Ribosome: Difference between revisions

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==Introduction==
==Introduction==
The [http://en.wikipedia.org/wiki/ribosome ribosome] is a complex composed of RNA and protein that adds up to several million daltons in size and plays a critical role in the process of decoding the genetic information stored in the genome into protein as outlined in what is now known as [http://sandwalk.blogspot.com/2009/10/ribosome-and-central-dogma-of-molecular.html the Central Dogma of Molecular Biology]. Specifically, the ribosome carries out the process of translation, decoding the genetic information encoded in messenger RNA, one amino acid at a time, into newly synthesized polypeptide chains.
The [http://en.wikipedia.org/wiki/ribosome ribosome] is a complex composed of RNA and protein that adds up to several million daltons in size and plays a critical role in the process of decoding the genetic information stored in the genome into protein as outlined in what is now known as [http://sandwalk.blogspot.com/2009/10/ribosome-and-central-dogma-of-molecular.html the Central Dogma of Molecular Biology]. Specifically, the ribosome carries out the process of translation, decoding the genetic information encoded in messenger RNA, one amino acid at a time, into newly synthesized polypeptide chains.
*'''30S ribosome''' - prokaryote small subunit
*'''40S ribosome''' - eukaryote small subunit
*'''pre-40S ribosome''' - eukaryote small subunit with associated assembly factors
*'''43S ribosome''' - eukaryote preinitiation small subunit containing eIF3, eIF1 and eIF1A
*'''48S ribosome''' - eukaryote small subunit initiation complex containing Met-tRNA
*'''50S ribosome''' - prokaryote large subunit
*'''60S ribosome''' - eukaryote large subunit
*'''pre-60S ribosome''' - eukaryote nucleolar large subunit with associated assembly factors
*'''70S ribosome''' - prokaryote full ribosome containing small and large subunits
*'''80S ribosome''' - eukaryote full ribosome containing small and large subunits
*'''90S pre-ribosome''' - eukaryote an early biogenesis ribosome intermediate containing assembly factors and small nucleolar RNAs.
*'''100S ribosome''' - a dimer of prokaryote full ribosomes


==Nobel Prize Winners and Other Contributors==
==Nobel Prize Winners and Other Contributors==
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The large subunit of the prokaryotic ribosome sediments at 50S. It is composed of two chains of RNA, a 23S chain (~3000 bases long, 946 kDa) and a 5S chain (~120 bases long, 39 kDa). Assembled with the RNA are about 30 protein chains. The proteins in the first large subunit determined range from 6 kDa to 37 kDa.  See also [[Large Ribosomal Subunit of Haloarcula]].  The large subunit contains several [[Kink-turn motif]]s.
The large subunit of the prokaryotic ribosome sediments at 50S. It is composed of two chains of RNA, a 23S chain (~3000 bases long, 946 kDa) and a 5S chain (~120 bases long, 39 kDa). Assembled with the RNA are about 30 protein chains. The proteins in the first large subunit determined range from 6 kDa to 37 kDa.  See also [[Large Ribosomal Subunit of Haloarcula]].  The large subunit contains several [[Kink-turn motif]]s.
The ''mitochindrial ribosome'' or '''mitoribosome''' is smaller than the the cytoplasmic ribosome with a small subunit which sediments at 28S and a large subunit which sediments at 39S.  The whole mitoribosome sediments at 55S.


