Enhancing Endosomal Escape and Gene Regulation Activity for Spherical Nucleic Acids

Author:

Park Jungsoo12ORCID,Evangelopoulos Michael23ORCID,Vasher Matthew Kuo23ORCID,Kudruk Sergej24ORCID,Ramani Namrata25ORCID,Mayer Vinzenz24ORCID,Solivan Alexander Carlos24ORCID,Lee Andrew26ORCID,Mirkin Chad Alexander12345ORCID

Affiliation:

1. Interdisciplinary Biological Sciences Graduate Program Northwestern University Evanston Illinois 60208 USA

2. International Institute for Nanotechnology Northwestern University Evanston Illinois 60208 USA

3. Department of Biomedical Engineering Northwestern University Evanston Illinois 60208 USA

4. Department of Chemistry Northwestern University Evanston Illinois 60208 USA

5. Department of Material Sciences and Engineering Northwestern University Evanston Illinois 60208 USA

6. Department of Chemical and Biological Engineering Northwestern University Evanston Illinois 60208 USA

Abstract

AbstractThe therapeutic potential of small interfering RNAs (siRNAs) is limited by their poor stability and low cellular uptake. When formulated as spherical nucleic acids (SNAs), siRNAs are resistant to nuclease degradation and enter cells without transfection agents with enhanced activity compared to their linear counterparts; however, the gene silencing activity of SNAs is limited by endosomal entrapment, a problem that impacts many siRNA‐based nanoparticle constructs. To increase cytosolic delivery, SNAs are formulated using calcium chloride (CaCl2) instead of the conventionally used sodium chloride (NaCl). The divalent calcium (Ca2+) ions remain associated with the multivalent SNA and have a higher affinity for SNAs compared to their linear counterparts. Importantly, confocal microscopy studies show a 22% decrease in the accumulation of CaCl2‐salted SNAs within the late endosomes compared to NaCl‐salted SNAs, indicating increased cytosolic delivery. Consistent with this finding, CaCl2‐salted SNAs comprised of siRNA and antisense DNA all exhibit enhanced gene silencing activity (up to 20‐fold), compared to NaCl‐salted SNAs regardless of sequence or cell line (U87‐MG and SK‐OV‐3) studied. Moreover, CaCl2‐salted SNA‐based forced intercalation probes show improved cytosolic mRNA detection.

Funder

Alexander S. Onassis Public Benefit Foundation

International Institute for Nanotechnology, Northwestern University

National Science Foundation

National Cancer Institute

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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