Large T Antigen: Difference between revisions
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The origin binding domain monomer consists of five anti-parallel beta sheets flanked on either side by a pair of alpha helices. The monomers assemble into a [http://www.pdb.org/pdb/explore/jmol.do?structureId=2FUF&bionumber=1 hexameric left-handed spiral], whose pitch complements the turn of DNA. Side-side interaction is necessary for hexamerization, in which residues <scene name='User:Udayan_Shevade/Sandbox1/Obd_183_185/1'>Phe183 and Ser185</scene> are crucial. Residues along the <scene name='User:Udayan_Shevade/Sandbox1/Obd_double_hexamer_residues/1'>B3 motif</scene> are necessary in the assembly of a double hexamer. A central pore is formed, large enough for dsDNA, carrying positive charge. A monomer along this pore is able to bind along a series of GAGGC pentanucleotides P1 through P4 at the origin, collectively known as Site II. <scene name='User:Udayan_Shevade/Sandbox1/Obd_residues/1'>Residues</scene> implicated in DNA binding are <scene name='User:Udayan_Shevade/Sandbox1/Obd_153_154_155/5'>Asn 153, Arg154, Thr155 from the A1 motif</scene>; <scene name='User:Udayan_Shevade/Sandbox1/Obd_203_204/1'>His203, Arg204 from the B2 motif</scene>; as well as <scene name='User:Udayan_Shevade/Sandbox1/Obd_201_202/1'>His201 andArg 202</scene><ref name="A"/>. The structural fold adopted by the fully assembled double hexamer is similarly conserved across a number of origin-binding proteins in different viruses, despite varying protein sequences, suggesting sequence-specificity. The Asn and Arg in the A1 motif primarily make up base-specific interactions with the DNA, whereas residues from the B2 loop interact mainly with the phosphate backbone. These specific interactions bury a large surface area of the protein and give rise to a 60nM K<sub>d</sub>.<ref name="C">PMID:1779811</ref>. | The origin binding domain monomer consists of five anti-parallel beta sheets flanked on either side by a pair of alpha helices. The monomers assemble into a [http://www.pdb.org/pdb/explore/jmol.do?structureId=2FUF&bionumber=1 hexameric left-handed spiral], whose pitch complements the turn of DNA. Side-side interaction is necessary for hexamerization, in which residues <scene name='User:Udayan_Shevade/Sandbox1/Obd_183_185/1'>Phe183 and Ser185</scene> are crucial. Residues along the <scene name='User:Udayan_Shevade/Sandbox1/Obd_double_hexamer_residues/1'>B3 motif</scene> are necessary in the assembly of a double hexamer. A central pore is formed, large enough for dsDNA, carrying positive charge. A monomer along this pore is able to bind along a series of GAGGC pentanucleotides P1 through P4 at the origin, collectively known as Site II. <scene name='User:Udayan_Shevade/Sandbox1/Obd_residues/1'>Residues</scene> implicated in DNA binding are <scene name='User:Udayan_Shevade/Sandbox1/Obd_153_154_155/5'>Asn 153, Arg154, Thr155 from the A1 motif</scene>; <scene name='User:Udayan_Shevade/Sandbox1/Obd_203_204/1'>His203, Arg204 from the B2 motif</scene>; as well as <scene name='User:Udayan_Shevade/Sandbox1/Obd_201_202/1'>His201 andArg 202</scene><ref name="A"/>. The structural fold adopted by the fully assembled double hexamer is similarly conserved across a number of origin-binding proteins in different viruses, despite varying protein sequences, suggesting sequence-specificity. The Asn and Arg in the A1 motif primarily make up base-specific interactions with the DNA, whereas residues from the B2 loop interact mainly with the phosphate backbone. These specific interactions bury a large surface area of the protein and give rise to a 60nM K<sub>d</sub>.<ref name="C">PMID:1779811</ref>. | ||
[[Image:Tagobd_dna_interactions.jpg|200px|left|thumb]] | [[Image:Tagobd_dna_interactions.jpg|200px|left|thumb]] | ||
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Binding of large T antigen at the origin of replication allows replicative machinery to unwind and synthesize new DNA. Residues involved in DNA binding also bind ssDNA-binding protein human RPA<ref>PMID:2600586</ref>. T antigen also acts as a repressor of early gene transcription. When increased amounts of T antigen are present, it binds DNA and blocks the overlapping promoter sequence, thus behaving as its own regulator. | Binding of large T antigen at the origin of replication allows replicative machinery to unwind and synthesize new DNA. Residues involved in DNA binding also bind ssDNA-binding protein human RPA<ref>PMID:2600586</ref>. T antigen also acts as a repressor of early gene transcription. When increased amounts of T antigen are present, it binds DNA and blocks the overlapping promoter sequence, thus behaving as its own regulator. | ||
