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From Proteopedia
(Difference between revisions)
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== Structure == | == Structure == | ||
- | NTCP is a transmembrane protein found in hepatocyte cells. It consists of nine <scene name='95/952697/Ntcp_open-pore_state/ | + | NTCP is a transmembrane protein found in hepatocyte cells. It consists of nine <scene name='95/952697/Ntcp_open-pore_state/17'>transmembrane alpha helices</scene>, with the N-terminus located on the extracellular side of the plasma membrane and the C-terminus located on the intracellular side (Figure 3). Transmembrane helices are connected by short loops as well as extracellular and intracellular alpha helices that lie nearly parallel to the membrane.<ref name="Asami" /> Structures were determined by [https://en.wikipedia.org/wiki/Cryogenic_electron_microscopy cryogenic electron microscopy (Cryo-EM)] of NTCP in complex with antibodies or nanobodies. <ref name="Goutam" /> <ref name="Asami" /> <ref name="Park" /> <ref name="Liu" /> |
[[Image:topography.png|300 px|thumb|Figure 3. NTCP Topology.]] | [[Image:topography.png|300 px|thumb|Figure 3. NTCP Topology.]] | ||
=== Domains === | === Domains === | ||
- | NTCP contains <scene name='95/952697/Ntcp_open-pore_state/ | + | NTCP contains <scene name='95/952697/Ntcp_open-pore_state/16'>two characteristic domains</scene>: the core and panel domains. Movement of these two domains allows recognition and transport of bile acids into hepatocytes. |
*<b><font color="orange">Panel Domain</font></b>: <scene name='95/952697/Ntcp_open-pore_state/11'>Residues 1-44, 155-208</scene> | *<b><font color="orange">Panel Domain</font></b>: <scene name='95/952697/Ntcp_open-pore_state/11'>Residues 1-44, 155-208</scene> | ||
** Formed by transmembrane helices TM1, TM5, and TM6. | ** Formed by transmembrane helices TM1, TM5, and TM6. |
Revision as of 23:42, 2 April 2023
Sodium-taurocholate Co-transporting Polypeptide
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References
- ↑ 1.0 1.1 1.2 1.3 Goutam K, Ielasi FS, Pardon E, Steyaert J, Reyes N. Structural basis of sodium-dependent bile salt uptake into the liver. Nature. 2022 Jun;606(7916):1015-1020. DOI: 10.1038/s41586-022-04723-z.
- ↑ 2.0 2.1 2.2 2.3 Asami J, Kimura KT, Fujita-Fujiharu Y, Ishida H, Zhang Z, Nomura Y, Liu K, Uemura T, Sato Y, Ono M, Yamamoto M, Noda T, Shigematsu H, Drew D, Iwata S, Shimizu T, Nomura N, Ohto U. Structure of the bile acid transporter and HBV receptor NTCP. Nature. 2022 Jun; 606 (7916):1021-1026. DOI: 10.1038/s41586-022-04845-4.
- ↑ 3.0 3.1 3.2 3.3 3.4 3.5 Park JH, Iwamoto M, Yun JH, Uchikubo-Kamo T, Son D, Jin Z, Yoshida H, Ohki M, Ishimoto N, Mizutani K, Oshima M, Muramatsu M, Wakita T, Shirouzu M, Liu K, Uemura T, Nomura N, Iwata S, Watashi K, Tame JRH, Nishizawa T, Lee W, Park SY. Structural insights into the HBV receptor and bile acid transporter NTCP. Nature. 2022 Jun;606(7916):1027-1031. DOI: 10.1038/s41586-022-04857-0.
- ↑ 4.0 4.1 4.2 Liu H, Irobalieva RN, Bang-Sørensen R, Nosol K, Mukherjee S, Agrawal P, Stieger B, Kossiakoff AA, Locher KP. Structure of human NTCP reveals the basis of recognition and sodium-driven transport of bile salts into the liver. Cell Res. 2022 Aug;32(8):773-776. DOI: 10.1038/s41422-022-00680-4.
- ↑ 5.0 5.1 Qi X, Li W. Unlocking the secrets to human NTCP structure. Innovation (Camb). 2022 Aug 1;3(5):100294. DOI: 10.1016/j.xinn.2022.100294.
- ↑ 6.0 6.1 Zhang X, Zhang Q, Peng Q, Zhou J, Liao L, Sun X, Zhang L, Gong T. Hepatitis B virus preS1-derived lipopeptide functionalized liposomes for targeting of hepatic cells. Biomaterials. 2014 Jul;35(23):6130-41. DOI: 10.1016/j.biomaterials.2014.04.037.
- ↑ Patton JS, Carey MC. Watching fat digestion. Science. 1979 Apr 13;204(4389):145-8. DOI: 10.1126/science.432636.
- ↑ Donkers JM, Kooijman S, Slijepcevic D, Kunst RF, Roscam Abbing RL, Haazen L, de Waart DR, Levels JH, Schoonjans K, Rensen PC, Oude Elferink RP, van de Graaf SF. NTCP deficiency in mice protects against obesity and hepatosteatosis. JCI Insight. 2019 Jun 25;5(14):e127197. DOI: 10.1172/jci.insight.127197.
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