Strategy to enhance transgene expression in proximity of amyloid plaques in a mouse model of Alzheimer's disease

转基因 绿色荧光蛋白 胶质纤维酸性蛋白 转基因小鼠 分子生物学 生物 病理 阿尔茨海默病 基因表达 血脑屏障 化学 癌症研究 免疫组织化学 基因 医学 中枢神经系统 神经科学 生物化学 疾病
作者
Danielle Weber‐Adrian,Anurag Tandon,Josephine Wing Yee Chan,Joseph Silburt,Zeinab Noroozian,Sebastian Kügler,Kullervo Hynynen,Isabelle Aubert
出处
期刊:Theranostics [Ivyspring International Publisher]
卷期号:9 (26): 8127-8137 被引量:28
标识
DOI:10.7150/thno.36718
摘要

Gene therapy can be designed to efficiently counter pathological features characteristic of neurodegenerative disorders. Here, we took advantage of the glial fibrillary acidic protein (GFAP) promoter to preferentially enhance transgene expression near plaques composed of amyloid-beta peptides (Aβ), a hallmark of Alzheimer's disease (AD), in the TgCRND8 mouse model of amyloidosis. Methods: The delivery of intravenously injected recombinant adeno-associated virus mosaic serotype 1/2 (rAAV1/2) to the cortex and hippocampus of TgCRND8 mice was facilitated using transcranial MRI-guided focused ultrasound in combination with microbubbles (MRIgFUS), which transiently and locally increases the permeability of the blood-brain barrier (BBB). rAAV1/2 expression of the reporter green fluorescent protein (GFP) under a GFAP promoter was compared to GFP expression driven by the constitutive human beta actin (HBA) promoter. Results: MRIgFUS targeting the cortex and hippocampus facilitated the entry of rAAV1/2 and GFP expression under the GFAP promoter was localized to GFAP-positive astrocytes. Adjacent to Aβ plaques where GFAP is upregulated, the volume, surface area, and fluorescence intensity of the transgene GFP were greater in rAAV1/2-GFAP-GFP compared to rAAV1/2-HBA-GFP treated animals. In peripheral organs, GFP expression was particularly strong in the liver, irrespective of the promoter. Conclusion: The GFAP promoter enhanced transgene expression in proximity of Aβ plaques in the brain of TgCRND8 mice, and it also resulted in significant expression in the liver. Future gene therapies for neurological disorders could benefit from using a GFAP promoter to regulate transgene expression in response to disease-induced astrocytic reactivity.
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