al. Stop-flow lithography in a microfluidic device. Lab Chip, 2007, 7(7):818-828.
    12Bj?rnmalm M, Yan Y, Caruso F. Engineering and evaluating drug delivery particles in microfluidic devices. J Control Release, 2014,190:139-149.
    13Pregibon D C, Toner M, Doyle P S. Multifunctional encoded particles for high-throughput biomolecule analysis. Science, 2007,315(5817):1393-1396.
    14Suh S K, Yuet K, Hwang D K, et al. Synthesis of nonspherical superparamagnetic particles:in situ coprecipitation of magnetic nanoparticles in microgels prepared by stop-flow lithography. J Am Chem Soc, 2012, 134(17):7337-7343.
    15An H Z, Helgeson M E, Doyle P S. Nanoemulsion composite microgels for orthogonal encapsulation and release. Adv Mater,2012, 24(28):3838-3844, 3895.
    16Kwak M K, Jeong H E, Suh K Y. Rational design and enhanced biocompatibility of a dry adhesive medical skin patch. Adv Mater,2011, 23(34):3949-3953.
    17Baik S, Kim J, Lee H J, et al. Highly adaptable and biocompatible octopus-like adhesive patches with meniscus-controlled unfoldable3 D microtips for underwater surface and hairy skin. Adv Sci, 2018,5 (8). DOI:10.1002/advs.201800100.
    18Chang Wanyi, Wu You, Chung Y C. Facile fabrication of ordered nanostructures from protruding nanoballs to recessional nanosuckers via solvent treatment on covered nanosphere assembled monolayers. Nano Lett, 2014, 14(3):1546-1550.
    19Campo A, Greiner C,álvarez I, et al. Patterned surfaces with pillars with controlled 3D tip geometry mimicking bioattachment devices. Advanced Materials, 2007, 19(15):1973-1977.
    20Choi M K, Park O K, Choi C, et al. Cephalopod-inspired miniaturized suction cups for smart medical skin. Adv Healthc Mater, 2016, 5(1):80-87.
    21Lee B P, Messersmith P B, Israelachvili J N, et al. Mussel-inspired adhesives and coatings. Annu Rev Mater Res, 2011, 41(1):99-132.
    22Kord Forooshani P, Lee B P. Recent approaches in designing bioadhesive materials inspired by mussel adhesive protein. J Polym Sci A Polym Chem, 2017, 55(1):9-33.
    23Lee H, Scherer N F, Messersmith P B. Single-molecule mechanics of mussel adhesion. Proc Natl Acad Sci U S A, 2006, 103(35):12999-13003.
    24Yu Jing, Wei Wei, Menyo M S, et al. Adhesion of mussel foot protein-3 to TiO2 surfaces:the effect of pH. Biomacromolecules,2013, 14(4):1072-1077.
    25Lu Qingye, Danner E, Waite J H, et al. Adhesion of mussel foot proteins to different substrate surfaces. Journal of the Royal Society Interface, 2013, 10(79):20120759.
    26Li Shaochun, Chu Lina, Gong Xueqing, et al. Hydrogen bonding controls the dynamics of catechol adsorbed on a TiO2(110)surface.Science, 2010, 328(5980):882-884.
    27 Leng Chuan, Liu Yuwei, Jenkins C, et al. Interfacial structure of aDOPA-inspired adhesive polymer studied by sum frequency generation vibrational spectroscopy. Langmuir, 2013, 29(22):6659-6664.
    28McDowell L M, Burzio L A, Waite J H, et al. Rotational echo double resonance detection of cross-links formed in mussel byssus under high-flow stress. J Biol Chem, 1999, 274(29):20293-20295.
    29Hedlund J, Andersson M, Fant C, et al. Change of colloidal and surface properties of Mytilus edulis foot protein 1 in the presence of an oxidation(NaIO4)or a complex-binding(Cu2+)agent.Biomacromolecules, 2009, 10(4):845-849.
    30Burzio L A, Waite J H. Cross-linking in adhesive quinoproteins:studies with model decapeptides. Biochemistry, 2000, 39(36):11147-11153.
    31Fan Changjiang, Fu Jiayin, Zhu Wenzhen, et al. A mussel-inspired double-crosslinked tissue adhesive intended for internal medical use. Acta Biomater, 2016, 33:51-63.
