Temperature-induced formation of a non-native intermediate state of the all beta-sheet protein CD2

Jenny J Yang1, Haidong Yang, Yiming Ye

  • 1Department of Chemistry, Center of Drug Design, Georgia State University, Atlanta 30303, USA. chejjy@panther.gsu.edu

Insights

The cell adhesion protein CD2-1 can form a unique partially folded state at high temperatures, suggesting conformational flexibility that may drive its structural rearrangements, like domain swapping.

Area of Science:

  • Protein structure and dynamics
  • Biophysics
  • Immunology

Background:

  • Domain 1 of the cell adhesion protein CD2 (CD2-1) exhibits an all-beta structure characteristic of the immunoglobulin superfamily.
  • CD2-1 demonstrates a unique ability to fold into either a native monomer or a metastable intertwined dimer.

Purpose of the Study:

  • To investigate the origins of structural rearrangements in CD2-1.
  • To understand the equilibrium unfolding pathways of CD2-1.

Main Methods:

  • Utilized various biophysical spectroscopic techniques.
  • Studied equilibrium unfolding of CD2-1.

Main Results:

  • Identified a partially folded high-temperature (H) state above approximately 68°C, characterized by distinct secondary structure, exposed residues, and perturbed tertiary structure.
  • Observed an unfolded (D) state in 6 M GuHCl with random-coil secondary and tertiary structures.
  • The H state exhibited increased negative molar ellipticity at 222 nm, indicating non-native helical conformation formation.

Conclusions:

  • The high-temperature intermediate state suggests intrinsic helical propensities within the CD2-1 sequence.
  • This conformational flexibility is proposed to be crucial for the observed domain swapping behavior of CD2-1.

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