Sun Gongchen, Wan Jason, Lu Hang
School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, Georgia 30332, USA.
Biomicrofluidics. 2019 Nov 1;13(6):064101. doi: 10.1063/1.5124827. eCollection 2019 Nov.
Understanding gene regulation networks in multicellular organisms is crucial to decipher many complex physiological processes ranging from development to aging. One technique to characterize gene expression with tissue-specificity in whole organisms is single-molecule fluorescence hybridization (smFISH). However, this protocol requires lengthy incubation times, and it is challenging to achieve multiplexed smFISH in a whole organism. Multiplexing techniques can yield transcriptome-level information, but they require sequential probing of different genes. The inefficient macromolecule exchange through diffusion-dominant transport across dense tissues is the major bottleneck. In this work, we address this challenge by developing a microfluidic/electrokinetic hybrid platform to enable multicycle smFISH in an intact model organism, . We integrate an ion concentration polarization based ion pump with a microfluidic array to rapidly deliver and remove gene-specific probes and stripping reagents on demand in individual animals. Using our platform, we can achieve rapid smFISH, an order of magnitude faster than traditional smFISH protocols. We also demonstrate the capability to perform multicycle smFISH on the same individual samples, which is impossible to do off-chip. Our method hence provides a powerful tool to study individual-specific, spatially resolvable, and large-scale gene expression in whole organisms.
了解多细胞生物中的基因调控网络对于解读从发育到衰老的许多复杂生理过程至关重要。在整个生物体中以组织特异性表征基因表达的一种技术是单分子荧光杂交(smFISH)。然而,该方案需要较长的孵育时间,并且在整个生物体中实现多重smFISH具有挑战性。多重技术可以产生转录组水平的信息,但它们需要对不同基因进行顺序探测。通过扩散主导的跨致密组织运输进行的低效大分子交换是主要瓶颈。在这项工作中,我们通过开发一种微流体/电动混合平台来应对这一挑战,以在完整的模式生物中实现多轮smFISH。我们将基于离子浓度极化的离子泵与微流体阵列集成,以便根据需要在单个动物中快速递送和去除基因特异性探针和洗脱试剂。使用我们的平台,我们可以实现快速smFISH,比传统的smFISH方案快一个数量级。我们还展示了在同一样本上进行多轮smFISH的能力,这在芯片外是无法做到的。因此,我们的方法为研究整个生物体中个体特异性、空间可分辨和大规模的基因表达提供了一个强大的工具。