Published December 12, 1989 | Version v1
Journal article

Two-dimensional NMR and photo-CIDNP studies of the insulin monomer: Assignment of aromatic resonances with application to protein folding, structure, and dynamics

  • 1. Massachusetts General Hospital, Boston (USA)
  • 2. Harvard Medical School, Boston, MA (USA)
  • 3. Harvard Univ., Cambridge, MA (USA)
  • 4. Massachusetts Institute of Technology, Cambridge (USA)
  • 5. Shionogi and Co., Ltd., Osaka (Japan)
  • 6. Eli Lilly and Co., Indianapolis, IN (USA)

Description

The aromatic 1H NMR resonances of the insulin monomer are assigned at 500 MHz by comparative studies of chemically modified and genetically altered variants, including a mutant insulin (PheB25 → Leu) associated with diabetes mellitus. The two histidines, three phenylalanines, and four tyrosines are observed to be in distinct local environments; their assignment provides sensitive markers for studies of tertiary structure, protein dynamics, and protein folding. The environments of the tyrosine residues have also been investigated by photochemically induced dynamic nuclear polarization (photo-CIDNP) and analyzed in relation to packing constrains in the crystal structures of insulin. Dimerization involving specific B-chain interactions is observed with increasing protein concentration and is shown to depend on temperature, pH, and solvent composition. The differences between proinsulin and mini-proinsulin suggest a structural mechanism for the observation that the fully reduced B29-A1 analogue folds more efficiently than proinsulin to form the correct pattern of disulfide bonds. These results are discussed in relation to molecular mechanics calculations of insulin based on the available crystal structures

Additional details

Publishing Information

Journal Title
Biochemistry
Journal Volume
28
Journal Issue
25
Series
Biochemistry.
Journal Page Range
9855-9873
ISSN
0006-2960
CODEN
BICHA