Person: Daugharthy, Evan
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Publication Nanoscale Imaging of RNA with Expansion Microscopy
(2016) Chen, Fei; Wassie, Asmamaw T.; Cote, Allison J.; Sinha, Anubhav; Alon, Shahar; Asano, Shoh; Daugharthy, Evan; Chang, Jae-Byum; Marblestone, Adam; Church, George; Raj, Arjun; Boyden, Edward S.The ability to image RNA identity and location with nanoscale precision in intact tissues is of great interest for defining cell types and states in normal and pathological biological settings. Here, we present a strategy for expansion microscopy (ExM) of RNA. We developed a small molecule linker that enables RNA to be covalently attached to a swellable polyelectrolyte gel synthesized throughout a biological specimen. Then, post-expansion, fluorescent in situ hybridization (FISH) imaging of RNA can be performed with high yield and specificity, with single molecule precision, in both cultured cells and intact brain tissue. Expansion FISH (ExFISH) de-crowds RNAs and supports amplification of single molecule signals (i.e., via hybridization chain reaction (HCR)) as well as multiplexed RNA FISH readout. ExFISH thus enables super-resolution imaging of RNA structure and location with diffraction-limited microscopes in thick specimens, such as intact brain tissue and other tissues of importance to biology and medicine.
Publication Highly Multiplexed Subcellular RNA Sequencing in Situ
(American Association for the Advancement of Science, 2014-03-21) Lee, Je Hyuk; Daugharthy, Evan; Scheiman, Jonathan; Kalhor, Reza; Ferrante, Thomas; Yang, Joyce; Terry, Richard; Jeanty, Sauveur; Li, Chao; Amamoto, Ryoji; Peters, Derek; Turczyk, Brian; Marblestone, Adam; Inverso, Samuel; Bernard, Amy; Mali, Prashant; Rios, Xavier; Aach, John; Church, GeorgeUnderstanding the spatial organization of gene expression with single nucleotide resolution requires localizing the sequences of expressed RNA transcripts within a cell in situ. Here we describe fluorescent in situ RNA sequencing (FISSEQ), in which stably cross-linked cDNA amplicons are sequenced within a biological sample. Using 30-base reads from 8,742 genes in situ, we examined RNA expression and localization in human primary fibroblasts using a simulated wound healing assay. FISSEQ is compatible with tissue sections and whole mount embryos, and reduces the limitations of optical resolution and noisy signals on single molecule detection. Our platform enables massively parallel detection of genetic elements, including gene transcripts and molecular barcodes, and can be used to investigate cellular phenotype, gene regulation, and environment in situ.