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Anisotropic magnetic hydrogels: design, structure and mechanical properties.各向异性磁性水凝胶:设计、结构与力学性能
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2
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Philos Trans A Math Phys Eng Sci. 2019 Apr 22;377(2143):20180218. doi: 10.1098/rsta.2018.0218.
3
Effect of particle concentration on the microstructural and macromechanical properties of biocompatible magnetic hydrogels.颗粒浓度对生物相容磁性水凝胶微观结构和宏观力学性能的影响。
Soft Matter. 2017 Apr 19;13(16):2928-2941. doi: 10.1039/c7sm00388a.
4
Injectable hydrogel-based drug delivery systems for local cancer therapy.可注射水凝胶基药物输送系统用于局部癌症治疗。
Drug Discov Today. 2016 Nov;21(11):1835-1849. doi: 10.1016/j.drudis.2016.07.006. Epub 2016 Jul 14.
5
Generation and Characterization of Novel Magnetic Field-Responsive Biomaterials.新型磁场响应生物材料的制备与表征
PLoS One. 2015 Jul 24;10(7):e0133878. doi: 10.1371/journal.pone.0133878. eCollection 2015.
6
Novel nanocomposite hydrogels consisting of layered double hydroxide with ultrahigh tensibility and hierarchical porous structure at low inorganic content.新型纳米复合水凝胶由层状双氢氧化物组成,具有超高拉伸性和低无机含量下的分级多孔结构。
Adv Mater. 2014 Sep 10;26(34):5950-6. doi: 10.1002/adma.201400179. Epub 2014 Jun 13.
7
Nanocomposite hydrogels for biomedical applications.用于生物医学应用的纳米复合水凝胶。
Biotechnol Bioeng. 2014 Mar;111(3):441-53. doi: 10.1002/bit.25160. Epub 2013 Dec 6.
8
Biopolymer-based hydrogels as scaffolds for tissue engineering applications: a review.基于生物聚合物的水凝胶作为组织工程应用的支架:综述。
Biomacromolecules. 2011 May 9;12(5):1387-408. doi: 10.1021/bm200083n. Epub 2011 Mar 30.
9
Electrokinetic characterization of magnetite nanoparticles functionalized with amino acids.氨基酸功能化磁铁矿纳米粒子的电动特性研究。
J Colloid Interface Sci. 2010 Apr 1;344(1):144-9. doi: 10.1016/j.jcis.2009.11.061. Epub 2009 Dec 3.
10
Thermosensitive chitosan-Pluronic hydrogel as an injectable cell delivery carrier for cartilage regeneration.热敏壳聚糖-泊洛沙姆水凝胶作为用于软骨再生的可注射细胞递送载体。
Acta Biomater. 2009 Jul;5(6):1956-65. doi: 10.1016/j.actbio.2009.01.040. Epub 2009 Feb 4.

含粒子板状团簇和聚合物纳米纤维的磁性胶体的流变性。

Rheology of magnetic colloids containing clusters of particle platelets and polymer nanofibres.

机构信息

Centre National des Recherches en Sciences des Materiaux, Technopole Borej Cedria, BP 73, 8027 Soliman, Tunisia.

Faculté des Sciences de Tunis, Université de Tunis El Manar, Tunisie B.P., 94-Rommana 1068, Tunisia.

出版信息

Philos Trans A Math Phys Eng Sci. 2020 May 15;378(2171):20190255. doi: 10.1098/rsta.2019.0255. Epub 2020 Apr 13.

DOI:10.1098/rsta.2019.0255
PMID:32279638
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7202764/
Abstract

Magnetic hydrogels (ferrogels) are soft materials with a wide range of applications, especially in biomedicine because (i) they can be provided with the required biocompatibility; (ii) their heterogeneous structure allows their use as scaffolds for tissue engineering; (iii) their mechanical properties can be modified by changing different design parameters or by the action of magnetic fields. These characteristics confer them unique properties for acting as patterns that mimic the architecture of biological systems. In addition, and (iv) given their high porosity and aqueous content, ferrogels can be loaded with drugs and guided towards specific targets for local (non-systemic) pharmaceutical treatments. The ferrogels prepared in this work contain magnetic particles obtained by precipitation of magnetite nanoparticles onto the porous surface of bentonite platelets. Then, the particles were functionalized by adsorption of alginate molecules and dispersed in an aqueous solution of sodium alginate. Finally, the gelation was promoted by cross-linking the alginate molecules with Ca ions. The viscoelastic properties of the ferrogels were measured in the absence/presence of external magnetic fields, showing that these ferrogels exhibited a strong enough magnetorheological effect. This behaviour is explained considering the field-induced strengthening of the heterogeneous (particle-polymer) network generated inside the ferrogel. This article is part of the theme issue 'Patterns in soft and biological matters'.

摘要

磁性水凝胶(铁凝胶)是一类具有广泛应用的软物质,尤其在生物医学领域有广泛应用,这是因为:(i) 它们可以具有所需的生物相容性;(ii) 其不均匀的结构允许它们被用作组织工程的支架;(iii) 通过改变不同的设计参数或通过磁场的作用,其机械性能可以得到改善。这些特性使它们具有独特的性质,可以作为模仿生物系统结构的图案。此外,(iv) 鉴于其高孔隙率和含水量,铁凝胶可以负载药物,并引导其靶向特定目标,以进行局部(非全身)药物治疗。本工作中制备的铁凝胶包含通过将磁铁矿纳米颗粒沉淀到膨润土薄片的多孔表面上而获得的磁性颗粒。然后,通过吸附海藻酸钠分子对颗粒进行功能化,并将其分散在海藻酸钠的水溶液中。最后,通过用 Ca 离子交联海藻酸钠分子来促进凝胶化。在不存在/存在外部磁场的情况下测量了铁凝胶的粘弹性,结果表明这些铁凝胶表现出足够强的磁流变效应。考虑到在铁凝胶内部产生的场诱导增强的不均匀(颗粒-聚合物)网络,可以解释这种行为。本文是主题为“软物质和生物物质中的图案”的特刊的一部分。