136 results on '"Swint‐Kruse, Liskin"'
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2. Fructose-1-kinase has pleiotropic roles in Escherichia coli
3. Rheostats, toggles, and neutrals, Oh my! A new framework for understanding how amino acid changes modulate protein function
4. Simulated pressure changes in LacI suggest a link between hydration and functional conformational changes
5. The 2.4 Å structure of Zymomonas mobilis pyruvate kinase: Implications for stability and regulation
6. Spectroscopic evidence of tetanus toxin translocation domain bilayer-induced refolding and insertion
7. A clinically relevant polymorphism in the Na+/taurocholate cotransporting polypeptide (NTCP) occurs at a rheostat position
8. Rheostat positions: A new classification of protein positions relevant to pharmacogenomics
9. Rheostatic contributions to protein stability can obscure a position's functional role.
10. Transcription | lac Operon Regulation
11. The intrinsically disordered transcriptional activation domain of CIITA is functionally tuneable by single substitutions: An exception or a new paradigm?
12. FUS G559A Mutation in a Patient with a Frontotemporal Dementia-Motor Neuron Disease Compatible Syndrome: A Case Report
13. The intrinsically disordered transcriptional activation domain of CIITA is functionally tuneable by single substitutions: An exception or a new paradigm?
14. Using Evolution to Guide Protein Engineering: The Devil IS in the Details
15. Functional tunability from a distance: Rheostat positions influence allosteric coupling between two distant binding sites
16. Zymomonas mobilis pyruvate kinase: Rise of the unstable zombies
17. Flexibility and Disorder in Gene Regulation: LacI/GalR and Hox Proteins
18. PYK-SubstitutionOME: an integrated database containing allosteric coupling, ligand affinity and mutational, structural, pathological, bioinformatic and computational information about pyruvate kinase isozymes
19. Identification of a covert evolutionary pathway between two protein folds
20. Identification of a covert evolutionary pathway between two protein folds.
21. Odd one out? Functional tuning ofZymomonas mobilispyruvate kinase is narrower than its allosteric, human counterpart
22. Structural Plasticity Is a Feature of Rheostat Positions in the Human Na+/Taurocholate Cotransporting Polypeptide (NTCP)
23. Understanding ligand specificity through protein network dynamics
24. Tuning protein function: Rheostats, toggles, and neutrals, oh my!
25. Substitutions at a rheostat position in human aldolase A cause a shift in the conformational population
26. Allosteric regulation within the highly interconnected structural scaffold of AraC/XylS homologs tolerates a wide range of amino acid changes
27. Rheostat functional outcomes occur when substitutions are introduced at nonconserved positions that diverge with speciation
28. Emerging Features of Rheostat Positions
29. Odd one out? Functional tuning of Zymomonas mobilis pyruvate kinase is narrower than its allosteric, human counterpart.
30. Dynamics-based network analysis identifies laci rheostats with high accuracy
31. “Multiplex” rheostat positions cluster around allosterically critical regions of the lactose repressor protein
32. Substitutions at Nonconserved Rheostat Positions Modulate Function by Rewiring Long-Range, Dynamic Interactions
33. A clinically-relevant polymorphism in the Na+/taurocholate cotransporting polypeptide (NTCP) occurs at a rheostat position
34. Substitutions at Non-Conserved Rheostat Positions Modulate Function by Re-Wiring Long-Range, Dynamic Interactions
35. Identification of biochemically neutral positions in liver pyruvate kinase
36. Functional Characterization of Position 271 in NTCP, a Predicted Rheostat Location
37. Fluorescent Study on Tetanus Neurotoxin
38. Asymmetry in Dynamic Allosteric Residue Coupling (DARC) Interactions Captures Evolutionary Landscape
39. Structural Plasticity Is a Feature of Rheostat Positions in the Human Na + /Taurocholate Cotransporting Polypeptide (NTCP).
40. Substitutions at a rheostat position in human aldolase A cause a shift in the conformational population.
41. Do 'neutral' protein positions really exist? A case study with allostery in human liver pyruvate kinase
42. Allosteric regulation within the highly interconnected structural scaffold of AraC/XylS homologs tolerates a wide range of amino acid changes.
43. The strengths and limitations of using biolayer interferometry to monitor equilibrium titrations of biomolecules
44. Homolog comparisons further reconcile in vitro and in vivo correlations of protein activities by revealing over‐looked physiological factors
45. Identification of biochemically neutral positions in liver pyruvate kinase
46. Functional tunability from a distance: Rheostat positions influence allosteric coupling between two distant binding sites
47. Characterization of the Expression and Function of Rheostat Locations within the Na + /Taurocholate Cotransporting Polypeptide
48. Allostery is Highly Tunable by Amino Acid Substitutions at Long-Range Rheostat Positions
49. lac Operon Regulation
50. Substitutions at Nonconserved Rheostat Positions Modulate Function by Rewiring Long-Range, Dynamic Interactions.
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