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Line 31: |
| **[[2xnz]] - BsGR aptamer domain + guanine derivative<br /> | | **[[2xnz]] - BsGR aptamer domain + guanine derivative<br /> |
| **[[2xo0]] - BsGR aptamer domain + triazine derivative<br /> | | **[[2xo0]] - BsGR aptamer domain + triazine derivative<br /> |
| | **[[5c7u]], [[5c7w]] - BsGR + hypoxanthine<br /> |
| **[[2ees]], [[2eet]], [[2eeu]], [[2eev]], [[2eew]] - BsGR (mutant) + hypoxanthine<br /> | | **[[2ees]], [[2eet]], [[2eeu]], [[2eev]], [[2eew]] - BsGR (mutant) + hypoxanthine<br /> |
| **[[3gao]] - BsGR + xanthine<br /> | | **[[3gao]] - BsGR + xanthine<br /> |
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Line 66: |
| **[[4erj]] – TmKR + aminocaproic acid<br /> | | **[[4erj]] – TmKR + aminocaproic acid<br /> |
| **[[4erl]] – TmKR + Lys + Gly<br /> | | **[[4erl]] – TmKR + Lys + Gly<br /> |
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| | *Glutamine riboswitch |
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| | **[[5ddp]] – QR + glutamine – human<br /> |
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| *FMN riboswitch | | *FMN riboswitch |
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| **[[2yie]] - FnFMNR aptamer domain + FMN<br /> | | **[[2yie]] - FnFMNR aptamer domain + FMN<br /> |
| **[[3f4g]], [[3f4h]] – FnFMNR + flavin derivative<br /> | | **[[3f4g]], [[3f4h]] – FnFMNR + flavin derivative<br /> |
| **[[2yif]] - FnFMNR + GTP | | **[[2yif]] - FnFMNR + GTP<br /> |
| | **[[5c45]] - FnFMNR + inhibitor<br /> |
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| *Pre-queosine riboswitch | | *Pre-queosine riboswitch |
| Line 79: |
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| **[[3q50]], [[3q51]] – TtQ1R aptamer domain + queosine<br /> | | **[[3q50]], [[3q51]] – TtQ1R aptamer domain + queosine<br /> |
| **[[4jf2]] – Q1R + GTP + deaza-aminomethyl guanine – ''Lactobacillus rhamnosus''<br /> | | **[[4jf2]] – Q1R + GTP + deaza-aminomethyl guanine – ''Lactobacillus rhamnosus''<br /> |
| | **[[4rzd]] – Q1R + GTP + deaza-aminomethyl guanine – ''Faecalibacterium prausnitzii''<br /> |
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| *C-di-GMP riboswitch | | *C-di-GMP riboswitch |
| Line 120: |
Line 127: |
| **[[4ena]] – TpR + Mg + Cs + GTP + F <br /> | | **[[4ena]] – TpR + Mg + Cs + GTP + F <br /> |
| **[[4enb]] – TpR + Mg + Ir + K + GTP + F <br /> | | **[[4enb]] – TpR + Mg + Ir + K + GTP + F <br /> |
| | **[[5kh8]] – R - synthetic - NMR<br /> |
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| *Cobalamine riboswitch | | *Cobalamine riboswitch |
| Line 130: |
Line 138: |
| **[[4y1j]] – LlYYR (mutant) + Mn<br /> | | **[[4y1j]] – LlYYR (mutant) + Mn<br /> |
| **[[4y1m]] – EcYYR <br /> | | **[[4y1m]] – EcYYR <br /> |
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| | *PFI riboswitch |
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| | **[[4znp]] – TpR + AICAR – synthetic<br /> |
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| | *ZMP riboswitch |
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| | **[[4xw7]], [[4xwf]] – TpR + AICAR – ''Actinomyces odontolyticus'' <br /> |
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| | *ZTP riboswitch |
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| | **[[5btp]] – TpR + AICAR – ''Fusobacterium ulcerans'' <br /> |
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| }} | | }} |
| Function
Normally, a variety of proteins and protein cofactors control gene expression in an organism by binding to different sites on messenger RNA (mRNA). Riboswitches are genetic regulatory elements that are built directly into the RNA. They are a type of noncoding RNA that regulate gene expression in the absence of proteins by switching from one structural conformation (shape) to another in response to ligand binding. Most contain a single binding site that recognizes a specific ligand. The ability of a riboswitch to discriminate against molecules that are similar or closely related to its ligand is essential to prevent metabolic misregulation[1].
The various classes of riboswitches discovered so far are differentiated by their respective ligands. Every class of riboswitch is characterized by an aptamer (binding site) domain, which provides the site for ligand binding, and an expression platform that undergoes conformational change. The sequences and structures of aptamer domains are highly conserved, and therefore exhibit little variation among riboswitches belonging to the same class.
For details on guanine riboswitch see
Structural highlights
Atomic-resolution structures of riboswitch binding sites show that they make numerous hydrogen bonds with their ligands, forming contacts that stabilize RNA interactions to further increase affinity. Some binding sites form pockets that entirely engulf the ligand, and in these instances an induced-fit mechanism of binding must occur. The riboswitch-adenine complex shows the stacking interactions of the zippered-up junctional bubble which is formed by the adenine[2]. Water molecules shown as red spheres.
