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Updated: Jan 10, 2026

Generation of a Mouse Spontaneous Autoimmune Thyroiditis Model
Published on: March 17, 2023
The thyrotropin receptor structure and interactions with autoantibodies
Abstract:
Cryo-EM studies indicate that full-length human TSH receptor (TSHR) is a monomer consisting of a leucine-rich repeat (LRR) domain (LRD), hinge region (HR) and transmembrane domain (TMD). Receptor autoantibodies (TRAb) bind to the extracellular domain (LRD plus HR). In the cell membrane, TSHR transitions between inactive and active states, involving rotation of the LRD about the HR, with the active state LRD further from the membrane. Cryo-EM structures of the TSHR in complex with different human monoclonal autoantibodies provide a detailed understanding of how they interact with the receptor. Stimulating monoclonal autoantibody M22™ binds to the entire LRD (LRR 1-11) concave surface and cannot interact with the inactive state receptor, as this would result in a clash between antibody and membrane. No clash occurs when M22™ binds the active state, and once bound, M22™ holds the receptor in the active state, resulting in prolonged activation. K1-18™, a different stimulating monoclonal autoantibody, interacts with LRR 1-11 in a similar way to M22™. Blocking type monoclonal autoantibody K1-70™ only interacts with LRR 1-7, positioning itself clear of the cell membrane when interacting with inactive or active receptor states. Once bound, binding of TSH and other TRAb is prevented. Monoclonal autoantibody 5C9™ interacts differently, binding the inactive conformation from LRR 3 to the HR. Its heavy chain CDR3 interacts with the HR, locking the receptor in the inactive state, causing inhibition of constitutive activity, activating mutation activity and blocking receptor binding by TSH and TRAb. Elucidation of the structure of the TSHR and mechanisms of its activation and inactivation by TRAb is of great importance for the development of new TSHR-specific drugs.
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