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==Introduction==
==Introduction==
The insulin receptor is a [http://en.wikipedia.org/wiki/Transmembrane_protein transmembrane] receptor <ref name="De Meyts"/> that resides in the [http://en.wikipedia.org/wiki/Cell_membrane plasma membrane] and is activated by the binding of insulin. The insulin receptor belongs to the large class of [http://en.wikipedia.org/wiki/Receptor_tyrosine_kinase receptor tyrosine kinase] (RTKs). RTKs are found at the cell surface and have a high affinity for a particular ligand. RTKs are made up of three distinct parts: an extracellular domain with ligand binding sites, a transmembrane region, and an intracellular domain with the tyrosine kinases that initiate intracellular signaling cascades. <ref name="De Meyts"> PMID: 27512793 </ref> Downstream signaling from the insulin receptor initiates a variety of cellular pathways including glucose [http://en.wikipedia.org/wiki/Homeostasis homeostasis], regulation of lipid, protein, and carbohydrate metabolism, gene expression, and even modulation of brain neurotransmitter levels. <ref name="Tatulian"/> '''This page focuses specifically on the insulin receptor's role in glucose homeostasis.''' Through recent cryo-EM structures of the insulin receptor bound in various conformations, a complete three-dimensional understanding of this conformational changes in finally coming into focus. The discussion on this page will include an explanation of the insulin receptors' structure that lends to its ability to undergo a unique conformation change to induce signaling, as well as highlight the functionalities of the receptors' multiple binding sites.
The insulin receptor is a [http://en.wikipedia.org/wiki/Transmembrane_protein transmembrane] receptor <ref name="De Meyts"/> that resides in the [http://en.wikipedia.org/wiki/Cell_membrane plasma membrane] and is activated by the binding of insulin. The insulin receptor belongs to the large class of [http://en.wikipedia.org/wiki/Receptor_tyrosine_kinase receptor tyrosine kinase] (RTKs). RTKs are found at the cell surface and have a high affinity for a particular ligand. RTKs are made up of three distinct parts: an extracellular domain with ligand binding sites, a transmembrane region, and an intracellular domain with the tyrosine kinases that initiate intracellular signaling cascades. <ref name="De Meyts"> PMID: 27512793 </ref> Downstream signaling from the insulin receptor initiates a variety of cellular pathways including glucose [http://en.wikipedia.org/wiki/Homeostasis homeostasis], regulation of lipid, protein, and carbohydrate metabolism, gene expression, and even modulation of brain neurotransmitter levels. <ref name="Tatulian"/> '''This page focuses specifically on the insulin receptor's role in glucose homeostasis.''' Through recent [http://en.wikipedia.org/wiki/Transmission_electron_cryomicroscopy cryo-EM] structures of the insulin receptor bound in various conformations, a complete three-dimensional understanding of this conformational changes in finally coming into focus. The discussion on this page will include an explanation of the insulin receptors' structure that lends to its ability to undergo a unique conformation change to induce signaling, as well as highlight the functionalities of the receptors' multiple binding sites.


