A molecular basis for tetramer destabilization and aggregation of transthyretin Ala97Ser

Author:

Wang Yi‐Shiang1,Huang Chun‐Hsiang2,Liou Gunn‐Guang3,Hsueh Hsueh‐Wen4,Liang Chi‐Ting1,Tseng Hsi‐Ching5,Huang Shing‐Jong5,Chao Chi‐Chao6,Hsieh Sung‐Tsang789,Tzeng Shiou‐Ru1ORCID

Affiliation:

1. Institute of Biochemistry and Molecular Biology College of Medicine, National Taiwan University Taipei Taiwan

2. Protein diffraction group, Experimental instrumentation division National Synchrotron Radiation Research Center Hsinchu Taiwan

3. Office of Research and Development, College of Medicine National Taiwan University Taipei Taiwan

4. Department of Anatomy and Cell Biology, College of Medicine National Taiwan University Taipei Taiwan

5. Instrumentation Center National Taiwan University Taipei Taiwan

6. Department of Neurology National Taiwan University Hospital Taipei Taiwan

7. Graduate Institute of Brain and Mind Sciences Taipei Taiwan

8. Graduate Institute of Clinical Medicine Taipei Taiwan

9. Center of Precision Medicine National Taiwan University College of Medicine Taipei Taiwan

Abstract

AbstractTransthyretin (TTR)‐related amyloidosis (ATTR) is a syndrome of diseases characterized by the extracellular deposition of fibrillar materials containing TTR variants. Ala97Ser (A97S) is the major mutation reported in Taiwanese ATTR patients. Here, we combine atomic resolution structural information together with the biochemical data to demonstrate that substitution of polar Ser for a small hydrophobic side chain of Ala at residue 97 of TTR largely influences the local packing density of the FG‐loop, thus leading to the conformational instability of native tetramer, the increased monomeric species, and thus the enhanced amyloidogenicity of apo‐A97S. Based on calorimetric studies, the tetramer destabilization of A97S can be substantially altered by interacting with native stabilizers via similarly energetic patterns compared to that of wild‐type (WT) TTR; however, stabilizer binding partially rearranges the networks of hydrogen bonding in TTR variants while FG‐loops of tetrameric A97S still remain relatively flexible. Moreover, TTR in complexed with holo‐retinol binding protein 4 is slightly influenced by the structural and dynamic changes of FG‐loop caused by A97S substitution with an approximately five‐fold difference in binding affinity. Collectively, our findings suggest that the amyloidogenic A97S mutation destabilizes TTR by increasing the flexibility of the FG‐loop in the monomer, thus modulating the rate of amyloid fibrillization.

Funder

National Taiwan University

Ministry of Science and Technology, Taiwan

National Taiwan University Hospital

Publisher

Wiley

Subject

Molecular Biology,Biochemistry

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