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Biology subjects

Chalupsky, K.

Publications and source records attributed to Chalupsky, K..

2 recordsLinked to original sources

Fluorinated cGAMP analogs, which act as STING agonists and are not cleavable by poxins: structural basis of their function

The Stimulator of Interferon Genes (STING) plays a crucial role in the cGAS-STING pathway of innate immunity, detecting DNA in the cytoplasm and defending against certain cancers, viruses, and bacteria. We designed and synthesized fluorinated carbocyclic cGAMP analogs, MD1203 and MD1202D (MDs), to enhance their stability against nucleases and their affinity for STING. These compounds demonstrated exceptional activity against wild-type STING and all its allelic variations, including the hard-to-target REF isoform. Despite their distinct chemical modifications relative to the canonical CDNs, such as the substitution of guanine with hypoxanthine and the fluorination of the (pseudo)ribose ring, crystallographic analysis revealed a consistent binding mode with STING. Importantly, these compounds were resistant to cleavage by viral poxin nucleases. The crystallographic analysis of poxin/MD complexes unveiled their binding mode at the interface of poxin monomers, with dynamic adenine base orientations. Interestingly, MDs-bound poxin adopted an unliganded-like conformation, distinct from the conformation of cGAMP-bound poxin. Moreover, when MDs were in complex with poxin, they exhibited a different conformation than cGAMP when bound to poxin; in fact, it closely resembled the conformation observed when MDs were bound to STING. In conclusion, the development of MD1203 and MD1202D, showcases their potential as potent STING activators with remarkable stability against poxin-mediated degradation--a crucial characteristic for future development of antivirals.

molecular biology↗

Structural and functional insights in flavivirus NS5 proteins gained by the structure of Ntaya virus polymerase and methyltransferase

Flaviviruses are single-stranded positive-sense RNA (+RNA) viruses that are responsible for several (re)emerging diseases such as Yellow, Dengue or West Nile fevers. The Zika epidemic highlighted their dangerousness when a relatively benign virus known since the 1950s turned into a deadly pathogen. The central protein for their replication is NS5 (non-structural protein 5), which is composed of the N-terminal methyltransferase (MTase) domain and the C-terminal RNA-dependent RNA-polymerase (RdRp) domain. It is responsible for both, RNA replication and installation of the 5 RNA cap. We structurally and biochemically analyzed the Ntaya virus MTase and RdRp domains and we compared their properties to other flaviviral NS5s. The enzymatic centers are well conserved across Flaviviridae, suggesting that the development of drugs targeting all flaviviruses is feasible. However, the enzymatic activities of the isolated proteins were significantly different for the MTase domains.

molecular biology↗