Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA.
Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA, USA.
Nat Biotechnol. 2023 Sep;41(9):1272-1286. doi: 10.1038/s41587-022-01648-w. Epub 2023 Jan 26.
A barrier to advancing engineered adeno-associated viral vectors (AAVs) for precision access to cell subtypes is a lack of high-throughput, high-resolution assays to characterize in vivo transduction profiles. In this study, we developed an ultrasensitive, sequential fluorescence in situ hybridization (USeqFISH) method for spatial transcriptomic profiling of endogenous and viral RNA with a short barcode in intact tissue volumes by integrating hydrogel-based tissue clearing, enhanced signal amplification and multiplexing using sequential labeling. Using USeqFISH, we investigated the transduction and cell subtype tropisms across mouse brain regions of six systemic AAVs, including AAV-PHP.AX, a new variant that transduces robustly and efficiently across neurons and astrocytes. Here we reveal distinct cell subtype biases of each AAV variant, including a bias of AAV-PHP.N toward excitatory neurons. USeqFISH also enables profiling of pooled regulatory cargos, as we show for a 13-variant pool of microRNA target sites in AAV genomes. Lastly, we demonstrate potential applications of USeqFISH for in situ AAV profiling and multimodal single-cell analysis in non-human primates.
将工程化腺相关病毒载体 (AAV) 推进到用于精确进入细胞亚型的水平的一个障碍是缺乏高通量、高分辨率的测定方法来表征体内转导谱。在这项研究中,我们开发了一种超灵敏、顺序荧光原位杂交 (USeqFISH) 方法,通过整合基于水凝胶的组织透明化、使用顺序标记的增强信号放大和多重化,对完整组织体积中的内源性和病毒 RNA 进行短条码的空间转录组分析。使用 USeqFISH,我们研究了六种系统性 AAV 在小鼠大脑区域中的转导和细胞亚型趋向性,包括 AAV-PHP.AX,这是一种能够在神经元和星形胶质细胞中高效转导的新型变体。在这里,我们揭示了每个 AAV 变体的不同细胞亚型偏向性,包括 AAV-PHP.N 对兴奋性神经元的偏向性。USeqFISH 还能够对 AAV 基因组中 miRNA 靶位点的 13 变体池等混合调控货物进行分析。最后,我们展示了 USeqFISH 在非人类灵长类动物中进行原位 AAV 分析和多模态单细胞分析的潜在应用。