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== Introduction ==
== Introduction ==
[[Image:surface TSHR.png|400 px|right|thumb|Figure 1. TSHR with TSH bound. The extracellular and transmembrane domains of the GPCR are shown in green, the hinge region in cyan, and thyrotropin bound in magenta. PDB:[https://www.rcsb.org/structure/7UTZ 7UTZ]]]
[[Image:surface TSHR.png|400 px|right|thumb|Figure 1. TSHR with TSH bound. The extracellular and transmembrane domains of the GPCR are shown in green, the hinge region in cyan, and thyrotropin bound in magenta. PDB:[https://www.rcsb.org/structure/7UTZ 7UTZ]]]
[https://en.wikipedia.org/wiki/Thyroid_hormones Thyroid hormones] exercise essential functions related to activity of thyroid cells as well as metabolic processes and oxygen consumption<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>.  The initiation of the synthesis and release of these hormones is caused by the glycoprotein, thyroid stimulating hormone (TSH), which is released by the anterior pituitary gland<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>. The release of TSH from the anterior pituitary is simulated by thyroid-releasing hormone (TRH) which is released by the hypothalamus. When stimulated by TSH, the thyroid gland will produce and release the the thyroid hormones T4 and T3. T3 is the "active form" of the hormone, however it accounts for only 20% of the thyroid hormone that is released after stimulus by TSH. The T4 that predominates in release from the thyroid will be converted to T3 in the bloodstream. High levels of T3 and T4 can negatively regulate the release of TSH from the anterior pituitary, constituting a negative feedback loop <ref name="Pirahanchi et al.">Pirahanchi Y, Toro F, Jialal I. Physiology, Thyroid Stimulating Hormone. [Updated 2022 May 8]. In: StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing; 2023 Jan-. Available from: https://www.ncbi.nlm.nih.gov/books/NBK499850/</ref>. The thyrotropin receptor <scene name='95/952709/Initial_scene_with_edited_7utz/7'>(TSHR)</scene> is a [https://www.nature.com/scitable/topicpage/gpcr-14047471/ G-protein coupled receptor] on the surface the thyroid gland cells  (Figure 1). TSHR is responsible for binding TSH and transduces signal to initiate synthesis and release of thyroid hormones. In addition to TSH, autoantibodies may also bind to TSHR causing inhibition or activation of its desired function.<ref name="Duan et al.">PMID:35940204</ref><ref name="Kohn et al.">Kohn LD, Shimura H, Shimura Y, Hidaka A, Giuliani C, Napolitano G, Ohmori M, Laglia G, Saji M. The thyrotropin receptor. Vitam Horm. 1995;50:287-384. doi: 10.1016/s0083-6729(08)60658-5. PMID: 7709602.</ref> The resulting misregulation of thyroid hormone levels is the cause of many disorders related to [https://www.endocrineweb.com/conditions/thyroid/hyperthyroidism-vs-hypothyroidism hypo- or hyperthyroidism]. Thus, understanding the signaling of synthesis and release of these hormones will have applications in treating [https://www.hopkinsmedicine.org/health/conditions-and-diseases/disorders-of-the-thyroid thyroid hormone disorders]<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>.
[https://en.wikipedia.org/wiki/Thyroid_hormones Thyroid hormones] exercise essential functions related to activity of thyroid cells as well as metabolic processes and oxygen consumption<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>.  The initiation of the synthesis and release of these hormones is caused by the glycoprotein, thyroid stimulating hormone <scene name='95/952708/Tsh_7t9i/2'>(TSH)</scene>, which is released by the anterior pituitary gland<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>. The release of TSH from the anterior pituitary is simulated by thyroid-releasing hormone (TRH) which is released by the hypothalamus. When stimulated by TSH, the thyroid gland will produce and release the the thyroid hormones T4 and T3. T3 is the "active form" of the hormone, however it accounts for only 20% of the thyroid hormone that is released after stimulus by TSH. The T4 that predominates in release from the thyroid will be converted to T3 in the bloodstream. High levels of T3 and T4 can negatively regulate the release of TSH from the anterior pituitary, constituting a negative feedback loop <ref name="Pirahanchi et al.">Pirahanchi Y, Toro F, Jialal I. Physiology, Thyroid Stimulating Hormone. [Updated 2022 May 8]. In: StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing; 2023 Jan-. Available from: https://www.ncbi.nlm.nih.gov/books/NBK499850/</ref>. The thyrotropin receptor <scene name='95/952709/Initial_scene_with_edited_7utz/7'>(TSHR)</scene> is a [https://www.nature.com/scitable/topicpage/gpcr-14047471/ G-protein coupled receptor] on the surface the thyroid gland cells  (Figure 1). TSHR is responsible for binding TSH and transduces signal to initiate synthesis and release of thyroid hormones. In addition to TSH, autoantibodies may also bind to TSHR causing inhibition or activation of its desired function.<ref name="Duan et al.">PMID:35940204</ref><ref name="Kohn et al.">Kohn LD, Shimura H, Shimura Y, Hidaka A, Giuliani C, Napolitano G, Ohmori M, Laglia G, Saji M. The thyrotropin receptor. Vitam Horm. 1995;50:287-384. doi: 10.1016/s0083-6729(08)60658-5. PMID: 7709602.</ref> The resulting misregulation of thyroid hormone levels is the cause of many disorders related to [https://www.endocrineweb.com/conditions/thyroid/hyperthyroidism-vs-hypothyroidism hypo- or hyperthyroidism]. Thus, understanding the signaling of synthesis and release of these hormones will have applications in treating [https://www.hopkinsmedicine.org/health/conditions-and-diseases/disorders-of-the-thyroid thyroid hormone disorders]<ref name="Yen">Yen PM. Physiological and molecular basis of thyroid hormone action. Physiol Rev. 2001 Jul;81(3):1097-142. doi: 10.1152/physrev.2001.81.3.1097. PMID: 11427693.</ref>.