Other macromolecules in a functioning ribosome include three transfer RNA molecules, messenger RNA, and the nascent protein chain.
Other macromolecules in a functioning ribosome include three transfer RNA molecules, messenger RNA, and the nascent protein chain.
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*[[Large Ribosomal Subunit of Haloarcula]]<br />
*[[Large Ribosomal Subunit of Haloarcula]]<br />
*[[User:Wayne_Decatur/Haloarcula Large Ribosomal Subunit With Azithromycin|Azithromycin bound to the Large Ribosomal Subunit of Haloarcula marismortui]]<br>
*[[User:Wayne_Decatur/Haloarcula Large Ribosomal Subunit With Azithromycin|Azithromycin bound to the Large Ribosomal Subunit of Haloarcula marismortui]]<br>
*[[Azithromycin]]<br />
*[[Clarithromycin]]<br />
*[[Doxycycline]]<br />
*[[40S rRNA and proteins and P/E tRNA for eukaryotic ribosome]]<br />
*[[40S rRNA and proteins and P/E tRNA for eukaryotic ribosome]]<br />
*[[Ribosomal A Site Binding Paromomycin: A Morph]]<br />
*[[Ribosomal A Site Binding Paromomycin: A Morph]]<br />
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*[[Ribosome structure]]<br />
*[[Ribosome structure]]<br />
*[[Ribosome structure (Spanish)]]<br />
*[[Ribosome structure (Spanish)]]<br />
*[[Ribosome (Czech)]]<br />
==Ribosome 3D structures==


[[Ribosome 3D structures]]
[[Ribosome 3D structures]]
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* For Spanish see [[Ribosoma 70S]]
* For Spanish see [[Ribosoma 70S]]


<br />
</StructureSection>
==References==
==References==
<references />
<references />
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[[Category:Translation]]
[[Category:Translation]]
[[Category:Ribosome]]
[[Category:Ribosome]]
[[Category: BioMolViz]]
[[Category: Macromolecular Assemblies]]

Latest revision as of 17:31, 29 September 2026

The Ribosome (4v42)

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References


Additional Literature and Resources

  1. Moore PB. The ribosome returned. J Biol. 2009;8(1):8. Epub 2009 Jan 26. PMID:19222865 doi:10.1186/jbiol103
  2. Schmeing TM, Ramakrishnan V. What recent ribosome structures have revealed about the mechanism of translation. Nature. 2009 Oct 29;461(7268):1234-42. Epub 2009 Oct 18. PMID:19838167 doi:10.1038/nature08403
  3. Ramakrishnan V, Moore PB. Atomic structures at last: the ribosome in 2000. Curr Opin Struct Biol. 2001 Apr;11(2):144-54. PMID:11297922
  4. Rodnina MV, Wintermeyer W. The ribosome goes Nobel. Trends Biochem Sci. 2010 Jan;35(1):1-5. Epub 2009 Dec 2. PMID:19962317 doi:10.1016/j.tibs.2009.11.003
  5. Sprinzl M, Erdmann VA. Protein biosynthesis on ribosomes in molecular resolution: Nobel Prize for chemistry 2009 goes to three chemical biologists. Chembiochem. 2009 Dec 14;10(18):2851-3. PMID:19938030 doi:10.1002/cbic.200900652
  6. Bashan A, Yonath A. Correlating ribosome function with high-resolution structures. Trends Microbiol. 2008 Jul;16(7):326-35. Epub 2008 Jun 9. PMID:18547810 doi:10.1016/j.tim.2008.05.001
  7. Korostelev A, Noller HF. The ribosome in focus: new structures bring new insights. Trends Biochem Sci. 2007 Sep;32(9):434-41. Epub 2007 Aug 30. PMID:17764954 doi:10.1016/j.tibs.2007.08.002
  8. Steitz TA. A structural understanding of the dynamic ribosome machine. Nat Rev Mol Cell Biol. 2008 Mar;9(3):242-53. PMID:18292779 doi:10.1038/nrm2352
  9. Zimmerman E, Yonath A. Biological implications of the ribosome's stunning stereochemistry. Chembiochem. 2009 Jan 5;10(1):63-72. PMID:19089882 doi:10.1002/cbic.200800554
  10. Petrov AS, Bernier CR, Hershkovits E, Xue Y, Waterbury CC, Hsiao C, Stepanov VG, Gaucher EA, Grover MA, Harvey SC, Hud NV, Wartell RM, Fox GE, Williams LD. Secondary structure and domain architecture of the 23S and 5S rRNAs. Nucleic Acids Res. 2013 Jun 14. PMID:23771137 doi:10.1093/nar/gkt513