Modification of Branched Poly(ethylene imine) with d ‐Fructose for Selective Delivery of siRNA into Human Breast Cancer Cells

GND
1333880189
ORCID
0009-0002-4787-2757
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Peschel, Jan Matthias;
GND
1329885759
ORCID
0009-0007-4184-3572
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Reichel, Liên Sabrina;
GND
1333881126
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Hoffmann, Tim;
Affiliation
SmartDyeLivery GmbH Botzstraße 5 07743 Jena Germany
Enzensperger, Christoph;
GND
113792077
ORCID
0000-0003-4978-4670
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Schubert, Ulrich Sigmar;
GND
1222995409
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Traeger, Anja;
GND
123955769
ORCID
0000-0003-4210-2956
Affiliation
Institute of Organic and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstrasse 10 07743 Jena Germany
Gottschaldt, Michael

Abstract Branched poly(ethylene imine) (bPEI) is frequently used in RNA interference (RNAi) experiments as a cationic polymer for the delivery of small interfering RNA (siRNA) because of its ability to form stable polyplexes that facilitate siRNA uptake. However, the use of bPEI in gene delivery is limited by its cytotoxicity and a need for target specificity. In this work, bPEI is modified with d‐ fructose to improve biocompatibility and target breast cancer cells through the overexpressed GLUT5 transporter. Fructose‐substituted bPEI (Fru−bPEI) is accessible in three steps starting from commercially available protected fructopyranosides and bPEI. Several polymers with varying molecular weights, degrees of substitution, and linker positions on d‐ fructose (C1 and C3) are synthesized and characterized with NMR spectroscopy, size exclusion chromatography, and elemental analysis. In vitro biological screenings show significantly reduced cytotoxicity of 10 kDa bPEI after fructose functionalization, specific uptake of siRNA polyplexes, and targeted knockdown of green fluorescent protein (GFP) in triple‐negative breast cancer cells (MDA‐MB‐231) compared to noncancer cells (HEK293T).

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