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Klupt, K. A.

Publications and source records attributed to Klupt, K. A..

3 recordsLinked to original sources

De novo design of phospho-tyrosine peptide binders

Phosphorylation on tyrosine is a key step in many signaling pathways. Despite recent progress in de novo design of protein binders, there are no current methods for designing binders that recognize phosphorylated proteins and peptides; this is a challenging problem as phosphate groups are highly charged, and phosphorylation often occurs within unstructured regions. Here we introduce RoseTTAFold Diffusion 2 for Molecular Interfaces (RFD2-MI), a deep generative framework for the design of binders for protein, ligand, and covalently modified protein targets. We demonstrate the power and versatility of this method by designing binders for four critical phosphotyrosine sites on three clinically relevant targets: Cluster of Differentiation 3 (CD3{varepsilon}), Epidermal Growth Factor Receptor (EGFR), Insulin Receptor (INSR) and Signal Transducer and Activator of Transcription 5 (STAT5). Experimental characterization shows that the designs bind their phosphotyrosine containing targets with affinities comparable to native binding sites and have negligible binding to non-phosphorylated targets or phosphopeptides with different sequences. X-ray crystal structures of generated binders to CD3{varepsilon} and EGFR are very close to the design models, demonstrating the accuracy of the design approach. A designed binder to an EGFR intracellular region phosphorylated upon EGF activation co-localizes with the receptor following EGF stimulation in single-particle tracking (SPT) experiments, demonstrating pY specific recognition in living cells. RFD2-MI provides a generalizable all-atom diffusion framework for probing and modulating phosphorylation-dependent signaling, and more generally, for developing research tools and targeted therapeutics against post-translationally modified proteins.

bioengineering↗

Development of a De Novo Protein Binder that Inhibits the Alpha Kinase eEF2K

Elongation factor 2 kinase (eEF2K) is calmodulin activated and phosphorylates eEF2, a GTPase, that regulates global translation. When eEF2K phosphorylates eEF2, protein translation is halted. This process may be critical to studying how diseases like cancer dysregulate protein synthesis. eEF2K is an alpha kinase and not targeted by conventional kinase inhibitors. Traditional methods of structure-based drug design are incredibly time consuming and expensive, which may involve screening large libraries of small molecules. We have generated de novo small binder proteins ([~]10kDa) - using RFDiffusion and ProteinMPNN. One promising de novo binder protein we produced, CAM1 binds to a hydrophobic patch on the calmodulin binding domain of eEF2K with nanomolar affinity as determined by isothermal titration calorimetry. This binder, in vitro, significantly reduces eEF2 peptide phosphorylation, comparable to the gold-standard small molecule eEF2K inhibitor, A-484954. The predicted structure of CAM1 is a helical bundle which has been confirmed by circular dichroism spectroscopy. Impressively, CAM1 has a melting temperature >800C, and is produced recombinantly in bacteria, greater than 5 mg / culture liter. We have also determined that CAM1 transfection significantly reduces mammalian HeLa cell proliferation comparable to A-484954 treatment and inhibits the phosphorylation of eEF2. Our de novo binder, the first to our knowledge to inhibit an alpha kinase, and the first non-competitive eEF2K inhibitor, establishes an alternative method of targeting atypical kinase activity.

biochemistry↗

Ionic polyphosphorylation of histidine repeat proteins by inorganic polyphosphate

Inorganic polyphosphate (polyP) is a linear polymer of orthophosphate that is present in nearly all organisms studied to date. A remarkable function of polyP involves its attachment to lysine residues via non-enzymatic post-translational modification (PTM) that is presumed to be covalent. Here, we show that proteins containing tracts of consecutive histidine residues exhibit a similar modification by polyP, which confers an electrophoretic mobility shift on NuPAGE gels. Our screen uncovered 30 human and yeast histidine repeat proteins that are specifically modified by polyP. This polyP modification is histidine-dependent and non-covalent in nature, though remarkably, it withstands harsh denaturing conditions--a hallmark of covalent PTMs. We have termed this interaction ionic histidine polyphosphorylation (iH-PPn) to describe its unique PTM-like properties. Importantly, we show that iH-PPn disrupts phase separation and phosphorylation activity of the human protein kinase DYRK1A, and inhibits the activity of the transcription factor MafB, highlighting iH-PPn as a potential hitherto unrecognized regulatory mechanism. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/536149v1_ufig1.gif" ALT="Figure 1"> View larger version (49K): org.highwire.dtl.DTLVardef@1ed34b7org.highwire.dtl.DTLVardef@200259org.highwire.dtl.DTLVardef@17a2954org.highwire.dtl.DTLVardef@12f5d04_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGRAPHICAL ABSTRACTC_FLOATNO C_FIG

biochemistry↗