    32Ji Yali, Ji Ting, Liang Kai, et al. Mussel-inspired soft-tissue adhesive based on poly(diol citrate)with catechol functionality. J Mater Sci Mater Med, 2016, 27(2):30.
    33Rose S, Prevoteau A, Elzière P, et al. Nanoparticle solutions as adhesives for gels and biological tissues. Nature, 2014, 505(7483):382-385.
    34Pandey N, Hakamivala A, Xu Cancan, et al. Biodegradable nanoparticles enhanced adhesiveness of mussel-like hydrogels at tissue interface. Adv Healthc Mater, 2018, 7(7). DOI:10 .1002/adhm.201701069.
    35Xu Yiwen, Liang Kai, Ullah W, et al. Chitin nanocrystal enhanced wet adhesion performance of mussel-inspired citrate-based softtissue adhesive. Carbohydr Polym, 2018, 190:324-330.
    36Kim H J, Yang B, Park T Y, et al. Complex coacervates based on recombinant mussel adhesive proteins:their characterization and applications. Soft Matter, 2017, 13(42):7704-7716.
    37Pangon A, Saesoo S, Saengkrit N A, et al. Hydroxyapatitehybridized chitosan/chitin whisker bionanocomposite fibers for bone tissue engineering applications. Carbohydr Polym, 2016, 144:419-427.
    38Plat V D, Bootsma B T, Van Der Wielen N, et al. The role of tissue adhesives in esophageal surgery, a systematic review of literature.Int J Surg, 2017, 40:163-168.
    39 Hafner D, Ziegler L, Ichwan M, et al. Mussel-inspired polymer carpets:direct photografting of polymer brushes on polydopamine nanosheets for controlled cell adhesion. Advanced Materials, 2016,28(7):1489-1494.
    40Xu J, Strandman S, Zhu J X X, et al. Genipin-crosslinked catecholchitosan mucoadhesive hydrogels for buccal drug delivery.Biomaterials, 2015, 37:395-404.
    41Park H J, Jin Y, Shin J, et al. Catechol-functionalized hyaluronic acid hydrogels enhance angiogenesis and osteogenesis of human adipose-derived stem cells in critical tissue defects.Biomacromolecules, 2016, 17(6):1939-1948.
    42牛睿.光聚合仿生生物粘合剂的研究.北京:北京化工大学, 2011.
    43Yang S Y, O'Cearbhaill E D, Sisk G C, et al. A bio-inspired swellable microneedle adhesive for mechanical interlocking with tissue. Nat Commun, 2013, 4(102(S1)):1702.
    44Li Ang, Jia Yunfei, Sun Shengtong, et al. Mineral-enhanced polyacrylic acid hydrogel as an oyster-inspired organic-inorganic hybrid adhesive. ACS Appl Mater Interfaces, 2018, 10(12):10471-10479.
    45Amjadi M, Turan M, Clementson C P, et al. Parallel microcracks based ultrasensitive and highly stretchable strain sensors. Acs Applied Materials&Interfaces, 2016, 8(8):5618.
    46Gao W, Emaminejad S, Nyein H Y, et al. Fully integrated wearable sensor arrays for multiplexed in situ perspiration analysis. Nature,2016, 529(7587):509-514.
    47Mostafalu P, Akbari M, Alberti K A, et al. A toolkit of thread-based microfluidics, sensors, and electronics for 3D tissue embedding for medical diagnostics. Microsystems&Nanoengineering, 2016, 2:16039.
    48Drotlef D M, Amjadi M, Yunusa M, et al. Bioinspired Composite Microfibers for Skin Adhesion and Signal Amplification of Wearable Sensors[J]. Adv Mater, 2017, 29(28). DOI:10 .1002/adma.201701353.
    49Wang H, Giorgia P, Chengkuo L. Toward self‐powered wearable adhesive skin patch with bendable microneedle array for transdermal drug delivery. Advanced Science, 2016, 3(9):1500441.
    50Hennebert E, Wattiez R, Demeuldre M, et al. Sea star tenacity mediated by a protein that fragments, then aggregates. Proceedings of the National Academy of Sciences of the United States of America, 2014, 111(17):6317.
    51 Brennan M J, Kilbride B F, Wilker J J, et al. A bioinspired elastinbased protein for a cytocompatible underwater adhesive.Biomaterials, 2017, 124:116-125.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700