High-resolution visualization and quantification of nucleic acid–based therapeutics in cells and tissues using Nanoscale secondary ion mass spectrometry (NanoSIMS)

Author:

He Cuiwen1,Migawa Michael T2,Chen Kai3,Weston Thomas A1,Tanowitz Michael2,Song Wenxin1,Guagliardo Paul4,Iyer K Swaminathan3,Bennett C Frank2,Fong Loren G1,Seth Punit P2ORCID,Young Stephen G15,Jiang Haibo36ORCID

Affiliation:

1. Department of Medicine, University of California, Los Angeles, CA 90095, USA

2. Ionis Pharmaceuticals, Inc., Carlsbad, CA 92010, USA

3. School of Molecular Sciences, University of Western Australia, Perth 6009, Australia

4. Centre for Microscopy, Characterisation and Analysis, University of Western Australia, Perth 6009, Australia

5. Department of Human Genetics, University of California, Los Angeles, CA 90095, USA

6. Department of Chemistry, The University of Hong Kong, Hong Kong, China

Abstract

Abstract Nucleic acid therapeutics (NATs) have proven useful in promoting the degradation of specific transcripts, modifying gene expression, and regulating mRNA splicing. In each situation, efficient delivery of nucleic acids to cells, tissues and intracellular compartments is crucial—both for optimizing efficacy and reducing side effects. Despite successes in NATs, our understanding of their cellular uptake and distribution in tissues is limited. Current methods have yielded insights into distribution of NATs within cells and tissues, but the sensitivity and resolution of these approaches are limited. Here, we show that nanoscale secondary ion mass spectrometry (NanoSIMS) imaging can be used to define the distribution of 5-bromo-2′-deoxythymidine (5-BrdT) modified antisense oligonucleotides (ASO) in cells and tissues with high sensitivity and spatial resolution. This approach makes it possible to define ASO uptake and distribution in different subcellular compartments and to quantify the impact of targeting ligands designed to promote ASO uptake by cells. Our studies showed that phosphorothioate ASOs are associated with filopodia and the inner nuclear membrane in cultured cells, and also revealed substantial cellular and subcellular heterogeneity of ASO uptake in mouse tissues. NanoSIMS imaging represents a significant advance in visualizing uptake and distribution of NATs; this approach will be useful in optimizing efficacy and delivery of NATs for treating human disease.

Funder

Australian Research Council

Rebecca L Cooper Medical Research Foundation

UWA Research Income Growth

NHLBI

Publisher

Oxford University Press (OUP)

Subject

Genetics

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