== Structure ==
== Structure ==
=== Active and Inactive Form ===
=== Active and Inactive Form ===
[[Image:Finalmorphpic2.png|450 px|right|thumb|Figure 2: Inactive form of the thyrotropin receptor shown in blue (PDB:[https://www.rcsb.org/structure/7T9M 7T9M]). Active form of the thyrotropin receptor shown in green (PDB:[https://www.rcsb.org/structure/7T9I 7T9I]).]]
[[Image:Finalmorphpic2.png|450 px|right|thumb|Figure 2: Inactive form of the thyrotropin receptor shown in blue (PDB:[https://www.rcsb.org/structure/7T9M 7T9M]). Active form of the thyrotropin receptor shown in green (PDB:[https://www.rcsb.org/structure/7T9I 7T9I]).]]
TSHR exists in dynamic equilibrium between two states: active and inactive (Figure 2). In the active form, the extracellular portion is rotated 55° away from the cell membrane. <scene name='95/952708/Tsh_7t9i/2'>TSH</scene> will bind and keep the active state in the up position as a result of clashes between bound TSH and the cell membrane.<ref name="Faust" />. <scene name='95/952708/Tsh_7t9i/5'>Glycolysations of an N52 residue</scene> on the <scene name='95/952707/Tsh_7t9i/1'>α-subunit of TSH</scene> cause this clash.  
TSHR exists in dynamic equilibrium between two states: active and inactive (Figure 2). In the active form, the extracellular portion is rotated 55° away from the cell membrane. TSH will bind and keep the active state in the up position as a result of clashes between bound TSH and the cell membrane.<ref name="Faust" />. <scene name='95/952708/Tsh_7t9i/5'>Glycolysations of an N52 residue</scene> on the <scene name='95/952707/Tsh_7t9i/1'>α-subunit of TSH</scene> cause this clash.  
===Structural Overview===  
===Structural Overview===  
The thyrotropin receptor has an extracellular domain (ECD) that is composed of a <scene name='95/952709/Lrrd_real/2'>leucine rich repeat domain (LRRD)</scene> as well as a hinge region. The <scene name='95/952709/Hinge_region_real/2'>hinge region</scene> links the ECD to the seven transmembrane helices <scene name='95/952709/7tm_helices/4'>(7TM domain)</scene>, which span from the ECD to the intracellular loops <ref name= "Keinau et al.">Kleinau, G., Worth, C. L., Kreuchwig, A., Biebermann, H., Marcinkowski, P., Scheerer, P., &amp; Krause, G. (2017). Structural–functional features of the thyrotropin receptor: A class A G-protein-coupled receptor at work. Frontiers in Endocrinology, 8. https://doi.org/10.3389/fendo.2017.00086</ref>. Thyrotropin binding causes a conformational change in the ECD that is transduced through the transmembrane helices. In the active state, the ECD is in the "up" position, while in the inactive state, the ECD is in the "down" state, closer to the cell membrane. A "push-pull" mechanism is proposed for the ECD's conformational change between active and inactive states. In the "push" model, TSH binds to the receptor and sterically clashes with the cellular membrane, forcing the ECD up away from the membrane. In the pull model, a short α-helix interacts with TSH to pull the ECD up. The active (up) form of the ECD causes a conformation shift in the TMD which causes differential interactions with a heterotrimeric <scene name='95/952709/G_protein/2'>G-protein</scene>, initiating intracellular signaling<ref name="Duan et al.">PMID:35940204</ref>.  
The thyrotropin receptor has an extracellular domain (ECD) that is composed of a <scene name='95/952709/Lrrd_real/2'>leucine rich repeat domain (LRRD)</scene> as well as a hinge region. The <scene name='95/952709/Hinge_region_real/2'>hinge region</scene> links the ECD to the seven transmembrane helices <scene name='95/952709/7tm_helices/4'>(7TM domain)</scene>, which span from the ECD to the intracellular loops <ref name= "Keinau et al.">Kleinau, G., Worth, C. L., Kreuchwig, A., Biebermann, H., Marcinkowski, P., Scheerer, P., &amp; Krause, G. (2017). Structural–functional features of the thyrotropin receptor: A class A G-protein-coupled receptor at work. Frontiers in Endocrinology, 8. https://doi.org/10.3389/fendo.2017.00086</ref>. Thyrotropin binding causes a conformational change in the ECD that is transduced through the transmembrane helices. In the active state, the ECD is in the "up" position, while in the inactive state, the ECD is in the "down" state, closer to the cell membrane. A "push-pull" mechanism is proposed for the ECD's conformational change between active and inactive states. In the "push" model, TSH binds to the receptor and sterically clashes with the cellular membrane, forcing the ECD up away from the membrane. In the pull model, a short α-helix interacts with TSH to pull the ECD up. The active (up) form of the ECD causes a conformation shift in the TMD which causes differential interactions with a heterotrimeric <scene name='95/952709/G_protein/2'>G-protein</scene>, initiating intracellular signaling<ref name="Duan et al.">PMID:35940204</ref>.  

Revision as of 02:31, 17 April 2023

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This Sandbox is Reserved from February 27 through August 31, 2023 for use in the course CH462 Biochemistry II taught by R. Jeremy Johnson at the Butler University, Indianapolis, USA. This reservation includes Sandbox Reserved 1765 through Sandbox Reserved 1795.
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The thyrotropin receptor with TSH bound. TSHR is shown in dark blue with TSH (light green) bound. The receptor is bound to its G-protein with the various subunits of the G-protein shown in pink, red, turquoise, and yellow. PDB:7UTZ

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References