生物相容性
材料科学
纳米技术
动力学(音乐)
生物相容性材料
阿尔茨海默病
生物医学工程
动物模型
分子动力学
神经科学
血脑屏障
生物物理学
淀粉样β
背景(考古学)
神经退行性变
模型系统
作者
Serafin Zawadzki,Elżbieta Okła,Sylwia Michlewska,Radosław Bednarek,Paula Ortega,F. Javier de la Mata,Juris Jansons,D Skrastina,Madara Kreišmane,Vladimirs Piļipenko,Baiba Jansone,Максим Йонов,Maria Bryszewska,Katarzyna Miłowska
标识
DOI:10.1021/acsami.6c06099
摘要
High Resolution Image Download MS PowerPoint Slide Blood–brain barrier (BBB) transport remains a primary constraint on achieving predictable central nervous system exposure for Alzheimer’s disease (AD) therapeutics, motivating the evaluation of delivery platforms with barrier-resolved and functionally relevant end points. We assessed a carbosilane dendrimer (G3Si PEG6000) and its siRNA dendriplex using a tiered, upstream strategy spanning cell internalization, DNA damage screening, BBB model integrity and permeability, and in vivo AD-relevant murine model learning. At the cellular level, the dendrimer enhanced intracellular siRNA-associated signal with predominantly cytoplasmic localization, and siRNA complexation attenuated genotoxicity relative to the noncomplexed carrier. In a BBB triculture model, barrier function was preserved without sustained transendothelial electrical resistance (TEER) loss, and complementary tracer flux readouts showed time- and formulation-dependent, nonmonotonic changes, including TEER–permeability decoupling consistent with nonuniform perturbation and time-dependent changes in barrier-associated paracellular responses. In APOE4 knock-in mice, dendriplex treatment increased platform-zone crossings in the Morris Water Maze probe trial, whereas target-quadrant time showed only a modest, nonsignificant trend. Collectively, these integrated results indicate that siRNA complexation improves the BBB-relevant safety-performance balance of G3Si PEG6000 and supports further studies that directly link brain exposure and target engagement to cognitive outcomes.
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