Paramasivam Gokul, Kayambu Namitharan, Rabel Arul Maximus, Sundramoorthy Ashok K, Sundaramurthy Anandhakumar
SRM Research Institute, SRM University, Kattankulathur 603203, Kanchipuram, Tamil Nadu, India.
SRM Research Institute, SRM University, Kattankulathur 603203, Kanchipuram, Tamil Nadu, India; Department of Chemistry, SRM University, Kattankulathur 603203, Kanchipuram, Tamil Nadu, India.
Acta Biomater. 2017 Feb;49:45-65. doi: 10.1016/j.actbio.2016.11.066. Epub 2016 Nov 30.
Anisotropic nanoparticles have fascinated scientists and engineering communities for over a century because of their unique physical and chemical properties. In recent years, continuous advances in design and fabrication of anisotropic nanoparticles have opened new avenues for application in various areas of biology, chemistry and physics. Anisotropic nanoparticles have the plasmon absorption in the visible as well as near-infrared (NIR) region, which enables them to be used for crucial applications such as biological imaging, medical diagnostics and therapy ("theranostics"). Here, we describe the progress in anisotropic nanoparticles achieved since the millennium in the area of preparation including various shapes and modification of the particle surface, and in areas of application by providing examples of applications in biosensing, bio-imaging, drug delivery and theranostics. Furthermore, we also explain various mechanisms involved in cellular uptake of anisotropic nanoparticles, and conclude with our opinion on various obstacles that limit their applications in biomedical field.
Anisotropy at the molecular level has always fascinated scientists and engineering communities for over a century, however, the research on novel methods through which shape and size of nanoparticles can be precisely controlled has opened new avenues for anisotropic nanoparticles in various areas of biology, chemistry and physics. In this manuscript, we describe progress achieved since the millennium in the areas of preparation of various shapes of anisotropic nanoparticles, investigate various methods involved in modifying the surface of these NPs, and provide examples of applications in biosensing and bio-imaging, drug delivery and theranostics. We also present mechanisms involved in cellular uptake of nanoparticles, describe different methods of preparation of anisotropic nanoparticles including biomimetic and photochemical synthesis, and conclude with our opinion on various obstacles that limit their applications in biomedical field.
一个多世纪以来,各向异性纳米颗粒因其独特的物理和化学性质一直吸引着科学家和工程界。近年来,各向异性纳米颗粒在设计和制造方面的不断进步为其在生物学、化学和物理学等各个领域的应用开辟了新途径。各向异性纳米颗粒在可见光以及近红外(NIR)区域具有等离子体吸收特性,这使其能够用于生物成像、医学诊断和治疗(“治疗诊断学”)等关键应用。在此,我们描述了自千禧年以来在各向异性纳米颗粒制备领域所取得的进展,包括各种形状以及颗粒表面的修饰,并通过提供生物传感、生物成像、药物递送和治疗诊断学方面的应用实例来说明其应用领域。此外,我们还解释了各向异性纳米颗粒细胞摄取所涉及的各种机制,并对限制其在生物医学领域应用的各种障碍发表了我们的看法。
分子水平的各向异性在一个多世纪以来一直吸引着科学家和工程界,然而,关于能够精确控制纳米颗粒形状和尺寸的新方法的研究为各向异性纳米颗粒在生物学、化学和物理学的各个领域开辟了新途径。在本手稿中,我们描述了自千禧年以来在制备各种形状的各向异性纳米颗粒方面所取得的进展,研究了修饰这些纳米颗粒表面所涉及的各种方法,并提供了生物传感和生物成像、药物递送和治疗诊断学方面的应用实例。我们还介绍了纳米颗粒细胞摄取所涉及的机制,描述了包括仿生和光化学合成在内的各向异性纳米颗粒的不同制备方法,并对限制其在生物医学领域应用的各种障碍发表了我们的看法。