Ricin: Difference between revisions

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<StructureSection load='3rtj'  size='400' side='right' caption='Glycosylated ricin chain A (grey) and chain B (green) bound to dinucleotide APG (stick model) (PDB entry [[3rtj]])'>
<StructureSection load='3rtj'  size='400' side='right' caption='Glycosylated ricin chain A (grey) and chain B (green) bound to dinucleotide APG (stick model) (PDB entry [[3rtj]])'>
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==Structure==
==Structure==
Ricin is a heterodimer that consists of a 32 kilodalton A chain glycoprotein (light blue) linked by a <scene name='38/382952/Disulfide_bond_between_subunit/3'>disulfide bond</scene> to a 32 kilodalton <scene name='Sandbox_BCMB402_Ricin/B_subunit/1'>B chain</scene> glycoprotein<ref name="montfort" /> (green).  
Ricin is a heterodimer that consists of a 32 kilodalton A chain glycoprotein (light blue) linked by a <scene name='38/382952/Disulfide_bond_between_subunit/3'>disulfide bond</scene> to a 32 kilodalton <scene name='Sandbox_BCMB402_Ricin/B_subunit/1'>B chain</scene> glycoprotein<ref name="montfort" /> (green).  
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The B chain is a lectin<ref name="lord" /> that <scene name='Sandbox_BCMB402_Ricin/Carbohydrate_binding/1'>binds</scene> to galactose-containing surface receptors.  Originally it was thought that the mode of action of Ricin poisoning was due to hemagglutination due to a closely related, co-isolating lectin, RCA.  
The B chain is a lectin<ref name="lord" /> that <scene name='Sandbox_BCMB402_Ricin/Carbohydrate_binding/1'>binds</scene> to galactose-containing surface receptors.  Originally it was thought that the mode of action of Ricin poisoning was due to hemagglutination due to a closely related, co-isolating lectin, RCA.  


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==Mechanism of action==
==Mechanism of action==
The mechanism deployed by Ricin to gain entry to a host cell involves the poison's heterogenic properties. First, the B subunit binds to two carbohydrates on the cell surface, either glycolipids or glycoproteins, which both terminate with galactose.  The interaction is facilitated by hydrogen bonds to <scene name='Sandbox_BCMB402_Ricin/B_chain_bind_lactose_1/2'>lysine 40 and asparagine 46</scene> in one domain<ref name = "Rutenber">PMID: 3561502</ref> and <scene name='Sandbox_BCMB402_Ricin/B_chain_bind_lactose_2/1'>asparagine 255</scene> in the other domain. Once bound, the ricin-glycoprotein complex is taken into the cells via endocytosis.  This association between the A and B chain is essential for toxicity <ref name="montfort" /> without it the Ricin would not be able to gain access to the cell, rendering it useless<ref name = "rapak">PMID: 9108055</ref>.  The endocytotic pathway results in the cleavage of the disulfide bond linking the A and B chains.  After cleavage, the A chain is released into the cytosol.
The mechanism deployed by Ricin to gain entry to a host cell involves the poison's heterogenic properties. First, the B subunit binds to two carbohydrates on the cell surface, either glycolipids or glycoproteins, which both terminate with galactose.  The interaction is facilitated by hydrogen bonds to <scene name='Sandbox_BCMB402_Ricin/B_chain_bind_lactose_1/2'>lysine 40 and asparagine 46</scene> in one domain<ref name = "Rutenber">PMID: 3561502</ref> and <scene name='Sandbox_BCMB402_Ricin/B_chain_bind_lactose_2/1'>asparagine 255</scene> in the other domain. Once bound, the ricin-glycoprotein complex is taken into the cells via endocytosis.  This association between the A and B chain is essential for toxicity <ref name="montfort" /> without it the Ricin would not be able to gain access to the cell, rendering it useless<ref name = "rapak">PMID: 9108055</ref>.  The endocytotic pathway results in the cleavage of the disulfide bond linking the A and B chains.  After cleavage, the A chain is released into the cytosol.
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Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}}
Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}}
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===Ricin A chain (RTA)===
===Ricin A chain (RTA)===


[[1j1m]], [[1ift]], [[2aai]], [[1rtc]] – RTA<br />
[[1j1m]], [[1ift]], [[2aai]], [[1rtc]] – RTA<br />
[[3lc9]], [[3mk9]], [[2vc4]], [[1uq4]], [[1uq5]], [[1obs]], [[3bjg]], [[3srp]], [[4imv]] – RTA (mutant)
[[3lc9]], [[3mk9]], [[2vc4]], [[1uq4]], [[1uq5]], [[1obs]], [[3bjg]], [[3srp]], [[4imv]] – RTA (mutant)
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===Ricin A chain binary complexes===
''Ricin A chain binary complexes''


