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Ojansivu, M.

Publications and source records attributed to Ojansivu, M..

3 recordsLinked to original sources

Enhancing the efficacy of siRNA Antibody Oligonucleotide Conjugates (AOCs) through chemical design

Antibody-oligonucleotide conjugates (AOCs) offer a promising solution to delivery challenges of therapeutic oligonucleotides. However, the relationship between their complex chemical architectures and biological activity remains poorly understood, limiting the development of important structure-function relationships. For siRNA-containing AOCs, increasing the siRNA-to-antibody ratio beyond one (drug-to-antibody ratio, DAR>1) reduces potency, attributed to altered pharmacokinetics arising from increased negative charge density. Here, we investigated whether simple chemical modifications could improve AOC efficacy and mitigate limitations associated with higher DAR. Introduction of a single C16 lipid modification to the siRNA significantly enhanced target gene silencing compared to the unmodified AOC. Extending this modification to a DAR2 architecture, in which two siRNAs are conjugated per antibody, restored the loss of activity associated with increasing DAR from 1 to 2. Notably, at an equivalent siRNA dose (1 mg/kg), the DAR2-C16 AOC requires half the amount of antibody while achieving knockdown comparable to the DAR1-C16 AOC. We also developed a charge-balancing ionizable linker (CBIL) designed to partially compensate for the negative charge of siRNA. Incorporation of the CBIL enhanced target gene silencing in heart and skeletal muscle without a corresponding increase in hepatic activity, resulting in a shift toward greater extrahepatic activity relative to liver. Together, these findings demonstrate that chemical modification of both the siRNA payload and antibody-siRNA linker can be used to tune AOC potency and tissue activity, while enabling higher payload loading without compromising efficacy. These results establish chemical design as an important strategy for expanding the architecture and therapeutic potential of AOCs.

biochemistry↗

Click Chemistry-Based Strategy for Modular Ligand Attachment to siRNAs: Toward Extrahepatic RNAi

Efficient extrahepatic delivery of siRNAs remains a major limitation for broadening their therapeutic potential. Using a modular, orthogonal click chemistry platform, we generated 28 siRNA conjugates varying in ligand class, valency, and spatial arrangement. Following systemic administration, fatty acid conjugates - particularly palmitic acid (C16) - outperformed sterol- and phospholipid-based designs in promoting extrahepatic gene silencing, with preferential activity observed in heart and skeletal muscle. Increasing ligand valency through 3',5'-bis-conjugation generally enhanced activity compared to 5-mono conjugation. Nevertheless, bis-C22 conjugates showed increased hepatic activity, suggesting a shift in tissue distribution linked to hydrophobicity. Architectural parameters further modulated outcomes: Branched 5' C16 conjugates, bearing two lipids on one terminus, were markedly less active than their bis counterparts and required short PEG spacers to restore activity. Notably, bis-lipid conjugation strategies that enhanced extrahepatic activity for an siRNA did not translate to an ASO gapmer, underscoring modality-specific constraints. Together, these findings delineate structure-activity relationships and establish bis-fatty-acid conjugation as a robust design principle for achieving extrahepatic RNAi. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=78 SRC="FIGDIR/small/726808v1_ufig1.gif" ALT="Figure 1"> View larger version (23K): org.highwire.dtl.DTLVardef@b7af11org.highwire.dtl.DTLVardef@146b9c6org.highwire.dtl.DTLVardef@4e8948org.highwire.dtl.DTLVardef@16fa07_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Time evolution of PEG-shedding and serum protein coronation determines the cell uptake kinetics and delivery of lipid nanoparticle formulated mRNA

Development of efficient lipid nanoparticle (LNP) vectors remains a major challenge towards broad clinical translation of RNA therapeutics. New lipids will be required, but also better understanding LNP interactions with the biological environment. Herein, we model protein corona formation on PEG-ylated DLin-MC3-DMA LNPs and identify time-dependent maturation steps that critically unlock their cellular uptake and mRNA delivery. Uptake requires active serum proteins and precedes after a significant ([~]2 hours) lag-time, which we show can be eliminated by pre-incubating LNPs for 3-4 hours in serum-containing media. This indicates an important role of protein corona maturation for the pharmacokinetic effects of these LNPs. We show, using single-nanoparticle imaging, NMR diffusometry, SANS, and proteomics, that the LNPs, upon serum exposure, undergo rapid PEG-shedding ([~]30 minutes), followed by a slower rearrangement of the adsorbed protein layer. The PEG-shedding coincides in time with high surface abundance of Apolipoprotein A-II, whereas the LNPs preferentially bind Apolipoprotein E when their maximum uptake-competent state is reached. Finally, we show that pre-incubation of the LNPs enables rapid uptake and allows pulse-chase video-microscopy colocalization experiments with sufficiently short pulse durations to gain improved mechanistic understanding of how intracellular trafficking events determine delivery efficacy, emphasizing early endosomes as important delivery-mediating compartments.

biophysics↗