利用 Gateway 克隆技术高效生产重组腺相关病毒载体,用于神经环路全光学解析
Streamlined Production of Recombinant Adeno-Associated Viruses Using Gateway Cloning Technology for Neural Circuit All-Optical Interrogation
光遗传学和各种光学探针让研究者能用光精确读取和操控神经活动,但前提是目标神经元里能高效表达相应探针。作者搭建了一套基于 Gateway 克隆技术的模块化平台,可快速组装重组腺相关病毒(rAAV,常用作向神经元递送基因的工具病毒)载体,并灵活优化启动子、探针和衣壳类型。他们以 ULoVE 双光子显微方法为例,在清醒活动小鼠小脑浦肯野细胞中,用该平台构建的电压探针 JEDI2P-Kv 分辨出亚毫秒级树突电压动态,包括此前只能靠细胞内电生理记录到的树突棘波。同一平台还用于钙探针、光遗传激动剂 ChR2(H134R) 和轴突投射示踪。该工作提供了模块化载体构建与光学采集整合的平台,但尚未经同行评审。
为什么推荐给您:模块化病毒载体生产平台提升神经光学工具的开发效率,属重要工具学进展,尚未经同行评审。
不需要生物学背景,多打比方
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摘要Abstract
The advent of optogenetics and the rapid development of genetically encoded actuators and reporters for calcium, voltage, neurotransmitters, and other molecules have revolutionized neuroscience research by enabling precise, non-invasive optical interrogation of neural circuits. Successful implementation, however, critically depends on efficient reporter expression in defined neuronal populations. We present a Gateway(R)-based cloning platform providing a robust pipeline for rapid, efficient construction of recombinant adeno-associated virus (rAAV) vectors optimized for neuroscience applications. This platform addresses promoter selection, indicator engineering, and capsid-type optimization, and enables systematic optimization of vector components across a range of optical tools. The benefit of this modular approach is illustrated in the case of ULoVE, a two-photon microscopy method based on acousto-optic deflectors (AODs). This method provides serial light-targeting with kHz sampling rates and high signal-to-noise ratio in vivo, which imposes stringent requirements on indicator expression -- including cell-type specificity, sparse labelling, and precise control of expression levels-- efficiently met through the combinatorial flexibility of the Gateway pipeline. As specific examples, Gateway-constructed Cre-driver viruses combined with Cre-dependent reporters enabled cell-type-specific labelling for two complementary applications. In cerebellar Purkinje cells, an L7::Cre driver virus paired with a Gateway-constructed voltage indicator (JEDI2P-Kv) and ULoVE two-photon excitation at ~5 kHz enables resolution of sub-millisecond dendritic voltage dynamics in awake, behaving mice, including optical detection of dendritic spikelets previously accessible only via intracellular electrophysiology. The same driver virus paired with calcium indicators (GCaMP6f, jRGECO1a) resolves climbing fiber-evoked calcium kinetics under the same conditions. In acute cerebellar slices, a kit::Cre driver virus enabled cell-type-specific expression of the optogenetic actuator ChR2(H134R) in molecular layer interneurons, where ULoVE doughnut-pattern photostimulation achieved single-cell, sub-millisecond optogenetic activation with micron-scale spatial resolution. Beyond ULoVE applications, the same sparse, strong labelling also proved suitable for anatomical tracing of axonal projections in cleared cerebellar tissue, resolving individual DCN axon terminals at the granule cell layer --molecular layer boundary. Taken together, our dual-front approach --combining a modular AAV expression pipeline with AOD-based optical acquisition --provides an integrated platform for developing sophisticated optical tools, including but not limited to AOD-based microscopy, for neural circuit interrogation.