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Kolibius, J.

Publications and source records attributed to Kolibius, J..

2 recordsLinked to original sources

Genome-replicating HC-AdV, a novel high-capacity adenoviral vector class featuring enhanced in situ payload expression

High-capacity adenoviral (HC-AdV) vectors offer large transgene capacities and long-term expression of therapeutics, but require high doses due to limited transgene expression. In contrast, replication-competent AdV (RC-AdV) vectors enhance in situ transgene expression by genome replication and increased transcription from amplified genomes. Yet, RC-AdVs are constrained by minimal payload capacity, progeny formation, and toxic protein expression leading to rapid host cell death. To address these limitations, we developed a novel, genome-replicating HC-AdV vector. Therefore, we investigated AdV genome replication independently of progeny particle formation, and developed cell-based trans-replication assays, enabling us to probe the requirement for individual AdV proteins in AdV genome replication. We identified seven AdV proteins from the early transcriptional units which promote potent replication of HC-AdV genomes. We then created a genome-replicating HC-AdV vector by encoding an engineered minimal replication system that functionally reconstitutes AdV genome replication. Host cell transduction with our genome-replicating HC-AdV promoted cis-replication of the delivered HC-AdV genome and up to 20-fold increased reporter fluorescence. Our novel vector retained a large transgene capacity (22 kb) and, unlike RC-AdVs, did not induce a cytopathic effect nor host cell killing. Together, these data describe a novel delivery platform potentially allowing more efficacious vaccination and vector-mediated therapies.

biochemistry↗

Dendritic cell targeting in lymph nodes with engineered modular adapters improves HAdV5 and HC-HAdV5 tumor vaccination by co-secretion of IL-2v and IL-21

Adenoviral vectors demonstrate encouraging clinical outcomes for B- and T-cell vaccines. With such approaches, multiple payloads can be delivered, beyond the antigen itself. Nevertheless, the human adenoviral vector serotype C5 (HAdV5) exhibits limited transduction efficiency to dendritic cells (DC), therefore necessitating very high viral loads. Targeting antigen-presenting cells (APC) has remained challenging. To solve this problem, we developed a versatile platform that employs modular retargeting adapters to enhance transduction of specific cell types, including challenging host cells. By rational design, we constructed a dual-adapter for DC-SIGN and CD11c and demonstrate successful targeting of HAdV5 to human and murine DCs. Our in vivo characterization highlights improved and specific transduction of DCs in draining lymph nodes. Moreover, a tumor vaccination study showcases the advantageous co-expression of T cell stimulatory cytokines (IL-2v or IL-21) locally in lymph nodes alongside a potent tumor antigen. Lymph node-directed gene therapy at significantly reduced vector loads circumvents potential systemic toxicity of stimulating payloads. Our proposed low-dosage DC-targeted vaccine offers an effective solution for patients and also minimizes potential adenovirus-related side-effects. The robust immunogenicity of HC-HAdV5, with its large coding capacity (37 kbp DNA), opens up exciting possibilities for future therapeutic combination strategies.

biochemistry↗