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Istayeva, A.

Publications and source records attributed to Istayeva, A..

2 recordsLinked to original sources

Determination of the cellular target engagement by direct-to-biology Cellular Thermal Shift Assay (CETSA)

The direct-to-biology approach enables rapid, high-throughput evaluation of large compound libraries in biological assays, eliminating costly and time-consuming purification steps. This strategy has been widely used in the development of proteolysis-targeting chimeras (PROTACs) to facilitate rapid linker optimization and the identification of active degraders from thousands of crude candidate compounds. Similarly, some other direct-to-biology biophysical assays have been utilized for the optimization of small-molecule ligands. However, a direct-to-biology strategy for evaluating cellular target engagement has not yet been demonstrated. Here, we extend this approach to the cellular thermal shift assay (CETSA). By systematically comparing crude reaction mixtures of reported DCAF11 covalent ligands with their corresponding purified analogues, we demonstrate that unpurified compounds can be directly evaluated in CETSA to assess cellular target engagement.

cell biology↗

Direct-to-Biology Enables Rapid Identification of Potent FBXO22 Degraders

Proteolysis Targeting Chimeras (PROTACs) are heterobifunctional molecules that bring a ubiquitin E3 ligase into proximity of a target protein to polyubiquitinate and degrade the target. PROTACs act catalytically, offering distinct advantages over conventional inhibitors and are the subject of intense study. The development of PROTACs involves extensive optimization of the chemical moiety linking two different protein-binding chemotypes, often requiring the synthesis, purification and testing of hundreds of PROTAC candidates. We used this approach to rapidly explore the landscape of targeted degradation of four different targets in parallel, combining and comparing a recently reported FBXO22-recruiting chemical warhead with warheads for the commonly used CRBN and VHL E3 ligases. Using a limited number of compounds (175 compounds in total) we observed no FBXO22-dependent degradation of these four targets. However, our libraries generated potent FBXO22 homo-PROTACs inducing self-degradation, as well as CRBN- and VHL-mediated degraders of FBXO22.

cell biology↗