==Structural Overview==
==Structural Overview==
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====Alpha Subunits====
====Alpha Subunits====
[[Image:Harrison Image2.png|thumb|right|260px|Figure 1: Insulin receptor apo receptor. Site L1' is colored a dark green, CR' is orange, L2' is bright blue, L2 is yellow, CR is red, L1 is dark blue, FnIII-1 is brown, and FnIII-2 is light pink. Insulin is shown bound and is colored dark pink. [http://www.rcsb.org/structure/6CE7 PDB 6CE7]]]
[[Image:Harrison Image2.png|thumb|right|260px|Figure 1: Insulin receptor apo receptor. Site L1' is colored a dark green, CR' is orange, L2' is bright blue, L2 is yellow, CR is red, L1 is dark blue, FnIII-1 is brown, and FnIII-2 is light pink. Insulin is shown bound and is colored dark pink. [http://www.rcsb.org/structure/6CE7 PDB 6CE7]]]
The alpha subunits make up the extracellular domain ([http://en.wikipedia.org/wiki/Ectodomain ectodomain]) of the insulin receptor and are the sites of insulin binding. The alpha subunit is comprised of two Leucine rich domains (L1 & L2), a Cysteine rich domain (CR), and a <scene name='83/832953/Alpha_c_helix/6'>C-Terminal alpha helix</scene> (Figure 1). <ref name="Scapin"> PMID 29512653 </ref> The CT-alpha helix is unique in its position that allows it to reach across the receptor and interact with the insulin at the binding site on the opposing side of the receptor. The alpha subunits are held together by a [http://en.wikipedia.org/wiki/Disulfide disulfide bond] between <scene name='83/832953/Cysteine_bond/2'>cysteine residues</scene> at the CYS524 position on each alpha subunit. The disulfide bonds are important to the overall stabilization of the molecule as it binds to insulin. Two types of insulin binding sites are present in the alpha subunits, <scene name='83/832953/Sites_1_and_1_prime_location/17'>sites 1 and 1'</scene> and <scene name='83/832953/Sites_2_and_2_prime_location/13'>sites 2 and 2'</scene> (Figure 2). The sites are in pairs because of the heterodimeric nature of the receptor. Due to structural differences, as well as greater surface area and accessibility, binding sites 1 and 1' have much higher affinity than that of sites 2 and 2'. Insulin can also bind at sites 2 and 2', but the location on the back of the beta sheet of the FnIII-1 domain and lack of surface area decreases the likelihood of their binding site becoming occupied as quickly. <ref name="Uchikawa"> DOI 10.7554/eLife.48630 </ref> [http://en.wikipedia.org/wiki/Transmission_electron_cryomicroscopy Cryo-EM] has imaged insulin bound structures that displayed a T-shape conformation in the alpha subunits, which make up the receptors extracellular domain region.<ref name="Uchikawa" />  
The alpha subunits make up the extracellular domain ([http://en.wikipedia.org/wiki/Ectodomain ectodomain]) of the insulin receptor and are the sites of insulin binding. The alpha subunit is comprised of two Leucine rich domains (L1 & L2), a Cysteine rich domain (CR), and a <scene name='83/832953/Alpha_c_helix/6'>C-Terminal alpha helix</scene> (Figure 1). <ref name="Scapin"> PMID 29512653 </ref> The CT-alpha helix is unique in its position that allows it to reach across the receptor and interact with the insulin at the binding site on the opposing side of the receptor. The alpha subunits are held together by a [http://en.wikipedia.org/wiki/Disulfide disulfide bond] between <scene name='83/832953/Cysteine_bond/2'>cysteine residues</scene> at the CYS524 position on each alpha subunit. The disulfide bonds are important to the overall stabilization of the molecule as it binds to insulin. Two types of insulin binding sites are present in the alpha subunits, <scene name='83/832953/Sites_1_and_1_prime_location/17'>sites 1 and 1'</scene> and <scene name='83/832953/Sites_2_and_2_prime_location/13'>sites 2 and 2'</scene> (Figure 2). The sites are in pairs because of the heterodimeric nature of the receptor. Due to structural differences, as well as greater surface area and accessibility, binding sites 1 and 1' have much higher affinity than that of sites 2 and 2'. Insulin can also bind at sites 2 and 2', but the location on the back of the beta sheet of the FnIII-1 domain and lack of surface area decreases the likelihood of their binding site becoming occupied as quickly. <ref name="Uchikawa"> DOI 10.7554/eLife.48630 </ref> Cryo-EM has imaged insulin bound structures that displayed a T-shape conformation in the alpha subunits, which make up the receptors extracellular domain region.<ref name="Uchikawa" />  
[[Image:4 sites highlighted - Harrison.png|thumb|right|260px|Figure 2: The four binding sites of insulin. Sites 1 and 1' are colored green, sites 2 and 2' are colored red.  [http://www.rcsb.org/structure/6SOF PDB 6SOF]]]
[[Image:4 sites highlighted - Harrison.png|thumb|right|260px|Figure 2: The four binding sites of insulin. Sites 1 and 1' are colored green, sites 2 and 2' are colored red.  [http://www.rcsb.org/structure/6SOF PDB 6SOF]]]


===Beta Subunits===
===Beta Subunits===
The beta subunit spans from the extracellular domain across the transmembrane region and into the intracellular portion of the insulin receptor. The beta subunit is composed of part of [http://en.wikipedia.org/wiki/Fibronectin fibronectin] domain III-2 and all of Fibronectin domain III-3. <ref name="Scapin" /> The beta subunit's FnIII-3 domain has links through the transmembrane region into the intracellular part of the membrane. Cryo-EM results have displayed clear representations of FnIII-2 and FnIII-3 domains, but lack in their ability to model the receptor structure throughout the transmembrane region and intracellular region. Although, the FnIII-3 domain is connected to these regions, so it has been proposed that the T-shape conformation extends all the way to the tyrosine kinase domain region. (see [http://www.rcsb.org/structure/4XLV PDB 4XLV]). <ref name= "Cabail"> DOI: 10.1038/ncomms7406 </ref>
The beta subunit spans from the extracellular domain across the transmembrane region and into the intracellular portion of the insulin receptor. The beta subunit is composed of part of [http://en.wikipedia.org/wiki/Fibronectin fibronectin] domain III-2 and all of Fibronectin domain III-3. <ref name="Scapin" /> The beta subunit's FnIII-3 domain has links through the transmembrane region into the intracellular part of the membrane. Cryo-EM results have displayed clear representations of FnIII-2 and FnIII-3 domains, but lack in their ability to model the receptor structure throughout the transmembrane region and intracellular region. Although the FnIII-3 domain is connected to these regions, it has been proposed that the T-shape conformation extends all the way to the tyrosine kinase domain region (see [http://www.rcsb.org/structure/4XLV PDB 4XLV]). <ref name= "Cabail"> DOI: 10.1038/ncomms7406 </ref>


== Function==
== Function==

Latest revision as of 17:16, 20 April 2020

Homo sapiens Insulin Receptor

An interactive view of the human insulin receptor. The alpha subunits are pink and purple, the beta subunits are green and teal blue, and the insulins bound are light blue. (PDB Code 6SOF)

Drag the structure with the mouse to rotate

References


Student Contributors

  • Harrison Smith
  • Alyssa Ritter