IF 5.7 3区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Nuo Xu, Julie Wixey, Kirat Chand, Megan Wong, Elizabeth Nance
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引用次数: 0

摘要

在发达国家,胎儿生长受限(FGR)影响着5%到10%的孕妇,是围产期死亡和发病的第二大主要原因。胎儿生长受限的终身后果包括从学习和行为问题到脑瘫。为支持新生儿大脑的发育,需要及时和方便的神经保护策略。姜黄素负载的聚合物纳米粒子已被广泛用于治疗癌症、神经系统疾病和细菌感染,它有可能预防和减轻 FGR 脑部的致病性炎症过程。姜黄素是一种疏水分子,水溶性较差,因此已被纳入纳米颗粒中以提高溶解性和输送性。然而,姜黄素在许多纳米颗粒中的含量可能被限制在 10%(重量)或更低。在这里,我们首先优化了姜黄素负载聚合物纳米粒子的配制过程,以找到一种姜黄素负载量高、封装效率高的可调、可重现且稳定的配方。我们建立了一种姜黄素含量为 39%、姜黄素封装效率大于 95% 的姜黄素配方。利用这种配方,我们按照不同的给药途径评估了聚合物纳米颗粒在FGR仔猪和正常生长(NG)仔猪体内的生物分布情况,并评估了脑细胞摄取情况。我们发现,早在鼻内给药后 4 小时,纳米颗粒就在新生仔猪的脑实质中大量聚集。纳米颗粒在小胶质细胞中聚集,而小胶质细胞是FGR脑损伤的治疗目标。这项研究证明了姜黄素纳米颗粒治疗新生儿FGR相关神经炎症的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nano-formulated curcumin uptake and biodistribution in the fetal growth restricted newborn piglet brain.

Fetal growth restriction (FGR) affects 5% to 10% of all pregnancies in developed countries and is the second most leading cause of perinatal mortality and morbidity. Life-long consequences of FGR range from learning and behavioral issues to cerebral palsy. To support the newborn brain following FGR, timely and accessible neuroprotection strategies are needed. Curcumin-loaded polymeric nanoparticles, which have been widely explored for the treatment of cancer, neurological disorders, and bacterial infections, have the potential to prevent and mitigate pathogenic inflammatory processes in the FGR brain. Curcumin is a hydrophobic molecule with poor aqueous solubility and therefore has been incorporated into nanoparticles to improve solubility and delivery. However, curcumin loading in many nanoparticles can be limited to 10% by weight or lower. Here, we first optimize the formulation process of curcumin-loaded polymeric nanoparticles to find a tunable, reproducible, and stable formulation with high curcumin loading and encapsulation efficiency. We establish a curcumin formulation with 39% curcumin loading and > 95% curcumin encapsulation efficiency. Using this formulation, we assessed the biodistribution of polymeric nanoparticles in FGR piglets and normally grown (NG) piglets following different administration routes and evaluated brain cellular uptake. We show a significant amount of nanoparticle accumulation in the brain parenchyma of neonatal piglets as early as 4 h after intranasal administration. Nanoparticles colocalized in microglia, a therapeutic target of interest in FGR brain injury. This study demonstrates the potential of curcumin-loaded nanoparticles to treat neuroinflammation associated with FGR in the newborn.

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来源期刊
Drug Delivery and Translational Research
Drug Delivery and Translational Research MEDICINE, RESEARCH & EXPERIMENTALPHARMACOL-PHARMACOLOGY & PHARMACY
CiteScore
11.70
自引率
1.90%
发文量
160
期刊介绍: The journal provides a unique forum for scientific publication of high-quality research that is exclusively focused on translational aspects of drug delivery. Rationally developed, effective delivery systems can potentially affect clinical outcome in different disease conditions. Research focused on the following areas of translational drug delivery research will be considered for publication in the journal. Designing and developing novel drug delivery systems, with a focus on their application to disease conditions; Preclinical and clinical data related to drug delivery systems; Drug distribution, pharmacokinetics, clearance, with drug delivery systems as compared to traditional dosing to demonstrate beneficial outcomes Short-term and long-term biocompatibility of drug delivery systems, host response; Biomaterials with growth factors for stem-cell differentiation in regenerative medicine and tissue engineering; Image-guided drug therapy, Nanomedicine; Devices for drug delivery and drug/device combination products. In addition to original full-length papers, communications, and reviews, the journal includes editorials, reports of future meetings, research highlights, and announcements pertaining to the activities of the Controlled Release Society.
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