An Engineered Adeno-Associated Virus Capsid Mediates Efficient Transduction of Pericytes and Smooth Muscle Cells of the Brain Vasculature

转导(生物物理学) 衣壳 神经退行性变 生物 细胞生物学 腺相关病毒 转基因 共域化 神经科学 病理 病毒学 病毒 医学 载体(分子生物学) 基因 重组DNA 疾病 生物化学 遗传学
作者
Servio H. Ramirez,Jonathan F. Hale,Siobhán McCarthy,Christian L. Lino Cardenas,Kalpani N. Udeni Galpayage Dona,Killian S. Hanlon,Eloïse Hudry,Demitri de la Cruz,Carrie Ng,Sabyasachi Das,Diane M. Nguyen,Josette Nammour,Rachel E. Bennett,Allison M. Andrews,Patricia Musolino,Casey A. Maguire
出处
期刊:Human Gene Therapy [Mary Ann Liebert, Inc.]
卷期号:34 (15-16): 682-696 被引量:11
标识
DOI:10.1089/hum.2022.211
摘要

Neurodegeneration and cerebrovascular disease share an underlying microvascular dysfunction that may be remedied by selective transgene delivery. To date, limited options exist in which cellular components of the brain vasculature can be effectively targeted by viral vector therapeutics. In this study, we characterize the first engineered adeno-associated virus (AAV) capsid mediating high transduction of cerebral vascular pericytes and smooth muscle cells (SMCs). We performed two rounds of in vivo selection with an AAV capsid scaffold displaying a heptamer peptide library to isolate capsids that traffic to the brain after intravenous delivery. One identified capsid, termed AAV-PR, demonstrated high transduction of the brain vasculature, in contrast to the parental capsid, AAV9, which transduces mainly neurons and astrocytes. Further analysis using tissue clearing, volumetric rendering, and colocalization revealed that AAV-PR enabled high transduction of cerebral pericytes located on small-caliber vessels and SMCs in the larger arterioles and penetrating pial arteries. Analysis of tissues in the periphery indicated that AAV-PR also transduced SMCs in large vessels associated with the systemic vasculature. AAV-PR was also able to transduce primary human brain pericytes with higher efficiency than AAV9. Compared with previously published AAV capsids tropisms, AAV-PR represents the first capsid to allow for effective transduction of brain pericytes and SMCs and offers the possibility of genetically modulating these cell types in the context of neurodegeneration and other neurological diseases.
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