Holliday junction branch migration protein RuvA is an ATP-dependent DNA helicase involved in branch migration of heteroduplex DNA in homologous recombination, by stimulating the ATPase activity of RuvB
Holliday junction DNA helicase, RuvA subunit; RuvA specifically binds Holliday junctions as a ...
1-197
3.46e-40
Holliday junction DNA helicase, RuvA subunit; RuvA specifically binds Holliday junctions as a sandwich of two tetramers and maintains the configuration of the junction. It forms a complex with two hexameric rings of RuvB, the subunit that contains helicase activity. The complex drives ATP-dependent branch migration of the Holliday junction recombination intermediate. The endonuclease RuvC resolves junctions. [DNA metabolism, DNA replication, recombination, and repair]
Pssm-ID: 129193 [Multi-domain] Cd Length: 191 Bit Score: 135.19 E-value: 3.46e-40
C-terminal UBA-like domain of holliday junction ATP-dependent DNA helicase RuvA; RuvA, along ...
152-195
1.19e-10
C-terminal UBA-like domain of holliday junction ATP-dependent DNA helicase RuvA; RuvA, along with RuvB and RuvC proteins, is involved in branch migration of heteroduplex DNA in homologous recombination that is a crucial process for maintaining genomic integrity and generating biological diversity in all living organisms. RuvA has a tetrameric architecture in which each subunit comprised of three distinct domains. This model corresponds to the C-terminal domain of RuvA which is distantly related to the ubiquitin-associated (UBA) domain. It plays a significant role in the ATP-dependent branch migration of the hetero-duplex through direct contact with RuvB. Within the Holliday junction, the C-terminal domain makes no interaction with DNA.
Pssm-ID: 270517 [Multi-domain] Cd Length: 45 Bit Score: 54.38 E-value: 1.19e-10
Holliday junction DNA helicase, RuvA subunit; RuvA specifically binds Holliday junctions as a ...
1-197
3.46e-40
Holliday junction DNA helicase, RuvA subunit; RuvA specifically binds Holliday junctions as a sandwich of two tetramers and maintains the configuration of the junction. It forms a complex with two hexameric rings of RuvB, the subunit that contains helicase activity. The complex drives ATP-dependent branch migration of the Holliday junction recombination intermediate. The endonuclease RuvC resolves junctions. [DNA metabolism, DNA replication, recombination, and repair]
Pssm-ID: 129193 [Multi-domain] Cd Length: 191 Bit Score: 135.19 E-value: 3.46e-40
C-terminal UBA-like domain of holliday junction ATP-dependent DNA helicase RuvA; RuvA, along ...
152-195
1.19e-10
C-terminal UBA-like domain of holliday junction ATP-dependent DNA helicase RuvA; RuvA, along with RuvB and RuvC proteins, is involved in branch migration of heteroduplex DNA in homologous recombination that is a crucial process for maintaining genomic integrity and generating biological diversity in all living organisms. RuvA has a tetrameric architecture in which each subunit comprised of three distinct domains. This model corresponds to the C-terminal domain of RuvA which is distantly related to the ubiquitin-associated (UBA) domain. It plays a significant role in the ATP-dependent branch migration of the hetero-duplex through direct contact with RuvB. Within the Holliday junction, the C-terminal domain makes no interaction with DNA.
Pssm-ID: 270517 [Multi-domain] Cd Length: 45 Bit Score: 54.38 E-value: 1.19e-10
RuvA, C-terminal domain; Homologous recombination is a crucial process in all living organizms. ...
153-197
7.01e-08
RuvA, C-terminal domain; Homologous recombination is a crucial process in all living organizms. In bacteria, this process the RuvA, RuvB, and RuvC proteins are involved. More specifically the proteins process the Holliday junction DNA. RuvA is comprised of three distinct domains. The domain represents the C-terminal domain and plays a significant role in the ATP-dependent branch migration of the hetero-duplex through direct contact with RuvB. Within the Holliday junction, the C-terminal domain makes no interaction with DNA.
Pssm-ID: 462183 [Multi-domain] Cd Length: 47 Bit Score: 47.08 E-value: 7.01e-08
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.
Click on the domain model's accession number to view the multiple sequence alignment of the proteins used to develop the corresponding domain model.
To view your query sequence embedded in that multiple sequence alignment, click on the colored bars in the Graphical Summary portion of the search results page,
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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.
(labeled illustration) Full Display shows all domain models, in each hit category below, that meet or exceed the RPS-BLAST threshold for statistical significance.
(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
(illustrated example)
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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