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These rearrangements affect the position of <scene name='User:Udayan_Shevade/Sandbox1/Taghelicase_betahairpin/1'>the "β hairpin,"</scene> a positively-charged structure that protrudes into the central channel. ''Trans''-residues Arg498, Asp499 and Asp502 are located at the base of the hairpin, lending a lever-like functionality. The [http://www.sciencedirect.com/cache/MiamiImageURL/1-s2.0-S0092867404008906-gr7_lrg.jpg/0?wchp=dGLbVlk-zSkWb motion of the β hairpin] unwinds the DNA through the central channel <ref name='D'>PMID:15454080</ref>. | These rearrangements affect the position of <scene name='User:Udayan_Shevade/Sandbox1/Taghelicase_betahairpin/1'>the "β hairpin,"</scene> a positively-charged structure that protrudes into the central channel. ''Trans''-residues Arg498, Asp499 and Asp502 are located at the base of the hairpin, lending a lever-like functionality. The [http://www.sciencedirect.com/cache/MiamiImageURL/1-s2.0-S0092867404008906-gr7_lrg.jpg/0?wchp=dGLbVlk-zSkWb motion of the β hairpin] unwinds the DNA through the central channel <ref name='D'>PMID:15454080</ref>. | ||
[[Image:1SVM_L_O.jpg|500px|left|thumb]] | [[Image:1SVM_L_O.jpg|500px|left|thumb]] | ||
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The helicase domain is also implicated in binding to p53, a transcription factor vital in tumor suppression. Binding of helicase inhibits the functional tetramerization of p53 on DNA<ref>PMID:1560412</ref>. | The helicase domain is also implicated in binding to p53, a transcription factor vital in tumor suppression. Binding of helicase inhibits the functional tetramerization of p53 on DNA<ref>PMID:1560412</ref>. | ||
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Both large T antigen and E2F are able to complex with the Rb pocket simultaneously, suggesting their respective sites are different. So binding is not competitive. Thus to resolve the question of how large T antigen mediates E2F release from Rb, its similarity to homologs is considered. DnaJ serves not only to aid in folding proteins, but also to disassemble complexes. As such, it is proposed [http://www.ncbi.nlm.nih.gov/core/lw/2.0/html/tileshop_pmc/tileshop_pmc_inline.html?title=An%20external%20file%20that%20holds%20a%20picture%2C%20illustration%2C%20etc.%0AObject%20name%20is%20cde030f5.jpg%20%5BObject%20name%20is%20cde030f5.jpg%5D&p=PMC3&id=140208_cde030f5.jpg the large T antigen J domain may recruit hsc70, which then dissociates the EF2-Rb complex]<ref name='E'/>. <scene name='User:Udayan_Shevade/Sandbox1/Tagnterminal_reload/1'>Reload molecule</scene>. | Both large T antigen and E2F are able to complex with the Rb pocket simultaneously, suggesting their respective sites are different. So binding is not competitive. Thus to resolve the question of how large T antigen mediates E2F release from Rb, its similarity to homologs is considered. DnaJ serves not only to aid in folding proteins, but also to disassemble complexes. As such, it is proposed [http://www.ncbi.nlm.nih.gov/core/lw/2.0/html/tileshop_pmc/tileshop_pmc_inline.html?title=An%20external%20file%20that%20holds%20a%20picture%2C%20illustration%2C%20etc.%0AObject%20name%20is%20cde030f5.jpg%20%5BObject%20name%20is%20cde030f5.jpg%5D&p=PMC3&id=140208_cde030f5.jpg the large T antigen J domain may recruit hsc70, which then dissociates the EF2-Rb complex]<ref name='E'/>. <scene name='User:Udayan_Shevade/Sandbox1/Tagnterminal_reload/1'>Reload molecule</scene>. | ||
</StructureSection> | |||
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== 3D structures of large T antigen== | == 3D structures of large T antigen== | ||
Revision as of 13:30, 1 December 2014
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3D structures of large T antigen
Updated on 01-December-2014
References
Proteopedia Page Contributors and Editors (what is this?)
Udayan Shevade, Michal Harel, Alexander Berchansky, Joel L. Sussman, Jaime Prilusky

