首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 93 毫秒
1.
以四氧化三铁为代表的医用磁性纳米材料具有独特的磁学性能、表面易功能化、良好的生物学相容性等特点,在纳米医学相关领域展现出巨大的应用前景,特别是近年来它作为可介导外场的智能材料,在材料设计和生物医学应用方面均取得了突破性的进展.鉴于此,本文围绕磁性氧化铁纳米材料的生物医学应用,着重介绍近年来其在磁共振影像探针、磁热和磁力效应的生物医学应用、诊疗一体化以及纳米酶催化等领域的研究进展,并对磁性纳米材料在生物医学领域未来的发展方向进行了展望.  相似文献   

2.
在过去的几年中,磁性纳米材料的快速发展对生物医学变革产生了巨大的影响。作为磁性纳米材料家族重要的一大分类,纳米级铁基氧化物由于其良好的生物相容性、表面易功能化、独特的磁学性质等特点,在生物医学相关领域展现出巨大的应用前景。本综述围绕磁场下铁基氧化物纳米材料的生物医学应用,介绍了近年来其在磁分离、磁性药物靶向(magnetic drug targeting, MDT)、磁共振成像(magnetic resonance imaging, MRI)、磁性粒子成像(magnetic particle imaging, MPI)、磁响应药物释放、磁流体热疗(magnetic fluid hyperthermia, MFH)等领域的研究进展,并对铁基氧化物纳米材料在生物医学领域未来的发展方向进行了展望。  相似文献   

3.
磁性纳米磁珠在微生物学检测中的应用   总被引:1,自引:0,他引:1  
磁性纳米材料因具有磁响应性和可修饰等特点,被广泛地应用于生物技术各领域。本文介绍了磁性纳米材料的主要合成方法和表征,对其在生物医学领域的应用,特别是在微生物检测中的应用进行了综述。  相似文献   

4.
纳米技术的兴起,对生物医学领域的变革产生了深远的影响。纳米材料是纳米技术发展的重要基础,它具有许多传统材料所不具备的独特的理化性质,因此在生物医学、传感器等重要技术领域有着广泛的应用前景。对几类常见的纳米材料包括纳米金、量子点、磁性纳米粒子、碳纳米管和硅纳米线在蛋白质、DNA、金属离子以及生物相关分子检测方面的应用进行综述。  相似文献   

5.
磁性纳米材料因其独特的理化性质在组织工程研究中被广泛地应用.本文主要从磁性纳米材料的表面化学活性、磁学性质以及生物应用磁性纳米材料的主要合成方法等几方面,综述了近年来利用磁性纳米材料设计组织工程支架材料的相关研究进展,包括纳米条件下的生长因子及相关基因的包裹和释放、机械力学刺激、干细胞追踪以及细胞图案化.  相似文献   

6.
异质结构纳米颗粒不仅可以同时拥有多种单组分纳米颗粒不同的性能,实现多功能化,还可能因组分间的相互耦合作用而产生单组分颗粒不具备的新性能,因而在化学化工、生物医学、能源催化等领域引起广泛关注.贵金属具有特殊的光学性质和催化活性;磁性纳米颗粒拥有优异的磁性能,因而备受研究人员关注.贵金属-磁性异质结构纳米材料集合了两种材料优异的性能,能通过不同的异质结构展现出不同的性质.本文根据异质结构的类型,将贵金属-磁性异质结构纳米材料分为核壳结构、蛋黄-壳结构和哑铃结构3种,总结了不同贵金属-磁性异质结构纳米颗粒的特性、制备方法及应用,并重点论述了其在诊疗一体化探针、多模态成像探针和刺激响应型药物载体生物医学领域上的应用.  相似文献   

7.
磁性纳米粒子,是一类智能型的纳米材料,因其特有的性质,被广泛应用于生物医学领域,在肝癌的治疗方面也有大量的实验性研究和成果。研究和探索磁性纳米粒子治疗肝癌的新方法和途径,有着很大的现实意义。本文就磁性纳米粒子作用于肝癌细胞的生物学效应的研究现状和进展进行总结整理,从三个方面进行了综述:磁性纳米粒子直接作用于肝癌细胞,探索磁性纳米粒子的生物相容性、在肝癌细胞的分布方式以及磁性纳米粒子本身对肝癌细胞的生物学效应的影响;磁性纳米粒子协同外加磁场(稳恒磁场、极低频交变磁场和高频交变磁场)作用于肝癌细胞;磁性纳米粒子外加修饰(磁性白蛋白纳米颗粒、纳米磁流体、磁性脂质体等),作为药物载体作用于肝癌细胞。  相似文献   

