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Identification of fragments targeting SMYD3 using highly sensitive kinetic and multiplexed biosensor-based screening
Uppsala universitet, Teknisk-naturvetenskapliga vetenskapsområdet, Kemiska sektionen, Institutionen för kemi - BMC, Biokemi. Beactica Therapeutics, Virdings allé 2, Uppsala, Sweden.ORCID-id: 0000-0002-0603-1241
Uppsala universitet, Teknisk-naturvetenskapliga vetenskapsområdet, Kemiska sektionen, Institutionen för kemi - BMC, Biokemi.ORCID-id: 0000-0002-5460-8375
Uppsala universitet, Teknisk-naturvetenskapliga vetenskapsområdet, Kemiska sektionen, Institutionen för kemi - BMC, Biokemi. UiT The Arctic University of Norway, Tromsø, Norway.ORCID-id: 0000-0001-9141-0555
Uppsala universitet, Teknisk-naturvetenskapliga vetenskapsområdet, Kemiska sektionen, Institutionen för kemi - BMC, Biokemi. Beactica Therapeutics, Virdings allé 2, Uppsala, Sweden.ORCID-id: 0009-0004-3440-2662
Vise andre og tillknytning
2024 (engelsk)Inngår i: RSC Medicinal Chemistry, E-ISSN 2632-8682, Vol. 15, nr 6, s. 1982-1990Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

A 1056-membered fragment library has been screened against SMYD3 using a novel multiplexed experimental design implemented in a grating coupled interferometry (GCI)-based biosensor. SMYD3 is a prospective target for anticancer drugs and the focus has initially been on discovery of inhibitors of its lysine methyl transferase activity. However, it has multiple protein interaction partners and several potential roles in carcinogenesis. It therefore remains unclear what mode of action ligands targeting the protein should have. Our goal was therefore to identify new ligands and discriminate hits that interact with the active site and those that interact with other sites. In addition, we were interested in selecting hits based on kinetic features rather than affinity. Screening was done in parallel against SMYD3 alone or SMYD3 with the active site blocked by a tight binding inhibitor. Hit selection was primarily based on dissociation rates. In total, 20 fragments were selected as hits, of which half apparently targeted the active site and half targeted other sites. Twelve of the hits were selected for structural analysis using X-ray crystallography in order to identify binding sites and modes of binding. Four of the hits were successfully identified in crystal structures with SMYD3; the others did not show any electron densities for ligands in the crystals. Although it might be possible to optimize the crystallography approach for a better success rate, it was clear that the sensitivity and time resolution of the biosensor assay was exceptional and enabled kinetic rate constants to be estimated for fragments. Fragments are typically considered to interact too rapidly for such quantification to be possible. This approach consequently represents a paradigm shift. In addition, the multiplexed approach allows ligands targeting different sites to be rationally selected already in the fragment library screening stage.

sted, utgiver, år, opplag, sider
Royal Society of Chemistry, 2024. Vol. 15, nr 6, s. 1982-1990
HSV kategori
Identifikatorer
URN: urn:nbn:se:uu:diva-542730DOI: 10.1039/d4md00093eISI: 001207835200001PubMedID: 38911161Scopus ID: 2-s2.0-85191342276OAI: oai:DiVA.org:uu-542730DiVA, id: diva2:1912810
Forskningsfinansiär
The Research Council of Norway, 262695The Research Council of Norway, 274858EU, Horizon 2020, 675899EU, Horizon 2020, 860517Tilgjengelig fra: 2024-11-13 Laget: 2024-11-13 Sist oppdatert: 2025-02-20bibliografisk kontrollert
Inngår i avhandling
1. Biochemical strategies for ligand discovery against cancer targets
Åpne denne publikasjonen i ny fane eller vindu >>Biochemical strategies for ligand discovery against cancer targets
2024 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

Cancer is a common disease and diagnosis frequency correlates with population age. Though many cancers can be cured today, numerous types remain difficult to treat. Treatments can evoke side effects and often don’t reach the clinic due to inefficacy. Thus, better targeted anti-cancer therapies and candidate drugs are required. This thesis focusses on initial stages of drug discovery where we sought to identify ligands specifically targeting SET and MYND domain containing protein 3 (SMYD3), and Cullin3 associated adaptor proteins: Kelch-like protein 12 (KLHL12) and 20 (KLHL20). These targets are all associated with cancer although their biological mechanisms remain elusive. The targets were challenging from a biochemical perspective, nevertheless via robust expression and purification methods, an amalgamation of biochemical techniques and computational methods were used to identify, characterize, and evolve fragment and peptide-based ligands. Sensitive multiplexed screening assays enabled selection of specific hits. A grating coupled interferometry-based biosensor assay implemented a kinetic criterion for fragment hit identification against SMYD3. Four fragments from a library containing 1056 fragments had their binding site and orientation established using X-ray crystallography. Fragment evolution based on the SMYD3 allosteric ligand diperodon encompassed a structure-affinity-relationship (SAR)-based approach, and a deconstruction-and-growth method wherein ligands with KD of 0.4-180 μM were attained. Structure prediction complemented a surface plasmon resonance (SPR) biosensor-driven approach to develop a stapled peptide ligand against the Kelch domain of KLHL20, derived from zinc finger translocation associated protein (ZFTA). This peptide had KD of 1.14 mM and alanine scanning revealed aspartate as vital for interaction. Multiplexed fragment-based SPR biosensor screening assays against the Kelch domains of KLHL12 and 20 identified 237 and 266 hits from a library containing 3000+ fragments. Hit selection was based on preference for folded protein and dose-response analysis was conducted for validation and hit reduction to 24 and 21. Hit SAR was probed using modelling and fragment analogues. NMR confirmed fragment-protein binding. All targets studied herein were concluded as poorly druggable, however using multiple experimental approaches alongside computational methodologies permitted hit identification, validation, and a further understanding of poorly druggable targets. The validated hits presented are befitting for evolution by medicinal chemistry.

sted, utgiver, år, opplag, sider
Uppsala: Acta Universitatis Upsaliensis, 2024. s. 100
Serie
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, ISSN 1651-6214 ; 2471
Emneord
Fragment-based lead discovery, Structure-affinity relationship, Fragment screening, Cancer, Surface Plasmon Resonance, Compound optimization. Biosensors, Computational modelling
HSV kategori
Identifikatorer
urn:nbn:se:uu:diva-543034 (URN)978-91-513-2299-5 (ISBN)
Disputas
2025-01-20, room A1:107a, BMC, Husargatan 3, Uppsala, 09:00 (engelsk)
Opponent
Veileder
Forskningsfinansiär
EU, Horizon 2020, 860517
Tilgjengelig fra: 2024-12-10 Laget: 2024-11-18 Sist oppdatert: 2025-02-20

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FitzGerald, Edward A.Cederfelt, DanielaMyers, NadineDobritzsch, DoreenDanielson, Helena

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