Reverse transcriptase: Difference between revisions
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==Function== | ==Function== | ||
As a RNA-dependent DNA Polymerase, Reverse Transcriptase is able to recognize the initial RNA, transcribe it to ssDNA, cleave the remaining RNA and then build up the dsDNA. To do this the protein has two active catalytic zones. Chain A has the <scene name='Reverse_transcriptase/Fingers/4'>Polymerase active site</scene> that consist of two ''finger-like'' domains: one of them recognizes the initial nucleic acid by h-bond interactions with phosphate groups of the side chains, then both domains make a conformational change closing the recognition hole to allow the second domain with the support a <scene name='Reverse_transcriptase/Magnesium/2'>Magnesium ion</scene> coordination system to begin the transcription process adding the specific DNA nucleotides. This change is allowed by a <scene name='Reverse_transcriptase/Flexible/2'>flexible zone</scene> between the two previous domains; it is used as a common pharmaceutical target site in order to prevent the change and therefore inhibit activity. This zone is the only zone of Chain A that has non-conserved aminoacids, giving the virus more drug resistance | As a RNA-dependent DNA Polymerase, Reverse Transcriptase is able to recognize the initial RNA, transcribe it to ssDNA, cleave the remaining RNA and then build up the dsDNA. To do this the protein has two active catalytic zones. Chain A has the <scene name='Reverse_transcriptase/Fingers/4'>Polymerase active site</scene> that consist of two ''finger-like'' domains: one of them recognizes the initial nucleic acid by h-bond interactions with phosphate groups of the side chains, then both domains make a conformational change closing the recognition hole to allow the second domain with the support a <scene name='Reverse_transcriptase/Magnesium/2'>Magnesium ion</scene> coordination system to begin the transcription process adding the specific DNA nucleotides. This change is allowed by a <scene name='Reverse_transcriptase/Flexible/2'>flexible zone</scene> between the two previous domains; it is used as a common pharmaceutical target site in order to prevent the change and therefore inhibit activity. This zone is the only zone of Chain A that has non-conserved aminoacids, giving the virus more drug resistance | ||
<ref>[http://dx.doi.org/10.1002/ijch.201200096 DOI: 10.1002/ijch.201200096]</ref> | <ref>[http://dx.doi.org/10.1002/ijch.201200096 Consurf Data Base DOI: 10.1002/ijch.201200096]</ref> | ||
[http://consurfdb.tau.ac.il/chain_selection.php?pdb_ID=1JLB Link to Consurf Data Base for PDB Entry: 1JLB]. | [http://consurfdb.tau.ac.il/chain_selection.php?pdb_ID=1JLB Link to Consurf Data Base for PDB Entry: 1JLB]. | ||
Revision as of 13:48, 27 September 2017
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3D Structures of Reverse transcriptase
Updated on 27-September-2017
- 2b2a - TtRT telomerase catalytic subunit (mutant) - Tetrahymena thermophila
- 2r4g - TtRT telomerase RNA-binding domain
- 3du6, 3du5 - TcRT telomerase catalytic subunit - Tribolium castaneum
- 3kyl - TcRT telomerase catalytic subunit + DNA
- 4o26 – RT RNA-binding domain + RNA – rice fish
- 4lmo - RT telomerase RNA-binding domain – tiger puffer
- 5lgf - RT N-terminal - Ogataea polymorpha - NMR
- 2b2a - TtRT telomerase catalytic subunit (mutant) - Tetrahymena thermophila
See Also
- Reverse Transcriptase at Wikipedia
- Molecule of the Month (09/2002) at RCSB Protein Data Bank
- List of Reverse Transcriptase articles at Proteopedia and at RCSB Protein Data Bank
- Model of Reverse Transcriptase as one of the CBI Molecules on the Molecular Playground
- See Transcription for additional Proteopedia articles on the subject.
- For additional information, see: Human Immunodeficiency Virus
- For additional information, see: Transcription and RNA Processing
References
Proteopedia Page Contributors and Editors (what is this?)
Daniel Moyano-Marino, Alexander Berchansky, Eric Martz, Amol Kapoor, Lynmarie K Thompson, David Canner, Brian Foley, Jaime Prilusky, Joel L. Sussman, Michal Harel
