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首页> 外文期刊>International Journal of Pharmaceutics >Self-assembled drug delivery systems 1. Properties and in vitro/in vivo behavior of acyclovir self-assembled nanoparticles (SAN).
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Self-assembled drug delivery systems 1. Properties and in vitro/in vivo behavior of acyclovir self-assembled nanoparticles (SAN).

机译:自组装药物递送系统1.阿昔洛韦自组装纳米颗粒(SAN)的特性和体外/体内行为。

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Self-assembled drug delivery systems (SADDS) were designed in the paper. They can be prepared from the amphiphilic conjugates of hydrophilic drugs and lipids through self-assembling into small-scale aggregates in aqueous media. The outstanding characteristic of SADDS is that they are nearly wholly composed of amphiphilic prodrugs. The self-assembled nanoparticles (SAN) as one of SADDS had been prepared from the lipid derivative of acyclovir (SGSA) in the previous paper. They were further studied on the properties and the in vitro/in vivo behavior in this paper. The SAN kept the physical state stable upon centrifugation or some additives including some inorganic salts, alkaline solutions, surfactants and liposomes except for HCl solution, CaCl(2) solution and animal plasma. Autoclave and bath heat for sterilization hardly influenced the SAN. However, gamma-irradiation strongly destroyed the structure of SAN and SGSA was degraded. SGSA in SAN showed good stability in weak acidic or neutral buffers although it was very sensitive to alkaline solutions and carboxylester enzymes, the half-lives (t(1/2)) of which in the buffer at pH 7.4, the alkaline solution at pH 12.0, pig liver carboxylester enzyme solution, rabbit plasma, and rabbit liver tissue homogenate were 495, 21, 4.7, 25 and 8.7h, respectively. Compared with SGSA in a disordered state, the specific bilayer structures of SAN could protect SGSA from hydrolysis through hiding the sensitive ester bonds. The SAN showed hemolytic action because the amphiphilic SGSA could insert into rabbit erythrocyte membranes. Both the high concentration of SGSA in samples and the long incubation time improved hemolysis. No hemolysis was observed if the additional volume of the SAN was less than 10% of rabbit whole blood in spite of the high concentration of SGSA. Plasma proteins could interfere the interaction between the SAN and erythrocytes by binding the SAN. The in vitro antiviral activity of acyclovir SAN was limited possibly because of the weak hydrolysis of SGSA in Vero cells, and the SAN showed a little cell toxicity possible due to the amphiphilicity of SGSA. A macrophage cell line of QXMSC1 cells showed uptake of the SAN but not significantly. The SAN were rapidly removed from blood circulation after bolus iv administration to rabbits with the very short distribution t(1/2) (1.5min) and the elimination t(1/2) (47min). The SAN were mainly distributed in liver, spleen and lung after iv administration, and SGSA was eliminated slowly in these tissues (t(1/2), about 7h). It would appear that the nanosized SAN were trapped by the mononuclear phagocyte system. SADDS including SAN combine prodrugs, molecular self-assembly with nanotechnology, and hopefully become novel drug delivery approaches.
机译:本文设计了自组装药物递送系统(SADDS)。它们可以由亲水性药物和脂质的两亲结合物通过在水性介质中自组装成小规模的聚集体来制备。 SADDS的突出特点是它们几乎完全由两亲前药组成。在以前的论文中,自阿昔洛韦的脂质衍生物(SGSA)制备了自组装的纳米颗粒(SAN)作为SADDS之一。在本文中对它们的性质和体外/体内行为进行了进一步研究。 SAN离心后或某些添加剂(包括某些无机盐,碱性溶液,表面活性剂和脂质体)(除了HCl溶液,CaCl(2)溶液和动物血浆)保持物理状态稳定。高压灭菌器和用于消毒的浴热几乎不会影响SAN。但是,γ射线强烈破坏了SAN的结构,SGSA退化了。 SAN中的SGSA在弱酸性或中性缓冲液中表现出良好的稳定性,尽管它对碱性溶液和羧酸酯酶非常敏感,其半衰期(t(1/2))在缓冲液中的pH值为7.4,在碱性溶液中的pH为7.4。猪肝羧酸酯酶溶液12.0,兔血浆和兔肝组织匀浆分别为495h,21h,4.7h,25h和8.7h。与无序状态的SGSA相比,SAN的特定双层结构可以通过隐藏敏感的酯键来保护SGSA免受水解。 SAN具有溶血作用,因为两亲性SGSA可以插入兔的红细胞膜中。样品中高浓度的SGSA和较长的孵育时间都改善了溶血作用。尽管SGSA浓度很高,但如果SAN的额外体积少于兔子全血的10%,则未观察到溶血。血浆蛋白可通过结合SAN来干扰SAN与红细胞之间的相互作用。由于SGSA在Vero细胞中的弱水解作用,无环鸟苷SAN的体外抗病毒活性可能受到限制,并且由于SGSA的两亲性,SAN表现出很小的细胞毒性。 QXMSC1细胞的巨噬细胞系显示出对SAN的摄取,但没有显着增加。静脉推注兔子后,SAN迅速从血液循环中去除,分布时间很短,t(1/2)(1.5min),消除t(1/2)(47min)。静脉注射后,SAN主要分布在肝脏,脾脏和肺部,并且在这些组织中SGSA缓慢消除(t(1/2),约7h)。看起来纳米大小的SAN被单核吞噬细胞系统捕获。包括SAN在内的SADDS结合了前药,分子自组装和纳米技术,并有望成为新颖的药物递送方法。

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