Engineered ionizable lipid siRNA conjugates enhance endosomal escape but induce toxicity in vivo
Annabelle Biscans1, Socheata Ly1, Nicholas McHugh1
1RNA Therapeutics Institute, University of Massachusetts Chan Medical School, Worcester, 01604, MA, USA.
Abstract:
Lipid conjugation supports delivery of small interfering RNAs (siRNAs) to extrahepatic tissues, expanding the therapeutic potential of siRNAs beyond liver indications. However, siRNA silencing efficacy in extrahepatic tissues remains inferior to that routinely achieved in liver, partially due to the low rate of endosomal escape following siRNA internalization. Improving siRNA endosomal release into cytoplasm is crucial to improving efficacy of lipid-conjugated siRNAs. Given the ability of ionizable lipids to enhance endosomal escape in a context of lipid nanoparticles (LNP), here, we provide the first report on the effect of an ionizable lipid conjugate on siRNA endosomal escape, tissue distribution, efficacy, and toxicity in vivo. After developing a synthetic route to covalently attach the ionizable lipid, DLin-MC3-DMA, to siRNAs, we demonstrate that DLin-MC3-DMA enhances endosomal escape in cell culture without compromising siRNA efficacy. In mice, DLin-MC3-DMA conjugated siRNAs exhibit a similar overall tissue distribution profile to the similarly hydrophobic cholesterol-conjugated siRNA. However, only DLin-MC3-DMA conjugated siRNAs accumulated in vascular compartments, suggesting an effect of conjugate structure on intratissue distribution. Interestingly, we observed non-specific modulation of gene expression in tissues with high accumulation of DLin-MC3-DMA siRNAs (>20 pmol/mg of tissue) while limited non-specific gene modulation has been observed in tissues with lower siRNA accumulation. These findings suggest modulating the nature of the conjugate is a promising strategy to alter siRNA intratissue and intracellular trafficking. Fine-tuning the nature of the conjugate to optimize endosomal escape while minimizing toxicity will be critical for the progression of therapeutic siRNA applications beyond the liver.
Insights
Conjugating ionizable lipids like DLin-MC3-DMA to small interfering RNAs (siRNAs) enhances endosomal escape for improved extrahepatic delivery. Careful conjugate design is key to optimizing efficacy and minimizing toxicity for therapeutic siRNA applications.
Area of Science:
- Biotechnology
- RNA Therapeutics
- Drug Delivery
Background:
- Lipid conjugation enhances delivery of small interfering RNAs (siRNAs) to extrahepatic tissues.
- siRNA efficacy in extrahepatic tissues is limited by poor endosomal escape post-internalization.
Purpose of the Study:
- To investigate the effect of an ionizable lipid conjugate (DLin-MC3-DMA) on siRNA endosomal escape, tissue distribution, efficacy, and toxicity in vivo.
- To explore the potential of modulating siRNA conjugate structure for improved therapeutic applications.
Main Methods:
- Developed a synthetic route to covalently attach DLin-MC3-DMA to siRNAs.
- Evaluated siRNA endosomal escape in cell culture.
- Assessed tissue distribution, gene expression modulation, efficacy, and toxicity in mice.
Main Results:
- DLin-MC3-DMA conjugation enhanced siRNA endosomal escape in vitro without compromising efficacy.
- DLin-MC3-DMA conjugated siRNAs showed altered intratissue distribution, accumulating in vascular compartments.
- High accumulation of DLin-MC3-DMA siRNAs led to non-specific gene expression modulation in vivo.
Conclusions:
- Modulating siRNA conjugate structure is a promising strategy to alter siRNA trafficking and improve extrahepatic delivery.
- Optimizing conjugate design is critical for balancing enhanced endosomal escape with minimized toxicity for liver-sparing siRNA therapeutics.


