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    Acetoxy DMU-loaded carboxymethylchitosan nanocapsules: preparation and in vitro release evaluation followed by an analytical methodology validation
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    Abstract:
    Acetoxy DMU (Ac.DMU – 1,2,3-trimethoxy-5-(4-acetoxystyryl) benzene) is a potential new drug, compared to resveratrol, due to its improved pharmacokinetic properties. Nanoencapsulation using Ac.DMU and carboxymethylchitosan (CMCh) polymer is a promising alternative for improving the bioavailability of drugs in human bodies. Nanocapsules (NCs) based on CMCh with Ac.DMU (Ac.DMU-NCs) by emulsion solvent diffusion technique in different drug-to-polymer ratios have been prepared with encapsulation efficiency of 69.4% and 51.5% and characterized by dynamic light scattering, ζ-potential, and infrared spectroscopy techniques. In vitro release experiments of free Ac.DMU and Ac.DMU-NCs showed an improvement in the solubility of Ac.DMU by NCs, enabling a fast drug release rate. In addition, the method was validated through analyses of specificity, linearity, limit of detection and quantification, accuracy, and precision according to the standards suggested by the International Conference on Harmonization. UV–Vis spectroscopy used to quantify Ac.DMU ensured reliable results for the amount of encapsulated Ac.DMU. The results suggest a promising potential of NCs as carriers of the hydrophobic drug Ac.DMU for controlled release.
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    Nanocapsules
    芳香支撑版本的棉花织物被在棉花上直接完成玫瑰芬芳 nanocapsules 准备。nanocapsules 的结构和性质被传播电子显微镜(TEM ) 表明,散布的动态光(DLS ) , fourier 变换红外线的分光计(FTIR ) , X 光检查衍射(XRD ) ,煤气的层析团 spectrometry (GCMS ) 和电子鼻子。结果证明球形的 nanocapsule 均匀地分散了,平均直径把 51.4 作为 nm。存在咕咕叫在完成的棉花织物的 FTIR 曲线和 crystallinity 的减少的山峰(1741 cm1 ) 证明玫瑰芬芳 nanocapsules 被合并了到棉花织物。51.4 nm nanocapsules 完成的棉花织物的洗的抵抗独自由玫瑰芬芳是比那好一些的。而且,从 51.4 nm nanocapsules 完成的棉花织物的芬芳的损失由 532 nm nanocapsules 和玫瑰芬芳显然是比那低的。越小 nanocapsule 尺寸,越更好持续版本性质。也显示的电子鼻子分析没有洗,免除棉花织物的芳香在洗以后由 nanocapsules 完成了,这没与那相对照有明显的变化。棉花织物由 nanocapsules 完成了有优秀持续版本性质。
    Nanocapsules
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    Among the various nano-objects, hollow nanocapsule systems offer fascinating formulations for biomedical applications. The hollow nanocapsule structures in this paper are divided into five different categories depending on their formation mechanism and structural components: (1) liposomes, (2) polymersomes and other polymeric hollow nanocapsules, (3) template-based hollow micro- and nanocapsules, (4) metallic hollow nanocapsules, and (5) other types of hollow nanocapsules. This feature article discusses the overall research trends in the design and applications of photofunctional hollow nanocapsules typically related to photodynamic therapy and photo-induced drug delivery.
    Nanocapsules
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    This chapter contains sections titled: Introduction First Generation Nanocapsules Second Generation Nanocapsules Third Generation Nanocapsules Fourth Generation Nanocapsules Fifth Generation Nanocapsules Sixth Generation Nanocapsules From Spheres to Tubes Conclusions References
    Nanocapsules
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    Nanocapsules
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    Nanometre
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    Temperature-sensitive nanocapsules were prepared using SiO2 as template and N-isopropylacrylamide(NIPAm) as temperature-sensitive polymer,respectively.And the characterizations were investigated by TEM,FT-IR,TGR and UV techniques.Nanocapsules were applied to load of malachite green.The results indicated that NIPAm was grafted successfully onto the surface of SiO2.The nanocapsules were formed after removal of SiO2 by HF solutions.The nanocapsules have the ability of reversible temperature-sensitive with higher loading capability.Thus,the application of such temperature-sensitive nanocapsules might offer a potential technology for drug delivery.
    Nanocapsules
    Malachite green
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    结构,磁性并且微波吸收性质石墨涂(Fe, Ni ) 合金 nanocapsules,由弧分泌物方法综合了,被学习了。高分辨率的传播电子显微镜学证明 nanocapsules 有核心 / 壳结构与(Fe, Ni ) 合金作为核心和石墨作为壳。所有(Fe, Ni ) 合金 nanocapsules/paraffin composites 表演好微波吸收性质。最佳的思考损失( RL )被作出对有利的裁决( Fe70Ni30 ) /C nanocapsules/paraffin composites ,是在为 1.99 公里的吸收器厚度的 14.6 GHz 的 47.84 dB ,当超过 10 dB 的 RL 价值在 12.417.4 GHz 被发现时,变化,它几乎盖住 Ku 乐队( 12.418 GHz )。为(Fe70Ni30 )/C nanocapsules/paraffin composites, RL 价值能与 1.91 公里的吸收器厚度在 11.418 GHz 范围超过 10 dB,它盖住整个 Ku 乐队。
    Nanocapsules
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