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1. HemN2 Regulates the Virulence of Pseudomonas donghuensis HYS through 7-Hydroxytropolone Synthesis and Oxidative Stress

2. Friends in need: How chaperonins recognize and remodel proteins that require folding assistance

5. Friends in need: how chaperonins recognize and remodel proteins that require folding assistance

6. Extraction of weak hydrophobic sulforaphane from broccoli by salting-out assisted hydrophobic deep eutectic solvent extraction

7. Redox and spectroscopic properties of mammalian nitrite reductase-like hemoproteins

8. Ubiquitin is a carbon dioxide-binding protein

9. Ribulose 1,5-bisphosphate carboxylase/oxygenase activates O(2) by electron transfer

10. Rubisco is not really so bad

11. Symmetry, Rigidity, and Allosteric Signaling: From Monomeric Proteins to Molecular Machines

12. Iterative Annealing Mechanism Explains the Functions of the GroEL and RNA Chaperones

13. Commentary: Directions for Optimization of Photosynthetic Carbon Fixation: RuBisCO's Efficiency May Not Be So Constrained After All

14. Allostery and molecular machines

15. Molecular chaperones maximize the native state yield on biological times by driving substrates out of equilibrium

16. Subunit conformational variation within individual GroEL oligomers resolved by Cryo-EM

17. Molecular chaperones maximize the native state yield per unit time by driving substrates out of equilibrium

18. A Helping Hand to Overcome Solubility Challenges in Chemical Protein Synthesis

19. The GroEL chaperonin: a protein machine with pistons driven by ATP binding and hydrolysis

20. Setting the chaperonin timer: The effects of K + and substrate protein on ATP hydrolysis

21. Coupling between allosteric transitions in GroEL and assisted folding of a substrate protein

22. Significance of the N-terminal Domain for the Function of Chloroplast cpn20 Chaperonin

23. Andrew A. Benson: personal recollections

24. Residues in substrate proteins that interact with GroEL in the capture process are buried in the native state

25. Formation and structures of GroEL:GroES2 chaperonin footballs, the protein-folding functional form

26. A Personal Account of Chaperonin History

27. Chaperonin Function: Folding by Forced Unfolding

28. GroES in the asymmetric GroEL 14 –GroES 7 complex exchanges via an associative mechanism

29. The design and synthesis of inhibitors of dethiobiotin synthetase as potential herbicides

30. Symmetric GroEL:GroES 2 complexes are the protein-folding functional form of the chaperonin nanomachine

31. Substrate protein switches GroE chaperonins from asymmetric to symmetric cycling by catalyzing nucleotide exchange

32. Crystal structure of a GroEL-ADP complex in the relaxed allosteric state at 2.7 Å resolution

33. Measuring how much work the chaperone GroEL can do

34. A thermodynamic coupling mechanism for GroEL-mediated unfolding

35. GroE structures galore

36. Functional Characterization of the Higher Plant Chloroplast Chaperonins

37. Stability of the Asymmetric Escherichia coli Chaperonin Complex

38. Caging helps proteins fold

39. Symmetric Complexes of GroE Chaperonins as Part of the Functional Cycle

40. Dynamics of the Chaperonin ATPase Cycle: Implications for Facilitated Protein Folding

41. A role for the .epsilon.-amino group of lysine-334 of ribulose-1,5-bisphosphate carboxylase in the addition of carbon dioxide to the 2,3-enediol(ate) of ribulose 1,5-bisphosphonate

42. Reversible dissociation and conformational stability of dimeric ribulose bisphosphate carboxylase

43. Chaperonins and protein folding: unity and disunity of mechanisms

45. Purified chaperonin 60 (groEL) interacts with the nonnative states of a multitude ofEscherichia coliproteins

46. Mammalian mitochondrial chaperonin 60 functions as a single toroidal ring

47. Use of thallium to identify monovalent cation binding sites in GroEL

48. Complex interactions between the chaperonin 60 molecular chaperone and dihydrofolate reductase

49. Setting the chaperonin timer: a two-stroke, two-speed, protein machine

50. Chaperonin-facilitated refolding of ribulose bisphosphate carboxylase and ATP hydrolysis by chaperonin 60 (groEL) are potassium dependent

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