8.
铁蛋白是一种普遍存在于生物体内的储铁蛋白,具有铁离子代谢、抗氧化胁迫及消除其他过量金属离子毒害作用的功能。随着对铁蛋白结构和生化功能认识的深入,铁蛋白作为一个含有四氧化三铁核心的特殊蛋白复合体,被广泛应用于生物医学、纳米材料、生物分子成像等各种生物工程领域。该综述针对已知的主要铁蛋白分子,论述了铁蛋白的结构及酶活性机理,基于铁蛋白的多功能分子骨架应用,以及基于铁蛋白磁性的生物分子开关等热点研究,最后对铁蛋白生物工程、生物医学领域的应用和发展进行了展望。  相似文献   

9.
趋磁细菌产生的磁小体是生物膜包被的磁性纳米颗粒,具有优良的纳米磁特性;相比化学合成的磁性纳米材料,其生物来源赋予磁小体更好的生物相容性和遗传可操作性.在生物医学领域,除了用于磁热疗进行肿瘤治疗外,最近几年其作为靶向药物载体、可能参与肿瘤微环境调控的性质得到研究者的广泛关注;同时DNA重组技术的发展解决了磁小体的产率低而趋磁细菌难培养的问题.本文综述了磁小体的生物合成及其相关研究进展,并对其应用前景进行了展望.  相似文献   

10.
随着纳米技术的不断进步,人们逐渐开发出能够模拟天然抗氧化酶催化活性的无机纳米材料.这些纳米材料能够模拟过氧化物酶、过氧化氢酶、超氧化物歧化酶等天然酶的催化过程,从而调控细胞的氧化还原水平.本文从金属化合物、贵金属以及碳基纳米酶的角度,阐述了它们对细胞内活性氧(ROS)的调控作用以及在各种氧化应激相关疾病治疗中的应用.作为一种新型的模拟酶,纳米酶有望在生物医学领域中为疾病治疗提供一种新的策略.  相似文献   

11.
相比于超顺磁性纳米颗粒,具有涡旋磁畴的磁性纳米颗粒,由于独特的磁化闭合分布、较大的粒径尺寸及外加磁场中的磁化翻转特性,使得其兼具弱的颗粒间磁相互作用和更优异的磁学性能,在生物医学领域展现出了更好的应用优势和潜力.本综述结合近年来国内外对涡旋磁畴的研究及涡旋磁纳米颗粒在生物医学领域的报道,提出了一类新型的生物医用涡旋磁溶胶体系,并以涡旋磁氧化铁纳米盘和纳米环为例,介绍了涡旋磁纳米颗粒的化学合成,并着重论述了这类具有独特涡旋畴结构的纳米颗粒在磁共振成像、抗肿瘤治疗等生物医学应用上的最新研究进展.  相似文献   

12.
磁性纳米颗粒作为载体在基因转染中的研究进展   总被引:1,自引:0,他引:1  
磁性纳米颗粒具有很强的结合、浓缩与保护DNA的作用,具有超顺磁性、较高的安全性和低的免疫原性,可以结合大片段DNA,在外加磁场的作用下可实现安全、高效的基因靶向性运输,提高外源基因的转染效率。由于磁性纳米颗粒的独特性质,使得其作为非病毒载体在基因治疗中的应用进展迅速。我们简要介绍磁性纳米材料的特点、种类及结构,磁性纳米基因载体的特点,以及磁性纳米颗粒作为载体在基因转染中的应用情况。  相似文献   

13.
BACKGROUND: Biotechnology applications of magnetic gels include biosensors, targeted drug delivery, artificial muscles and magnetic buckles. These gels are produced by incorporating magnetic materials in the polymer composites. METHODS: A biocompatible magnetic gel film has been synthesized using polyvinyl alcohol. The magnetic gel was dried to generate a biocompatible magnetic film. Nanosized iron oxide particles (gamma-Fe2O3, ~7 nm) have been used to produce the magnetic gel. RESULTS: The surface morphology and magnetic properties of the gel films were studied. The iron oxide particles are superparamagnetic and the gel film also showed superparamagnetic behavior. CONCLUSION: Magnetic gel made out of crosslinked magnetic nanoparticles in the polymer network was found to be stable and possess the magnetic properties of the nanoparticles.  相似文献   

