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Thyroid Stimulating Hormone Receptor (TSHR)
This is a default text for your page '. Click above on edit this page' to modify. Be careful with the < and > signs. You may include any references to papers as in: the use of JSmol in Proteopedia [1] or to the article describing Jmol [2] to the rescue. ContentsIntroductionThyroid Stimulating Hormone Receptor (TSHR) is a G-Protein Coupled Receptor (GPCR) found in human thyroid follicles. TSHR is activated by the Thyroid Stimulating Hormone (TSH) also known as thyrotropin. Activation of TSHR is initiates a signaling pathway for the production of thyroid hormones such as T3 and T4 (Fig 1). StructureTSHR forms an active signalling complex with TSH and Gs proteins. This is called the TSH-TSHR-Gs Complex. TSH contains an α and a β subunit. The α subunit is a shared subunit amongst glycoproteins. The β subunit is unique to TSH. TSH binds to the extracellular domain of TSHR. TSHR has 3 main domains: Leucine Rich Region Domain (coral), the hinge region (blue-purple), and the transmembrane region(rainbow). The leucine rich region domain is extracellular. This is where TSH will bind. The hinge region is also extracellular. Conformational changes in this region are responsible for the switch between the active vs inactive state. Finally, the transmembrane region is located within the plasma membrane. Its function is to hold the receptor into the membrane. This domain is also bound to the G-proteins at the N-terminus. The G-proteins are intracellular. The G-protein is made up of three subunits: α,β, and γ. When TSHR is activated, it causes the Gα subunit to dissociate from the Gβγ subunits. The Gα subunit is responsible for activating adenylyl cyclase, phospholipase C and ion channels. This sets off the TSH signaling pathway. Transmembrane RegionThe Transmembrane Region (top-view) is embedded within the cell membrane. Like other G-protein receptors, it is made up of a 7-pass helix [3]. It is made up of about 284 residues. The transmembrane region is surrounded by a "belt" of 15 cholesterols. When cholesterol binding sites are mutated such that they are unfunctional, TSHR activity decreases. Thus, the cholesterols are important for TSHR function [4]. Additionally, at the N-terminus, the transmembrane region binds to the G-proteins, which are located intracellularly. Leucine Rich DomainThe Leucine Rich Repeat Domain (LRRD) is part of the extracellular region of TSHR. It is made up of about 280 different residues. Connected to its C-terminus is the Hinge Region. It is made up of an extensive parallel β-sheet. This β-sheet is where TSH binds and is called the binding pocket[4]. Hinge RegionThe Hinge Region (purple-blue) connects the Transmembrane Region to the Leucine Rich Domain. It is also sometimes referred to as the signaling specificity domain because there is some evidence suggesting that this region is important in both TSH binding and signal transduction. [5]. It is made up of two α-helices that are connected via di-sulfide bonds(shown in yellow) and is made up of about 134 residues. Interactions between these two helices and TSH help orient TSH properly. These interactions are essential for TSH binding, however, they are not required for the activation of TSHR. Conformational changes in this region, specifically the orientation of Y279 residue, are responsible for the bringing TSHR into the active state [3] Active vs Inactive StateWhen TSHR is not bound to TSH, it is in the inactive state. This is also considered the "down" state because the LRRD is pointing down. When TSH binds to TSHR, steric clashing between TSH and the cell-membrane cause TSHR to take on the active or "up" state (fig 2). During this transition, the Extracellular domains rotate 55° along an axis. This rotation is caused by conformational changes within the Hinge Region, specifically at the Y279 residue. This residue moves 6 angstroms relative to I486, which is a residue located in the Transmembrane Region [3] (Fig 3). Specific ResiduesBiological RelevanceThis is a sample scene created with SAT to color by Group, and another to make a transparent representation of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.
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References
Student Contributors
- Alex Kem
- Grace Lane