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Updated: Aug 8, 2026

Production of Disulfide-stabilized Transmembrane Peptide Complexes for Structural Studies
Published on: March 6, 2013
Nonnative intermediate state of acid-stable beta-sheet protein
J J Yang1, A R Carroll, W Yang
1Department of Chemistry and Center for Drug Design, Georgia State University, Atlanta 30303, USA. chejjy@panther.gsu.edu
Insights
The N-terminal domain 1 of CD2 (CD2-1) maintains its structure across a wide pH range but unfolds in TFE, revealing insights into protein folding and cell adhesion.
Area of Science:
- Protein structure and function
- Immunology
- Biochemistry
Background:
- CD2 is a cell adhesion molecule from the immunoglobulin superfamily, vital for immune cell interactions.
- It plays a key role in cell-cell adhesion through its Ig-like domains.
Purpose of the Study:
- To investigate the structural stability of the N-terminal domain 1 of CD2 (CD2-1) under varying pH and chemical conditions.
- To elucidate the factors contributing to the Ig beta-structure of CD2-1.
Main Methods:
- Near- and far-UV circular dichroism (CD) spectroscopy
- Fluorescence spectroscopy
- 1H nuclear magnetic resonance (NMR) spectroscopy
Main Results:
- CD2-1 retains its native tertiary structure from pH 1.0 to 10.0.
- 2,2,2-trifluoroethanol (TFE) disrupts tertiary structure and induces an alpha-helical conformation, correlating with inherent primary sequence helicity.
- Electrostatic interactions are less critical for native structure but vital for adhesion function; hydrophobic and hydrogen-bonding disruptions significantly alter conformation.
Conclusions:
- CD2-1's native structure is robust across a broad pH range.
- Hydrophobic interactions and hydrogen bonds are critical for maintaining CD2-1's conformation.
- Conformational flexibility in CD2-1 residues may facilitate domain-swapping and dimer formation.
Abstract:
Cell adhesion molecule, CD2, from the immunoglobulin superfamily, is comprised of antibodies and Ig-like domains and plays a fundamental role, not only in the immune system, but also in the interactions between cells, specifically in cell-cell adhesion. This study examines the N-terminal domain 1 of CD2 (CD2-1) at different pHs, and in 2,2,2-trifluoroethanol (TFE), using nears- and far-UV circular dichroism (CD), fluorescence, and 1H nuclear magnetic resonance to elucidate factors contributing to the Ig beta-structure. Contrary to the complete unfolding induced by guanidinehydrochloride, CD2-1 retains its native tertiary structure at pHs from 1.0 to 10.0. Like the effects of high temperatures that have previously been observed, TFE reduces the integrity of the tertiary structure, while reorganizing the secondary structure from a native all-beta-sheet to a significantly alpha-helical conformation. The induced helicity of CD2-1 correlates with the helicity inherent in its primary sequence. Our results suggest that electrostatic interactions are less important for the formation of the native secondary and tertiary structure of CD2-1, although they are crucial for CD2's adhesion function. Interference with the protein's hydrophobic interactions and hydrogen-bonding networks, however, causes significant changes in its conformation. Residues of CD2-1, with high conformational flexibility, may contribute for the formation of a metastable dimer by domain-swapping.
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