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Bräutigam, L.

Publications and source records attributed to Bräutigam, L..

2 recordsLinked to original sources

A stapled peptide inhibitor of MDM2 enables pharmacological activation of p53 in zebrafish

Measuring the activity of the tumor suppressor p53 in living systems is essential for understanding its dysregulation in cancer and other conditions, such as aging and diabetes. Zebrafish (Danio rerio) are a powerful vertebrate model that enable such studies, due to the evolutionary conservation of p53 structure and function. However, p53 activity in zebrafish has mainly been assessed using pharmacological methods that induce DNA damage or have off-target effects, making it difficult to isolate p53-specific responses from broader stress responses. Here, by using biophysical assays, molecular dynamics, and molecular assays, we show that sulanemadlin, a stapled peptide inhibitor of MDM2, binds to zebrafish Mdm2 and transcriptionally activates downstream targets of p53, including cdkn1a, isoform{Delta} 113p53, and Mdm2. No effect on gene expression was observed in embryos treated with a point-modified control peptide or in embryos carrying a mutation that renders p53 transcriptionally inactive. RNA sequencing further confirmed upregulation of p53 signaling and downregulation of DNA replication pathways, while an acridine orange assay showed no detectable increases in apoptosis. In contrast, the tested small molecule Mdm2 inhibitors exhibit reduced binding affinity to zebrafish Mdm2 due to an amino acid variation in the zebrafish Mdm2 binding pocket. By overcoming a species-specific barrier in p53-MDM2 binding, the stapled peptide sulanemadlin is the first pharmacological tool to specifically activate p53 in zebrafish without inducing measurable apoptosis, enabling direct in vivo studies of p53 regulation in cancer and other disease contexts.

pharmacology and toxicology↗

Biodistribution of DNA-origami nanostructures in live zebrafish embryos with single-cell resolution

DNA origami-based nanotechnology is a versatile tool for exploring fundamental biological questions and holds significant promise for future biomedical applications. However, the development of DNA origami-based therapeutic agents is hindered by the challenge of translating in vitro performance into effective applications in vivo. Here, we exploit the optical transparency of the embryonic zebrafish to track intravenously injected, fluorescently labelled wireframe DNA origami nanostructures. Our approach integrated long-term, high-resolution imaging of transgenic live embryos with single-cell RNA sequencing, to elucidate the biodistribution of DNA nanostructures over time, up to 3 days post-injection (dpi). Notably, we observed rapid accumulation of nanostructures in the caudal hematopoietic tissue (CHT), akin to the fetal liver in mammals. We tested the effects of coating the nanostructures with an oligolysine PEG copolymer (K-PEG), a widely used strategy to enhance their stability. The K-PEG coating mitigated the accumulation rate in CHT, enabling higher percentages of the nanostructures to engage with other tissues. Additionally, our findings highlighted the pivotal role of scavenger endothelial cells in DNA origami clearance, with K-PEG offering sustained protection for the nanostructures at the CHT. Furthermore, by monitoring DNA origami in a transgenic zebrafish line designed for targeted macrophage ablation, we found that macrophages contribute to nanostructure clearance at later time points. This study introduces a framework for the analyses of the biodistribution and clearance of DNA origami nanostructures in vivo with single cell resolution and establishes a foundation for the investigation of DNA origami-based nanomedicines in animal models.

bioengineering↗