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Conserved domains on  [gi|334182767|ref|NP_001185064|]
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E3 ubiquitin-protein ligase RNF170-like protein (DUF 1232) [Arabidopsis thaliana]

Protein Classification

RING finger protein( domain architecture ID 106764)

RING finger protein may function as an E3 ubiquitin protein ligase that mediates the ubiquitination of target proteins by bringing the ubiquitin-charged E2 ubiquitin-conjugating enzyme and the acceptor protein together to enable the direct transfer of ubiquitin

EC:  2.3.2.27
Gene Ontology:  GO:0061630

Graphical summary

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List of domain hits

Name Accession Description Interval E-value
RING_Ubox super family cl17238
RING finger (Really Interesting New Gene) domain and U-box domain superfamily; The RING finger ...
49-79 4.49e-06

RING finger (Really Interesting New Gene) domain and U-box domain superfamily; The RING finger is a specialized type of Zn-finger of 40 to 60 residues that binds two atoms of zinc. It is defined by the "cross-brace" motif that chelates zinc atoms by eight amino acid residues, typically Cys or His, arranged in a characteristic spacing. Canonical RING motifs have been categorized into two major subclasses, RING-HC (C3HC4-type) and RING-H2 (C3H2C3-type), according to their Cys/His content. There are also many variants of RING fingers: some have different Cys/His patterns while some lack a single Cys or His residue at typical Zn ligand positions (the fourth or eighth zinc ligand is prevalently exchanged for an Asp, which can indeed chelate Zn in a RING finger as well). C4C4-, C3HC3D-, C2H2C4-, and C3HC5-type RING fingers are closely related to RING-HC fingers. In contrast, C4HC3- (RING-CH alias RINGv), C3H3C2-, C3H2C2D-, C3DHC3-, and C4HC2H-type RING fingers are more closely related to RING-H2 fingers. However, not all RING finger-containing proteins display regular RING finger features, and the RING finger family has turned out to be multifarious. The degenerate RING fingers of the Siz/PIAS RING (SP-RING) family proteins and sporulation protein RMD5, are characterized by lacking the second, fifth, and sixth Zn2+ ion-coordinating residues. They bind only one Zn2+ ion. On the other hand, the RING fingers of the human APC11 and RBX1 proteins can bind a third Zn atom since they harbor four additional Zn ligands. U-box is a modified form of the RING finger domain that lacks metal chelating Cys and His residues. It resembles the cross-brace RING structure consisting of three beta-sheets and a single alpha-helix, which would be stabilized by salt bridges instead of chelated metal ions. U-box proteins are widely distributed among eukaryotic organisms and show a higher prevalence in plants than in other organisms. RING finger/U-box-containing proteins are a group of diverse proteins with a variety of cellular functions, including oncogenesis, development, viral replication, signal transduction, the cell cycle and apoptosis. Many of them are ubiquitin-protein ligases (E3s) that serve as scaffolds for binding to ubiquitin-conjugating enzymes (E2s, also referred to as ubiquitin carrier proteins or UBCs) in close proximity to substrate proteins, which enable efficient transfer of ubiquitin from E2 to the substrates.


The actual alignment was detected with superfamily member cd16553:

Pssm-ID: 473075 [Multi-domain]  Cd Length: 57  Bit Score: 42.66  E-value: 4.49e-06
                         10        20        30
                 ....*....|....*....|....*....|.
gi 334182767  49 GNCIMLVWRHGSTLRPCKCPLCRRPISLLVP 79
Cdd:cd16553   25 GPCIITYWRHGSWLGAVSCPVCRQTVTLLLP 55
 
Name Accession Description Interval E-value
RING-HC_RNF170 cd16553
RING finger, HC subclass, found in RING finger protein 170 (RNF170) and similar proteins; ...
49-79 4.49e-06

RING finger, HC subclass, found in RING finger protein 170 (RNF170) and similar proteins; RNF170, also known as putative LAG1-interacting protein, is an endoplasmic reticulum (ER) membrane-bound E3 ubiquitin-protein ligase that mediates ubiquitination-dependent degradation of type-I inositol 1,4,5-trisphosphate (IP3) receptors (ITPR1) via the endoplasmic-reticulum-associated protein degradation (ERAD) pathway. A point mutation (arginine to cysteine at position 199) in the RNF170 gene is linked with autosomal-dominant sensory ataxia (ADSA), a disease characterized by neurodegeneration in the posterior columns of the spinal cord. RNF170 contains a C3HC4-type RING-HC finger.


Pssm-ID: 438215 [Multi-domain]  Cd Length: 57  Bit Score: 42.66  E-value: 4.49e-06
                         10        20        30
                 ....*....|....*....|....*....|.
gi 334182767  49 GNCIMLVWRHGSTLRPCKCPLCRRPISLLVP 79
Cdd:cd16553   25 GPCIITYWRHGSWLGAVSCPVCRQTVTLLLP 55
 
Name Accession Description Interval E-value
RING-HC_RNF170 cd16553
RING finger, HC subclass, found in RING finger protein 170 (RNF170) and similar proteins; ...
49-79 4.49e-06

RING finger, HC subclass, found in RING finger protein 170 (RNF170) and similar proteins; RNF170, also known as putative LAG1-interacting protein, is an endoplasmic reticulum (ER) membrane-bound E3 ubiquitin-protein ligase that mediates ubiquitination-dependent degradation of type-I inositol 1,4,5-trisphosphate (IP3) receptors (ITPR1) via the endoplasmic-reticulum-associated protein degradation (ERAD) pathway. A point mutation (arginine to cysteine at position 199) in the RNF170 gene is linked with autosomal-dominant sensory ataxia (ADSA), a disease characterized by neurodegeneration in the posterior columns of the spinal cord. RNF170 contains a C3HC4-type RING-HC finger.


Pssm-ID: 438215 [Multi-domain]  Cd Length: 57  Bit Score: 42.66  E-value: 4.49e-06
                         10        20        30
                 ....*....|....*....|....*....|.
gi 334182767  49 GNCIMLVWRHGSTLRPCKCPLCRRPISLLVP 79
Cdd:cd16553   25 GPCIITYWRHGSWLGAVSCPVCRQTVTLLLP 55
 
Blast search parameters
Data Source: Precalculated data, version = cdd.v.3.21
Preset Options: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.
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