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47 results on '"Bychkova VE"'

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1. Formation of the Native Topology of a Protein is due to the "Conserved but Non-Functional" Residues: A Case of Apomyoglobin Folding.

2. Function of the Conserved Non-Functional Residues in Apomyoglobin - to Determine and to Preserve Correct Topology of the Protein.

3. The Molten Globule State of a Globular Protein in a Cell Is More or Less Frequent Case Rather than an Exception.

4. Complex Folding Landscape of Apomyoglobin at Acidic pH Revealed by Ultrafast Kinetic Analysis of Core Mutants.

5. The Molten Globule Concept: 45 Years Later.

6. sw ApoMb Amyloid Aggregation under Nondenaturing Conditions: The Role of Native Structure Stability.

7. Intermediate States of Apomyoglobin: Are They Parts of the Same Area of Conformations Diagram?

8. How membrane surface affects protein structure.

9. Membrane-induced changes in the holomyoglobin tertiary structure: interplay with function.

10. Apomyoglobin mutants with single point mutations at val10 can form amyloid structures at permissive temperature.

11. [Kinetics of interaction between apomyoglobin and phospholipid membrane].

12. Folding intermediate and folding nucleus for I-->N and U-->I-->N transitions in apomyoglobin: contributions by conserved and nonconserved residues.

13. How strong are side chain interactions in the folding intermediate?

14. [On the role of some conserved and nonconserved amino acid residues in transition state and in intermediate of apomyoglobin folding].

15. pH-induced equilibrium unfolding of apomyoglobin: substitutions at conserved Trp14 and Met131 and non-conserved Val17 positions.

16. Phospholipid membranes affect tertiary structure of the soluble cytochrome b5 heme-binding domain.

17. [Investigation of folding/unfolding kinetics of apomyoglobin].

18. Three-state protein folding: experimental determination of free-energy profile.

19. Time-resolved CIDNP study of non-native states of bovine and human alpha-lactalbumins.

20. [Investigation of apomyoglobin stability depending on urea and temperature at two different pH values].

21. [Model phospholipid membranes affect the holomyoglobin structure: conformational changes at pH 6.2].

22. Solvent-induced ligand dissociation and conformational states of Cellular Retinol-Binding Protein type I.

23. [Conformational status of apomyoglobin in the presence of phospholipid vesicles at neutral pH].

24. [Conformational states of the water-soluble fragment of cytochrome b5. I. pH-induced denaturation].

25. Multisite fluorescence in proteins with multiple tryptophan residues. Apomyoglobin natural variants and site-directed mutants.

27. Release of retinol and denaturation of its plasma carrier, retinol-binding protein.

28. Molten globule of human alpha-lactalbumin: hydration, density, and compressibility of the interior.

29. Molten globule-like state of cytochrome c under conditions simulating those near the membrane surface.

30. Kinetic and equilibrium folding intermediates.

31. Folding intermediates are involved in genetic diseases?

32. [The functional state of denatured proteins: the principles of modelling and the first results].

33. Mechanism of pH-induced release of retinol from retinol-binding protein.

34. [The state of unfolded globules of protein molecules is more quickly becoming a rule, rather than an exception].

35. Retinol-binding protein is in the molten globule state at low pH.

36. Solvent dependence of dimensions of unfolded protein chains.

37. [Comparative study of diffusion coefficients of alpha-lactalbumins and lysozyme using polarization interferometer].

39. Thermodynamic parameters of helix-random coil transitions in polypeptide chains. IV. Random copolymers of L-alanine with L-glutamic acid.

40. Compact state of a protein molecule with pronounced small-scale mobility: bovine alpha-lactalbumin.

42. [Compact structure of random copolymers of hydrophobic and hydrophilic amino acid residues].

43. Physical nature of the phase transition in globular proteins. Calorimetric study of human alpha-lactalbumin.

45. The 'molten globule' state is involved in the translocation of proteins across membranes?

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