Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and ...
13-222
1.99e-52
Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and biogenesis]; Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific is part of the Pathway/BioSystem: 23S rRNA modification
:
Pssm-ID: 440330 [Multi-domain] Cd Length: 218 Bit Score: 169.16 E-value: 1.99e-52
Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and ...
13-222
1.99e-52
Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and biogenesis]; Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific is part of the Pathway/BioSystem: 23S rRNA modification
Pssm-ID: 440330 [Multi-domain] Cd Length: 218 Bit Score: 169.16 E-value: 1.99e-52
Pseudouridine synthase, RluA family; This group is comprised of eukaryotic, bacterial and ...
20-194
1.35e-51
Pseudouridine synthase, RluA family; This group is comprised of eukaryotic, bacterial and archeal proteins similar to eight site specific Escherichia coli pseudouridine synthases: RsuA, RluA, RluB, RluC, RluD, RluE, RluF and TruA. Pseudouridine synthases catalyze the isomerization of specific uridines in a n RNA molecule to pseudouridines (5-ribosyluracil, psi) requiring no cofactors. E. coli RluC for example makes psi955, 2504 and 2580 in 23S RNA. Some psi sites such as psi1917 in 23S RNA made by RluD are universally conserved. Other psi sites occur in a more restricted fashion, for example psi2819 in 21S mitochondrial ribosomal RNA made by S. cerevisiae Pus5p is only found in mitochondrial large subunit rRNAs from some other species and in gram negative bacteria. The E. coli counterpart of this psi residue is psi2580 in 23S rRNA. psi2604in 23S RNA made by RluF has only been detected in E.coli.
Pssm-ID: 211346 [Multi-domain] Cd Length: 185 Bit Score: 165.97 E-value: 1.35e-51
pseudouridine synthase, RluA family; In E. coli, RluD (SfhB) modifies uridine to pseudouridine ...
13-227
5.33e-44
pseudouridine synthase, RluA family; In E. coli, RluD (SfhB) modifies uridine to pseudouridine at 23S RNA U1911, 1915, and 1917, RluC modifies 955, 2504 and 2580, and RluA modifies U746 and tRNA U32. An additional homolog from E. coli outside this family, TruC (SP|Q46918), modifies uracil-65 in transfer RNAs to pseudouridine. [Protein synthesis, tRNA and rRNA base modification]
Pssm-ID: 161659 [Multi-domain] Cd Length: 299 Bit Score: 150.17 E-value: 5.33e-44
RNA pseudouridylate synthase; Members of this family are involved in modifying bases in RNA ...
20-168
9.31e-29
RNA pseudouridylate synthase; Members of this family are involved in modifying bases in RNA molecules. They carry out the conversion of uracil bases to pseudouridine. This family includes RluD, a pseudouridylate synthase that converts specific uracils to pseudouridine in 23S rRNA. RluA from E. coli converts bases in both rRNA and tRNA.
Pssm-ID: 459961 [Multi-domain] Cd Length: 151 Bit Score: 106.34 E-value: 9.31e-29
Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and ...
13-222
1.99e-52
Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific [Translation, ribosomal structure and biogenesis]; Pseudouridine synthase RluA, 23S rRNA- or tRNA-specific is part of the Pathway/BioSystem: 23S rRNA modification
Pssm-ID: 440330 [Multi-domain] Cd Length: 218 Bit Score: 169.16 E-value: 1.99e-52
Pseudouridine synthase, RluA family; This group is comprised of eukaryotic, bacterial and ...
20-194
1.35e-51
Pseudouridine synthase, RluA family; This group is comprised of eukaryotic, bacterial and archeal proteins similar to eight site specific Escherichia coli pseudouridine synthases: RsuA, RluA, RluB, RluC, RluD, RluE, RluF and TruA. Pseudouridine synthases catalyze the isomerization of specific uridines in a n RNA molecule to pseudouridines (5-ribosyluracil, psi) requiring no cofactors. E. coli RluC for example makes psi955, 2504 and 2580 in 23S RNA. Some psi sites such as psi1917 in 23S RNA made by RluD are universally conserved. Other psi sites occur in a more restricted fashion, for example psi2819 in 21S mitochondrial ribosomal RNA made by S. cerevisiae Pus5p is only found in mitochondrial large subunit rRNAs from some other species and in gram negative bacteria. The E. coli counterpart of this psi residue is psi2580 in 23S rRNA. psi2604in 23S RNA made by RluF has only been detected in E.coli.
Pssm-ID: 211346 [Multi-domain] Cd Length: 185 Bit Score: 165.97 E-value: 1.35e-51
pseudouridine synthase, RluA family; In E. coli, RluD (SfhB) modifies uridine to pseudouridine ...
13-227
5.33e-44
pseudouridine synthase, RluA family; In E. coli, RluD (SfhB) modifies uridine to pseudouridine at 23S RNA U1911, 1915, and 1917, RluC modifies 955, 2504 and 2580, and RluA modifies U746 and tRNA U32. An additional homolog from E. coli outside this family, TruC (SP|Q46918), modifies uracil-65 in transfer RNAs to pseudouridine. [Protein synthesis, tRNA and rRNA base modification]
Pssm-ID: 161659 [Multi-domain] Cd Length: 299 Bit Score: 150.17 E-value: 5.33e-44
Pseudouridine synthases similar to Saccharomyces cerevisiae RIB2; Pseudouridine synthase, ...
