Single-molecule RNA detection at depth via hybridization chain reaction and tissue hydrogel embedding and clearing

Author:

Shah Sheel12,Lubeck Eric1,Schwarzkopf Maayan3,He Ting-fang1,Greenbaum Alon3,Sohn Chang ho1,Lignell Antti1,Choi Harry M. T.3,Gradinaru Viviana3,Pierce Niles A.34,Cai Long1ORCID

Affiliation:

1. Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA, USA 91125

2. UCLA-Caltech Medical Scientist Training Program, David Geffen School of Medicine, University of California at Los Angeles, Los Angeles, CA, USA 90095

3. Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA 91125

4. Division of Engineering & Applied Science, California Institute of Technology, Pasadena, CA, USA 91125

Abstract

Accurate and robust detection of mRNA molecules in thick tissue samples can reveal gene expression patterns in single cells within their native environment. Preserving spatial relationships while accessing the transcriptome of selected cells is a crucial feature for advancing many biological areas, from developmental biology to neuroscience. However, because of the high autofluorescence background of many tissue samples, it is difficult to detect single-molecule fluorescence in situ hybridization (smFISH) signals robustly in opaque thick samples. Here, we draw on principles from the emerging discipline of dynamic nucleic acid nanotechnology to develop a robust method for multi-color, multi-RNA, imaging in deep tissues using single-molecule hybridization chain reaction (smHCR). Using this approach, single transcripts can be imaged using epifluorescence, confocal or selective plane illumination microscopy (SPIM) depending on the imaging depth required. We show that smHCR has high sensitivity in detecting mRNAs in cell culture and whole-mount zebrafish embryos, and that combined with SPIM and PACT (PAssive CLARITY Technique) tissue hydrogel embedding and clearing, smHCR can detect single mRNAs deep within thick (0.5 mm) brain slices. By simultaneously achieving ∼20-fold signal amplification and diffraction-limited spatial resolution, smHCR offers a robust and versatile approach for detecting single mRNAs in situ, including in thick tissues where high background undermines the performance of unamplified smFISH.

Funder

NIH Office of the Director

National Science Foundation

McKnight Foundation

Harry Frank Guggenheim Foundation

Heritage Foundation

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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