[[3px8]] – RTA preproricin + 7-carboxy-pterin<br />
[[3px8]] – RTA preproricin + 7-carboxy-pterin<br />
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[[3px8]] – RTA + formycin monophosphate<br />
[[3px8]] – RTA + formycin monophosphate<br />
[[4kuc]] – RTA + antibody<br />
[[4kuc]] – RTA + antibody<br />
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===Ricin B chain (RTB)===
===Ricin B chain (RTB)===


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[[3vt1]], [[3vt2]] – CtRTB lectin domain + galactose derivative<br />
[[3vt1]], [[3vt2]] – CtRTB lectin domain + galactose derivative<br />


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===Ricin A+B chains===
===Ricin A+B chains===


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[[3rtj]] - RTA + RTB + dinucleotide
[[3rtj]] - RTA + RTB + dinucleotide


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==See Also==
==See Also==
* [[Ribosome]]
* [[Ribosome]]
* [[Large Ribosomal Subunit of Haloarcula|Large Ribosomal Subunit]]
* [[Large Ribosomal Subunit of Haloarcula|Large Ribosomal Subunit]]
* [[Translation]]
* [[Translation]]
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==References==
==References==
{{Reflist}}
{{Reflist}}


[[Category: Topic Page]]
[[Category: Topic Page]]

Revision as of 08:44, 20 August 2014

Ricin is a potent cytotoxin that is synthesized in the endosperm cells of maturing seeds of the castor oil plant (Ricinus communis)[1]. Ricin belongs to a small multi-gene family[2] that is composed of eight members. Ricin is classified as a type II heterodimeric Ribosome Inactivating Protein[1] or RIPs. For toxins in Proteopedia see Ribosome.

Glycosylated ricin chain A (grey) and chain B (green) bound to dinucleotide APG (stick model) (PDB entry 3rtj)

Drag the structure with the mouse to rotate

3D structures of ricin

Updated on 20-August-2014

Ricin A chain (RTA)

large ribosomal subunit, translation, elongation factors, 1rtc – RTA
3lc9, 3mk9, 2vc4, 1uq4, 1uq5, 1obs, 3bjg, 3srp, 4imv – RTA (mutant)

Ricin A chain binary complexes

3px8 – RTA preproricin + 7-carboxy-pterin
1br5, 1br6, 4esi, 4huo, 4hup, 4hv3, 4hv7, 4mx1, 4mx5 - RTA + pterin derivative
3px9 - RTA preproricin + furanylmethyl-carbamoyl-pterin
3lc9, 3mk9, 2vc4, 1uq4, 1uq5, 1obs – RTA (mutant)
3hio – RTA + tetranucleotide
3ej5, 1il5 – RTA pyrimidine derivative
2p8n, 1ifs – RTA + adenine
2pjo, 2r2x – RTA + urea derivative
2r3d – RTA + acetamide
2vc3 - RTA (mutant) + acetate
1il3, 1il4, 1il9 – RTA + guanine derivative
1ifu, 1fmp – RTA + formycin
1obt - RTA (mutant) + AMP
1apg – RTA + RNA 3px8 – RTA + formycin monophosphate
4kuc – RTA + antibody

Ricin B chain (RTB)

3nbc, 3nbd – CnRTB + lactose – Clitocybe nebularis
3nbe – CnRTB + lactose derivative
3phz – RTB + glycoside – Polyporus squamosus
3vsf – CtRTB lectin domain – Clostridium thermocellum
3vsz – CtRTB lectin domain + galactan
3vto – CtRTB lectin domain + lactose
3vt1, 3vt2 – CtRTB lectin domain + galactose derivative

Ricin A+B chains

2aai - RTA + RTB
3px8, 3rti – RTA + RTB + formycin monophosphate
3rtj - RTA + RTB + dinucleotide

See Also

References

  1. ↑ 1.0 1.1 Lord JM, Roberts LM, Robertus JD. Ricin: structure, mode of action, and some current applications. FASEB J. 1994 Feb;8(2):201-8. PMID:8119491
  2. ↑ Montfort W, Villafranca JE, Monzingo AF, Ernst SR, Katzin B, Rutenber E, Xuong NH, Hamlin R, Robertus JD. The three-dimensional structure of ricin at 2.8 A. J Biol Chem. 1987 Apr 15;262(11):5398-403. PMID:3558397