12-187
1.47e-38
Pseudouridine synthases similar to Saccharomyces cerevisiae RIB2; Pseudouridine synthase, Saccharomyces cerevisiae RIB2_like. This group is comprised of eukaryotic and bacterial proteins similar to Saccharomyces cerevisiae RIB2, S. cerevisiae Pus6p and human hRPUDSD2. S. cerevisiae RIB2 displays two distinct catalytic activities. The N-terminal domain of RIB2 is RNA:psi-synthase which makes psi32 on cytoplasmic tRNAs. Psi32 is highly phylogenetically conserved. The C-terminal domain of RIB2 has a DRAP deaminase activity which catalyses the formation of 5-amino-6-ribitylamino-2,4(1H,3H)-pyrimidinedione 5'-phosphate from 2,5-diamino-6-ribitylamino-4(3H)-pyrimidinone 5'-phosphate during riboflavin biosynthesis. S. cerevisiae Pus6p makes the psi31 of cytoplasmic and mitochondrial tRNAs.
Pssm-ID: 211331 [Multi-domain] Cd Length: 213 Bit Score: 133.52 E-value: 1.47e-38
RNA pseudouridylate synthase; Members of this family are involved in modifying bases in RNA ...
20-168
9.31e-29
RNA pseudouridylate synthase; Members of this family are involved in modifying bases in RNA molecules. They carry out the conversion of uracil bases to pseudouridine. This family includes RluD, a pseudouridylate synthase that converts specific uracils to pseudouridine in 23S rRNA. RluA from E. coli converts bases in both rRNA and tRNA.
Pssm-ID: 459961 [Multi-domain] Cd Length: 151 Bit Score: 106.34 E-value: 9.31e-29
tRNA pseudouridine isomerase C; Pseudouridine synthases catalyze the isomerization of specific ...
20-179
2.43e-22
tRNA pseudouridine isomerase C; Pseudouridine synthases catalyze the isomerization of specific uridines in an tRNA molecule to pseudouridines (5-ribosyluracil, psi). No cofactors are required. TruC makes psi65 in tRNAs. This psi residue is not universally conserved.
Pssm-ID: 211333 [Multi-domain] Cd Length: 223 Bit Score: 91.24 E-value: 2.43e-22
Pseudouridine synthase, Rsu/Rlu family; This group is comprised of eukaryotic, bacterial and ...
20-174
1.23e-18
Pseudouridine synthase, Rsu/Rlu family; This group is comprised of eukaryotic, bacterial and archeal proteins similar to eight site specific Escherichia coli pseudouridine synthases: RsuA, RluA, RluB, RluC, RluD, RluE, RluF and TruA. Pseudouridine synthases catalyze the isomerization of specific uridines in a n RNA molecule to pseudouridines (5-ribosyluracil, psi) requiring no cofactors. E. coli RluC for example makes psi955, 2504 and 2580 in 23S RNA. Some psi sites such as psi1917 in 23S RNA made by RluD are universally conserved. Other psi sites occur in a more restricted fashion, for example psi2819 in 21S mitochondrial ribosomal RNA made by S. cerevisiae Pus5p is only found in mitochondrial large subunit rRNAs from some other species and in gram negative bacteria. The E. coli counterpart of this psi residue is psi2580 in 23S rRNA. psi2604in 23S RNA made by RluF has only been detected in E.coli.
Pssm-ID: 211325 [Multi-domain] Cd Length: 154 Bit Score: 79.72 E-value: 1.23e-18
Pseudouridine synthase, a subgroup of the RluA family; This group is comprised of bacterial ...
9-179
3.95e-18
Pseudouridine synthase, a subgroup of the RluA family; This group is comprised of bacterial proteins assigned to the RluA family of pseudouridine synthases. Pseudouridine synthases catalyze the isomerization of specific uridines in an RNA molecule to pseudouridines (5-ribosyluracil, psi). No cofactors are required. The RluA family is comprised of proteins related to Escherichia coli RluA.
Pssm-ID: 211332 [Multi-domain] Cd Length: 246 Bit Score: 80.39 E-value: 3.95e-18
Pseudouridine synthases, RsuA subfamily; Pseudouridine synthases are responsible for the ...
54-174
3.14e-03
Pseudouridine synthases, RsuA subfamily; Pseudouridine synthases are responsible for the synthesis of pseudouridine from uracil in ribosomal RNA. The RsuA subfamily includes Pseudouridine Synthase similar to Ribosomal small subunit pseudouridine 516 synthase. Most of the proteins in this family are bacterial proteins.
Pssm-ID: 211347 [Multi-domain] Cd Length: 146 Bit Score: 37.09 E-value: 3.14e-03
Database: CDSEARCH/cdd Low complexity filter: no Composition Based Adjustment: yes E-value threshold: 0.01
References:
Wang J et al. (2023), "The conserved domain database in 2023", Nucleic Acids Res.51(D)384-8.
Lu S et al. (2020), "The conserved domain database in 2020", Nucleic Acids Res.48(D)265-8.
Marchler-Bauer A et al. (2017), "CDD/SPARCLE: functional classification of proteins via subfamily domain architectures.", Nucleic Acids Res.45(D)200-3.
of the residues that compose this conserved feature have been mapped to the query sequence.
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Functional characterization of the conserved domain architecture found on the query.
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