- ↑ Breaker, Ronald R. (28 March, 2008). Complex Riboswitches. Science, 319(5871), 1795-1797. doi:10.1126/science.1152621
- ↑ Serganov A, Yuan YR, Pikovskaya O, Polonskaia A, Malinina L, Phan AT, Hobartner C, Micura R, Breaker RR, Patel DJ. Structural basis for discriminative regulation of gene expression by adenine- and guanine-sensing mRNAs. Chem Biol. 2004 Dec;11(12):1729-41. PMID:15610857 doi:S1074-5521(04)00343-6
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3D structures of riboswitch
Updated on 28-September-2017
{"openlevels":0}
- Adenine riboswitch
- Guanine riboswitch
- 1y27 – BsGR residues 185-252 + guanine
- 2g9c, 3fo4, 3fo6, 3ges, 3gog, 3rkf - BsGR (mutant) + guanine derivative
- 3got - BsGR (mutant) + adenine derivative
- 2xo1 - BsGR aptamer domain + adenine derivative
- 3g4m, 3ger - BsGR + guanine derivative
- 2xnz - BsGR aptamer domain + guanine derivative
- 2xo0 - BsGR aptamer domain + triazine derivative
- 5c7u, 5c7w - BsGR + hypoxanthine
- 2ees, 2eet, 2eeu, 2eev, 2eew - BsGR (mutant) + hypoxanthine
- 3gao - BsGR + xanthine
- 2xnw – BsGR + Mn
- 4fe5, 4fej, 4fel, 4fen, 4feo, 4fep – GR + hypoxanthine – synthetic
- Thiamine pyrophosphate riboswitch
- 2gdi – TPPR + TPP – synthetic
- 2hoj, 2hok, 2hol – EcTPPR + TPP + metal ion – Escherichia coli
- 2hom – EcTPPR + TMP
- 2hoo, 2hop – EcTPPR + TPP analog
- 4nya, 4nyb, 4nyc – EcTPPR + pyrimidine derivative
- 4nyd – EcTPPR + hypoxanthine
- 4nyg – EcTPPR + thyamine
- 3d2g, 3d2v, 3d2x - TPPR + TPP analog – Arabidopsis thaliana
- S-adenosylmethionine riboswitch
- S-adenosylhomocysteine riboswitch
- 3npn, 3npq – SAHR + SAH – Ralstonia solanacearum
- Lysine riboswitch
- 3d0u – TmKR ligand-binding domain + Lysine – Thermotoga maritima
- 4erj – TmKR + aminocaproic acid
- 4erl – TmKR + Lys + Gly
- Glutamine riboswitch
- 5ddp – QR + glutamine – human
- FMN riboswitch
- Pre-queosine riboswitch
- 3fu2, 3k1v – BsQ1R + queosine
- 3gca – TtQ0R + queosine
- 3q50, 3q51 – TtQ1R aptamer domain + queosine
- 4jf2 – Q1R + GTP + deaza-aminomethyl guanine – Lactobacillus rhamnosus
- 4rzd – Q1R + GTP + deaza-aminomethyl guanine – Faecalibacterium prausnitzii
- C-di-GMP riboswitch
- 3irw, 3mxh – VcGMPR + C-di-GMP + GTP + U1 small nuclear ribonucleoprotein – Vibrio cholerae
- 3iwn – VcGMPR + C-di-GMP + U1 small nuclear ribonucleoprotein
- 3mum, 3mur, 3mut - VcGMPR (mutant) + C-di-GMP + U1 small nuclear ribonucleoprotein
- 3muv - VcGMPR (mutant) + C-di-AMP + U1 small nuclear ribonucleoprotein
- 3q3z - GMPR + C-di-GMP – Clostridium acetobutylicum
- 4qk8, 4qka – GMPR + GTP – Thermoanaerobacter pseudethanolicus
- 4qk9 – GMPR + guanosine derivative – Thermovirga lienii
- Glycine riboswitch
- 3owi, 3oww, 3owz – VcGlyR + glycine
- 3ox0, 3oxe, 3oxj, 3oxm – VcGlyR + GDP + cytidine cyclic phosphate
- 3oxb, 3oxd – VcGlyR (mutant) + GDP + cytidine cyclic phosphate
- 3p49 – FnGlyR + U1 small nuclear ribonucleoprotein + glycine
- M-Box riboswitch
- T-Box riboswitch
- 4lck – sTBR + tRNA-Gly + ribosomal protein YBXF – synthetic
- 4mgn – sTBR + tRNA-Gly
- Tetrahydrofolate riboswitch
- 3suh, 3sux – EsTHFR + THF derivative – Eubacterium siraeum
- 3suy - EsTHFR + cytidine cyclic phosphate
- 4lvv, 4lvx, 4lvw, 4lvy, 4lvz, 4lw0 – THFR + purine derivative – synthetic
- 3sd3 – THFR (mutant) + pteridine derivative – synthetic
- Fluoride riboswitch
- 3vrs – TpR + Mn + K + F – Thermotoga petrophila
- 4en5 – TpR + Mg + Tl + F
- 4enc – TpR + Mg + K + F
- 4ena – TpR + Mg + Cs + GTP + F
- 4enb – TpR + Mg + Ir + K + GTP + F
- 5kh8 – R - synthetic - NMR
- Cobalamine riboswitch
- yybp-ykoy riboswitch
- 4y1i – LlYYR + Mn – Lactobacillus lactis
- 4y1j – LlYYR (mutant) + Mn
- 4y1m – EcYYR
- PFI riboswitch
- 4znp – TpR + AICAR – synthetic
- ZMP riboswitch
- 4xw7, 4xwf – TpR + AICAR – Actinomyces odontolyticus
- ZTP riboswitch
- 5btp – TpR + AICAR – Fusobacterium ulcerans
References