Nanoparticle-mediated delivery of placental gene therapy via uterine artery catheterization in a pregnant rhesus macaque.

IF 3 2区 医学 Q2 DEVELOPMENTAL BIOLOGY
Jenna K Schmidt, Rebecca L Wilson, Baylea N Davenport, Timothy A Hacker, Casey Fitz, Heather A Simmons, Michele L Schotzko, Thaddeus G Golos, Helen N Jones
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Abstract

Nanoparticles offer promise as a mechanism to non-invasively deliver targeted placental therapeutics. Our previous studies utilizing intraplacental administration demonstrate efficient nanoparticle uptake into placental trophoblast cells and overexpression of human IGF1 (hIGF1). Nanoparticle-mediated placental overexpression of hIGF1 in small animal models of placental insufficiency and fetal growth restriction improved nutrient transport and restored fetal growth. The objective of this pilot study was to extend these studies to the pregnant nonhuman primate and develop a method for local delivery of nanoparticles to the placenta via maternal blood flow from the uterine artery. Nanoparticles containing hIGF1 plasmid driven by the placenta-specific PLAC1 promoter were delivered to a mid-gestation pregnant rhesus macaque via a catheterization approach that is clinically used for uterine artery embolization. Maternal-fetal interface, fetal and maternal tissues were collected four days post-treatment to evaluate the efficacy of hIGF1 treatment in the placenta. The uterine artery catheterization procedure and nanoparticle treatment was well tolerated by the dam and fetus through the four-day study period following catheterization. Nanoparticles were taken up by the placenta from maternal blood as plasmid-specific hIGF1 expression was detected in multiple regions of the placenta via in situ hybridization and qPCR. The uterine artery catheterization approach enabled successful delivery of nanoparticles to maternal circulation in close proximity to the placenta with no concerns to maternal or fetal health in this short-term feasibility study. In the future, this delivery approach can be used for preclinical evaluation of the long-term safety and efficacy of nanoparticle-mediated placental therapies in a rhesus macaque model.

以纳米粒子为介质,通过子宫动脉导管为怀孕猕猴提供胎盘基因治疗。
纳米颗粒有望成为一种非侵入性胎盘靶向治疗药物。我们之前利用胎盘内给药进行的研究表明,纳米颗粒能被胎盘滋养层细胞有效吸收,并能过表达人 IGF1(hIGF1)。在胎盘功能不全和胎儿生长受限的小动物模型中,纳米颗粒介导的胎盘过表达 hIGF1 可改善营养运输并恢复胎儿生长。本试验研究的目的是将这些研究扩展到怀孕的非人灵长类动物,并开发一种通过母体子宫动脉血流将纳米颗粒局部输送到胎盘的方法。通过临床上用于子宫动脉栓塞的导管法,将含有由胎盘特异性 PLAC1 启动子驱动的 hIGF1 质粒的纳米粒子输送到妊娠中期的猕猴体内。治疗后四天收集母胎界面、胎儿和母体组织,以评估 hIGF1 在胎盘中的疗效。在子宫动脉导管插入术后四天的研究期间,母体和胎儿对子宫动脉导管插入术和纳米粒子治疗的耐受性良好。通过原位杂交和 qPCR,在胎盘的多个区域检测到了质粒特异性 hIGF1 表达,胎盘从母体血液中吸收了纳米粒子。在这项短期可行性研究中,子宫动脉导管法成功地将纳米粒子输送到母体血液循环中的胎盘附近,对母体和胎儿的健康没有任何影响。今后,这种输送方法可用于在猕猴模型中对纳米粒子介导的胎盘疗法的长期安全性和有效性进行临床前评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Placenta
Placenta 医学-发育生物学
CiteScore
6.30
自引率
10.50%
发文量
391
审稿时长
78 days
期刊介绍: Placenta publishes high-quality original articles and invited topical reviews on all aspects of human and animal placentation, and the interactions between the mother, the placenta and fetal development. Topics covered include evolution, development, genetics and epigenetics, stem cells, metabolism, transport, immunology, pathology, pharmacology, cell and molecular biology, and developmental programming. The Editors welcome studies on implantation and the endometrium, comparative placentation, the uterine and umbilical circulations, the relationship between fetal and placental development, clinical aspects of altered placental development or function, the placental membranes, the influence of paternal factors on placental development or function, and the assessment of biomarkers of placental disorders.
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