folylpolyglutamate synthase (FPGS) catalyzes the addition of glutamate residues to folates, forming polyglutamate derivatives which is essential for the metabolism of folate
folylpolyglutamate synthase/dihydrofolate synthase; This model represents the FolC family of ...
99-568
1.12e-109
folylpolyglutamate synthase/dihydrofolate synthase; This model represents the FolC family of folate pathway proteins. Most examples are bifunctional, active as both folylpolyglutamate synthetase (EC 6.3.2.17) and dihydrofolate synthetase (EC 6.3.2.12). The two activities are similar - ATP + glutamate + dihydropteroate or tetrahydrofolyl-[Glu](n) = ADP + orthophosphate + dihydrofolate or tetrahydrofolyl-[Glu](n+1). A mutation study of the FolC gene of E. coli suggests that both activities belong to the same active site. Because some examples are monofunctional (and these cannot be separated phylogenetically), the model is treated as subfamily, not equivalog. [Biosynthesis of cofactors, prosthetic groups, and carriers, Folic acid]
Pssm-ID: 273659 [Multi-domain] Cd Length: 397 Bit Score: 333.48 E-value: 1.12e-109
Folylpolyglutamate synthase/Dihydropteroate synthase [Coenzyme transport and metabolism]; ...
65-571
2.52e-106
Folylpolyglutamate synthase/Dihydropteroate synthase [Coenzyme transport and metabolism]; Folylpolyglutamate synthase/Dihydropteroate synthase is part of the Pathway/BioSystem: Folate biosynthesis
Pssm-ID: 440054 [Multi-domain] Cd Length: 423 Bit Score: 325.91 E-value: 2.52e-106
folylpolyglutamate synthase/dihydrofolate synthase; This model represents the FolC family of ...
99-568
1.12e-109
folylpolyglutamate synthase/dihydrofolate synthase; This model represents the FolC family of folate pathway proteins. Most examples are bifunctional, active as both folylpolyglutamate synthetase (EC 6.3.2.17) and dihydrofolate synthetase (EC 6.3.2.12). The two activities are similar - ATP + glutamate + dihydropteroate or tetrahydrofolyl-[Glu](n) = ADP + orthophosphate + dihydrofolate or tetrahydrofolyl-[Glu](n+1). A mutation study of the FolC gene of E. coli suggests that both activities belong to the same active site. Because some examples are monofunctional (and these cannot be separated phylogenetically), the model is treated as subfamily, not equivalog. [Biosynthesis of cofactors, prosthetic groups, and carriers, Folic acid]
Pssm-ID: 273659 [Multi-domain] Cd Length: 397 Bit Score: 333.48 E-value: 1.12e-109
Folylpolyglutamate synthase/Dihydropteroate synthase [Coenzyme transport and metabolism]; ...
65-571
2.52e-106
Folylpolyglutamate synthase/Dihydropteroate synthase [Coenzyme transport and metabolism]; Folylpolyglutamate synthase/Dihydropteroate synthase is part of the Pathway/BioSystem: Folate biosynthesis
Pssm-ID: 440054 [Multi-domain] Cd Length: 423 Bit Score: 325.91 E-value: 2.52e-106
UDP-N-acetylmuramyl-tripeptide synthetase; Most members of this family are EC 6.3.2.13, ...
111-394
1.97e-04
UDP-N-acetylmuramyl-tripeptide synthetase; Most members of this family are EC 6.3.2.13, UDP-N-acetylmuramoyl-L-alanyl-D-glutamate--2,6-diaminopimelate ligase. An exception is Staphylococcus aureus, in which diaminopimelate is replaced by lysine in the peptidoglycan and MurE is EC 6.3.2.7. The Mycobacteria, part of the closest neighboring branch outside of the low-GC Gram-positive bacteria, use diaminopimelate. A close homolog, scoring just below the trusted cutoff, is found (with introns) in Arabidopsis thaliana. Its role is unknown. [Cell envelope, Biosynthesis and degradation of murein sacculus and peptidoglycan]
Pssm-ID: 273435 [Multi-domain] Cd Length: 464 Bit Score: 44.23 E-value: 1.97e-04
UDP-N-acetylmuramyl tripeptide synthase [Cell wall/membrane/envelope biogenesis]; UDP-N-acetylmuramyl tripeptide synthase is part of the Pathway/BioSystem: Mureine biosynthesis
Pssm-ID: 440532 [Multi-domain] Cd Length: 459 Bit Score: 40.83 E-value: 1.97e-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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This image shows a graphical summary of conserved domains identified on the query sequence.
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if a domain or superfamily has been annotated with functional sites (conserved features),
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click on the bars or triangles to view your query sequence embedded in a multiple sequence alignment of the proteins used to develop the corresponding domain model.
The table lists conserved domains identified on the query sequence. Click on the plus sign (+) on the left to display full descriptions, alignments, and scores.
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Concise Display shows only the best scoring domain model, in each hit category listed below except non-specific hits, for each region on the query sequence.
(labeled illustration) Standard Display shows only the best scoring domain model from each source, in each hit category listed below for each region on the query sequence.
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(labeled illustration) Four types of hits can be shown, as available,
for each region on the query sequence:
specific hits meet or exceed a domain-specific e-value threshold
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and represent a very high confidence that the query sequence belongs to the same protein family as the sequences use to create the domain model
non-specific hits
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the domain superfamily to which the specific and non-specific hits belong
multi-domain models that were computationally detected and are likely to contain multiple single domains
Retrieve proteins that contain one or more of the domains present in the query sequence, using the Conserved Domain Architecture Retrieval Tool
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