User:Alexis Neyman/Sandbox 1

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== Relationship to 9G8 ==
== Relationship to 9G8 ==
[[Image:Compare_RRMs.png|300 px|left|thumb|Figure 6: Comparing SRp20 and 9G8 RRMs]] <scene name='78/781963/Rrm_motif/1'>SRp20</scene> and splicing factor <scene name='78/781963/9g8_rrm/1'>9G8</scene> are both sequence specific RNA binding proteins (Figure 6). They are the smallest members of the Serine-and-Arginine Rich (SR) protein family. Both RNA Recognition Motifs (RRMs) have a similar βαββαβ topology. SRp20 and 9G8 are 80% identical. The sequence alignment shows the alignment of the RRMs of SRp20 and 9G8 <ref name="Hargous">PMID:17036044</ref>. SRp20 binds pyrimidine rich areas while 9G8 binds purine rich areas.This difference in binding comes from the fact that 9G8 has a [https://en.wikipedia.org/wiki/Zinc_finger zinc knuckle] that recognizes GAC triplets <ref name="Cava">PMID:10094314 </ref>. 9G8s RRM is followed by a zinc knuckle and then the SR domain whereas SRp20s RRM is followed directly by the SR domain. When 9G8 lacks a zinc knuckle, it binds pyrimidine-rich sequences like SRp20 <ref name="Hargous">PMID:17036044</ref>. The zinc knuckle of 9G8 contains glycine residues at positions 5 and 8 and charged residues at positions 6 and 13 that are highly conserved <ref name="Cava">PMID:10094314 </ref>. Due to the poor solubility problem, a structure for the zinc knuckle of 9G8 is not available to show in an image.
[[Image:Compare_RRMs.png|300 px|left|thumb|Figure 6: Comparing SRp20 and 9G8 RRMs]] <scene name='78/781963/Rrm_motif/1'>SRp20</scene> and splicing factor <scene name='78/781963/9g8_rrm/1'>9G8</scene> are both sequence specific RNA binding proteins (Figure 6). They are the smallest members of the Serine-and-Arginine Rich (SR) protein family. Both RNA Recognition Motifs (RRMs) have a similar βαββαβ topology. SRp20 and 9G8 are 80% identical. The sequence alignment shows the alignment of the RRMs of SRp20 and 9G8 <ref name="Hargous">PMID:17036044</ref>. SRp20 binds pyrimidine rich areas while 9G8 binds purine rich areas.This difference in binding comes from the fact that 9G8 has a [https://en.wikipedia.org/wiki/Zinc_finger zinc knuckle] that recognizes GAC triplets <ref name="Cava">PMID:10094314 </ref>. 9G8s RRM is followed by a zinc knuckle and then the SR domain whereas SRp20s RRM is followed directly by the SR domain. When 9G8 lacks a zinc knuckle, it binds pyrimidine-rich sequences like SRp20 <ref name="Hargous">PMID:17036044</ref>. The zinc knuckle of 9G8 contains glycine residues at positions 5 and 8 and charged residues at positions 6 and 13 that are highly conserved <ref name="Cava">PMID:10094314 </ref>. Due to the poor solubility problem, a structure for the zinc knuckle of 9G8 is not available to show in an image.
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A study by Huang and Steitz showed that 9G8 and SRp20 promote the export of mRNA from the nucleus<ref name="HS">PMID:11336712 </ref>. There is a 101-nt sequence in the coding region of mouse histone H2a mRNA that promotes the the export of intronless human β-globin [https://en.wikipedia.org/wiki/Complementary_DNA cDNA] transcripts <ref name="HC">PMID:9294170 </ref>. Of this 101-nt sequence, there is specifically a 22-nt sequence that is necessary for export activity. When this 101-nt sequence was not present, mRNA was not properly processed, and RNA accumulated in the nucleus; however, when the 101-nt sequence was present mRNA export from the nucleus was improved almost 4-fold. This 101-nt sequence improves export and polyadenylation, but removing the 22-nt sequence stopped both of these activities suggesting that the 22-nt sequence is required for successful nuclear export of β-globin cDNA. UV [https://en.wikipedia.org/wiki/Cross-link cross-linking] and [https://en.wikipedia.org/wiki/Immunoprecipitation immunoprecipitation] experiments determined the proteins that specifically associate with the 22-nt sequence.[[Image:SRp20_and_9G8_Sequence_Alignment.png|250 px|right|thumb|Figure 7: SRp20 and 9G8 Sequence Alignment]] It was determined that SR proteins were associating with the 22-nt sequence by adding antibodies specific for SRp20 then 9G8. SRp20 antibodies inhibited mRNA export 3-fold while 9G8 antibodies inhibited mRNA export at least 10-fold showing that SRp20 and 9G8 are active factors that promote mRNA export. It was shown that SRp20 and 9G8 are cross-linked to polyadenylated RNA in the nucleus and cytoplasm showing that both proteins play a direct role in mRNA export from the nucleus <ref name="HS">PMID:11336712 </ref>.
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A study by Huang and Steitz showed that 9G8 and SRp20 promote the export of mRNA from the nucleus<ref name="HS">PMID:11336712 </ref>. There is a 101-nt sequence in the coding region of mouse histone H2a mRNA that promotes the the export of intronless human β-globin [https://en.wikipedia.org/wiki/Complementary_DNA cDNA] transcripts <ref name="HC">PMID:9294170 </ref>. Of this 101-nt sequence, there is specifically a 22-nt sequence that is necessary for export activity. UV [https://en.wikipedia.org/wiki/Cross-link cross-linking] and [https://en.wikipedia.org/wiki/Immunoprecipitation immunoprecipitation] experiments determined the proteins that specifically associate with the 22-nt sequence.[[Image:SRp20_and_9G8_Sequence_Alignment.png|250 px|right|thumb|Figure 7: SRp20 and 9G8 Sequence Alignment]] It was determined that SR proteins were associating with the 22-nt sequence by adding antibodies specific for SRp20 then 9G8. SRp20 antibodies inhibited mRNA export 3-fold while 9G8 antibodies inhibited mRNA export at least 10-fold showing that SRp20 and 9G8 are active factors that promote mRNA export. It was shown that SRp20 and 9G8 are cross-linked to polyadenylated RNA in the nucleus and cytoplasm showing that both proteins play a direct role in mRNA export from the nucleus <ref name="HS">PMID:11336712 </ref>.
== Disease ==
== Disease ==

Revision as of 00:22, 30 March 2018

Biological Structure of SRp20

SRp20 Structure with attached solubility tag

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Alexis Neyman

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