14.
Magnetic core shell nanoparticles are composed of a highly magnetic core material surrounded by a thin shell of desired drug, polymer or metal oxide. These magnetic core shell nanoparticles have a wide range of applications in biomedical research, more specifically in tissue imaging, drug delivery and therapeutics. The present review discusses the up-to-date knowledge on the various procedures for synthesis of magnetic core shell nanoparticles along with their applications in cancer imaging, drug delivery and hyperthermia or cancer therapeutics. Literature in this area shows that magnetic core shell nanoparticle-based imaging, drug targeting and therapy through hyperthermia can potentially be a powerful tool for the advanced diagnosis and treatment of various cancers.  相似文献   

15.
A method to prepare amyloid-like fibrils functionalized with magnetic nanoparticles has been developed. The amyloid-like fibrils are prepared in a two step procedure, where insulin and magnetic nanoparticles are mixed simply by grinding in the solid state, resulting in a water soluble hybrid material. When the hybrid material is heated in aqueous acid, the insulin/nanoparticle hybrid material self assembles to form amyloid-like fibrils incorporating the magnetic nanoparticles. This results in magnetically labeled amyloid-like fibrils which has been characterized by Transmission Electron Microscopy (TEM) and electron tomography. The influence of the aggregation process on proton relaxivity is investigated. The prepared materials have potential uses in a range of bio-imaging applications.  相似文献   

16.
Quantum dots (QDs) have great promise in biological imaging, and as this promise is realized, there has been increasing interest in combining the benefits of QDs with those of other materials to yield composites with multifunctional properties. One of the most common materials combined with QDs is magnetic materials, either as ions (e.g. gadolinium) or as nanoparticles (e.g. superparamagnetic iron oxide nanoparticles, SPIONs). The fluorescent property of the QDs permits visualization, whereas the magnetic property of the composite enables imaging, magnetic separation, and may even have therapeutic benefit. In this review, the synthesis of fluorescent–magnetic nanoparticles, including magnetic QDs is explored; and the applications of these materials in imaging, separations, and theranostics are discussed. As the properties of these materials continue to improve, QDs have the potential to greatly impact biological imaging, diagnostics, and treatment.  相似文献   

17.
磁性氧化铁纳米颗粒在磁共振成像方面的应用,已经在全世界范围内得到了广泛的关注,相关研究也被各国科学家高度重视.目前,磁性氧化铁纳米颗粒正在从早期的基于被动识别的肝部磁共振造影,快速转向基于主动识别的磁共振分子影像应用.本文将围绕磁性氧化铁纳米颗粒的生物体内应用,着重介绍磁性纳米颗粒的制备及其在疾病诊断,尤其是在肿瘤早期...  相似文献   

18.
Nanotechnology involves the study of nature at a very small scale, searching new properties and applications. The development of this area of knowledge affects greatly both biotechnology and medicine disciplines. The use of materials at the nanoscale, in particular magnetic nanoparticles, is currently a prominent topic in healthcare and life science. Due to their size-tunable physical and chemical properties, magnetic nanoparticles have demonstrated a wide range of applications ranging from medical diagnosis to treatment. Combining a high saturation magnetization with a properly functionalized surface, magnetic nanoparticles are provided with enhanced functionality that allows them to selectively attach to target cells or tissues and play their therapeutic role in them. In particular, iron oxide nanoparticles are being actively investigated to achieve highly efficient carcinogenic cell destruction through magnetic hyperthermia treatments. Hyperthermia in different approaches has been used combined with radiotherapy during the last decades, however, serious harmful secondary effects have been found in healthy tissues to be associated with these treatments. In this framework, nanotechnology provides a novel and original solution with magnetic hyperthermia, which is based on the use of magnetic nanoparticles to remotely induce local heat when a radiofrequency magnetic field is applied, provoking a temperature increase in those tissues and organs where the tumoral cells are present. Therefore, one important factor that determines the efficiency of this technique is the ability of magnetic nanoparticles to be driven and accumulated in the desired area inside the body. With this aim, magnetic nanoparticles must be strategically surface functionalized to selectively target the injured cells and tissues.  相似文献   

19.
Magnetic particles have been used widely in both biotechnological and medical fields, including for immunoassay, enzyme immobilization, drug transport, and immunological diagnosis. Especially particles with bioactive molecules such as antibodies and streptavidin are very useful tools for cell separation. Here we report affinity selection of neutrophils and macrophages from peritoneal inflammatory cells performed by thermoresponsive magnetic nanoparticles conjugated with macrophage-specific anti-F4/80 antibody. The magnetic nanoparticles, which are capped with thermoresponsive polymers, are aggregated by heating the particles over 30 degrees C and show their intrinsic magnetism. The neutrophils are concentrated approximately 90% by these magnetic nanoparticles without any activation, indicating that this novel cell separation method could fulfill a wide range of applications in analysis of the isolation of fragile cells such as neutrophils.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号