DPPC

DPPC
  • 文章类型: Journal Article
    分形在量化自然界的几何复杂性方面非常成功,并抓住了科学界的想象力。分形维数及其应用的发展已经在各种生物医学应用中产生了显著的结果。这篇综述涉及分形在制药科学中的应用,并试图说明制药技术领域最重要的发展。特别是先进的药物输送纳米系统和生物制药和药代动力学。此外,分形动力学,已经应用于酶动力学,药物代谢和吸收,介绍了药代动力学和药效学。这篇综述还考虑了使用分形分析的潜在好处以及非线性的考虑,缩放,和混沌作为校准工具,以获取信息和更真实的描述药物科学的不同部分。作为结论,本工作的目的是强调分形几何的存在几乎所有领域的药物研究。
    Fractals have been very successful in quantifying nature\'s geometrical complexity, and have captured the imagination of scientific community. The development of fractal dimension and its applications have produced significant results across a wide variety of biomedical applications. This review deals with the application of fractals in pharmaceutical sciences and attempts to account the most important developments in the fields of pharmaceutical technology, especially of advanced Drug Delivery nano Systems and of biopharmaceutics and pharmacokinetics. Additionally, fractal kinetics, which has been applied to enzyme kinetics, drug metabolism and absorption, pharmacokinetics and pharmacodynamics are presented. This review also considers the potential benefits of using fractal analysis along with considerations of nonlinearity, scaling, and chaos as calibration tools to obtain information and more realistic description on different parts of pharmaceutical sciences. As a conclusion, the purpose of the present work is to highlight the presence of fractal geometry in almost all fields of pharmaceutical research.
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  • 文章类型: Comparative Study
    Lipid-polymer hybrid nanoparticles (LPNs) are core-shell nanoparticle structures comprising polymer cores and lipid/lipid-PEG shells, which exhibit complementary characteristics of both polymeric nanoparticles and liposomes, particularly in terms of their physical stability and biocompatibility. Significantly, the LPNs have recently been demonstrated to exhibit superior in vivo cellular delivery efficacy compared to that obtained from polymeric nanoparticles and liposomes. Since their inception, the LPNs have advanced significantly in terms of their preparation strategy and scope of applications. Their preparation strategy has undergone a shift from the conceptually simple two-step method, involving preformed polymeric nanoparticles and lipid vesicles, to the more principally complex, yet easier to perform, one-step method, relying on simultaneous self-assembly of the lipid and polymer, which has resulted in better products and higher production throughput. The scope of LPNs\' applications has also been extended beyond single drug delivery for anticancer therapy, to include combinatorial and active targeted drug deliveries, and deliveries of genetic materials, vaccines, and diagnostic imaging agents. This review details the current state of development for the LPNs preparation and applications from which we identify future research works needed to bring the LPNs closer to its clinical realization.
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