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唾液酸依赖性的调节影响腺相关病毒在中枢神经系统中的转导特征。

Modulation of Sialic Acid Dependence Influences the Central Nervous System Transduction Profile of Adeno-associated Viruses.

机构信息

Curriculum in Genetics and Molecular Biology, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.

Gene Therapy Center, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.

出版信息

J Virol. 2019 May 15;93(11). doi: 10.1128/JVI.00332-19. Print 2019 Jun 1.

Abstract

Central nervous system (CNS) transduction by systemically administered recombinant adeno-associated viral (AAV) vectors requires crossing the blood-brain barrier (BBB). We recently mapped a structural footprint on the AAVrh.10 capsid, which, when grafted onto the AAV1 capsid (AAV1RX), enables viral transport across the BBB; however, the underlying mechanisms remain unknown. Here, we establish through structural modeling that this footprint overlaps in part the sialic acid (SIA) footprint on AAV1. We hypothesized that altered SIA-capsid interactions may influence the ability of AAV1RX to transduce the CNS. Using AAV1 variants with altered SIA footprints, we map functional attributes of these capsids to their relative SIA dependence. Specifically, capsids with ablated SIA binding can penetrate and transduce the CNS with low to moderate efficiency. In contrast, AAV1 shows strong SIA dependency and does not transduce the CNS after systemic administration and, instead, transduces the vasculature and the liver. The AAV1RX variant, which shows an intermediate SIA binding phenotype, effectively enters the brain parenchyma and transduces neurons at levels comparable to the level of AAVrh.10. In corollary, the reciprocal swap of the AAV1RX footprint onto AAVrh.10 (AAVRX1) attenuated CNS transduction relative to that of AAVrh.10. We conclude that the composition of residues within the capsid variable region 1 (VR1) of AAV1 and AAVrh.10 profoundly influences tropism, with altered SIA interactions playing a partial role in this phenotype. Further, we postulate a Goldilocks model, wherein optimal glycan interactions can influence the CNS transduction profile of AAV capsids. Understanding how viruses cross the blood-brain barrier can provide insight into new approaches to block infection by pathogens or the ability to exploit these pathways for designing new recombinant viral vectors for gene therapy. In this regard, modulation of virus-carbohydrate interactions by mutating the virion shell can influence the ability of recombinant viruses to cross the vascular barrier, enter the brain, and enable efficient gene transfer to neurons.

摘要

中枢神经系统 (CNS) 的转导需要通过全身给予重组腺相关病毒 (AAV) 载体来实现,这需要跨越血脑屏障 (BBB)。我们最近在 AAVrh.10 衣壳上绘制了一个结构足迹,当将其移植到 AAV1 衣壳 (AAV1RX) 上时,可使病毒穿过 BBB;但是,其潜在的机制尚不清楚。在这里,我们通过结构建模确定,该足迹与 AAV1 上的唾液酸 (SIA) 足迹部分重叠。我们假设改变 SIA-衣壳相互作用可能会影响 AAV1RX 转导 CNS 的能力。使用具有改变的 SIA 足迹的 AAV1 变体,我们将这些衣壳的功能属性映射到其相对 SIA 依赖性上。具体来说,具有消融 SIA 结合能力的衣壳可以低效率到中等效率穿透并转导 CNS。相比之下,AAV1 显示出强烈的 SIA 依赖性,并且在全身给予后不会转导 CNS,而是转导血管和肝脏。AAV1RX 变体显示出中等 SIA 结合表型,可有效地进入脑实质并以与 AAVrh.10 相当的水平转导神经元。相应地,将 AAV1RX 变体的足迹交换到 AAVrh.10 上(AAVRX1)会相对于 AAVrh.10 减弱 CNS 转导。我们得出结论,AAV1 和 AAVrh.10 的衣壳可变区 1 (VR1) 中的残基组成深刻地影响了亲嗜性,改变的 SIA 相互作用在该表型中起部分作用。此外,我们提出了一个金发姑娘模型,其中最佳聚糖相互作用可以影响 AAV 衣壳的 CNS 转导谱。了解病毒如何穿过血脑屏障可以为阻止病原体感染或利用这些途径设计用于基因治疗的新重组病毒载体提供新的方法。在这方面,通过突变病毒壳来调节病毒-碳水化合物相互作用可以影响重组病毒穿过血管屏障,进入大脑并使基因有效转移到神经元的能力。

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