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GJA1
GeneQ15330556· pop 10· linked from 391 articles

Also known as AVSD3, CMDR, CX43, EKVP, GJAL, HLHS1, HSS, ODDD

Gap junction alpha-1 protein (GJA1), also known as connexin 43 (Cx43), is a protein that in humans is encoded by the GJA1 gene on chromosome 6. As a connexin, GJA1 is a component of gap junctions, which allow for gap junction intercellular communication (GJIC) between cells to regulate cell death, proliferation, and differentiation. As a result of its function, GJA1 is implicated in many biological processes, including muscle contraction, embryonic development, inflammation, and spermatogenesis, as well as diseases, including oculodentodigital dysplasia (ODDD), heart malformations, and cancers

Key facts

Protein family.Symbol
Connexin43
Protein family.Name
Connexin43
Protein family.image
PDB 1r5s EBI.jpg
Protein family.caption
connexin 43 carboxyl terminal domain
Protein family.Pfam
PF03508
Protein family.InterPro
IPR013124
Protein family.TCDB
1.A.24
Rfam.Name
Connexin-43 internal ribosome entry site (IRES)
Rfam.image
RF00487.jpg
Rfam.caption
Predicted secondary structure and sequence conservation of IRES_Cx43
Rfam.Symbol
IRES_Cx43
Rfam.Rfam
RF00487
Rfam.RNA_type
Cis-reg; IRES
Rfam.Tax_domain
Eukaryota

via Wikipedia infobox

Gene data

GJA1
Name
gap junction protein alpha 1
Type
protein-coding
Position
121,435,577–121,449,727 (+)
Aliases
AVSD3, CMDR, CX43, EKVP, EKVP3, GJAL, HLHS1, HSS, ODDD, PPKCA
RefSeq RNA
NM_000165.5
RefSeq protein
NP_000156.1

This gene is a member of the connexin gene family. The encoded protein is a component of gap junctions, which are composed of arrays of intercellular channels that provide a route for the diffusion of low molecular weight materials from cell to cell. The encoded protein is the major protein of gap junctions in the heart that are thought to have a crucial role in the synchronized contraction of the heart and in embryonic development. A related intronless pseudogene has been mapped to chromosome 5. Mutations in this gene have been associated with oculodentodigital dysplasia, autosomal recessive craniometaphyseal dysplasia and heart malformations. [provided by RefSeq, May 2014].

via MyGene.info

Wikidata facts

Image
Protein GJA1 PDB 1r5s.png
Show 6 more facts
HomoloGene ID
136
genomic end
121770873
genomic start
121435595
cytogenetic location
6q22.31
Commons category
Connexin43
Sources (5)

via Wikidata · CC0

~7 min read

Article

8 sections
Contents
  • Structure
  • Function
  • Clinical significance
  • Interactions
  • See also
  • References
  • Further reading
  • External links

Gap junction alpha-1 protein (GJA1), also known as connexin 43 (Cx43), is a protein that in humans is encoded by the GJA1 gene on chromosome 6. As a connexin, GJA1 is a component of gap junctions, which allow for gap junction intercellular communication (GJIC) between cells to regulate cell death, proliferation, and differentiation. As a result of its function, GJA1 is implicated in many biological processes, including muscle contraction, embryonic development, inflammation, and spermatogenesis, as well as diseases, including oculodentodigital dysplasia (ODDD), heart malformations, and cancers.

==Structure== GJA1 is a 43.0 kDa protein composed of 382 amino acids. GJA1 contains a long C-terminal tail, an N-terminal domain, and multiple transmembrane domains. The protein passes through the phospholipid bilayer four times, leaving its C- and N-terminals exposed to the cytoplasm. The C-terminal tail is composed of 50 amino acids and includes post-translational modification sites, as well as binding sites for transcription factors, cytoskeleton elements, and other proteins. As a result, the C-terminal tail is central to functions such as regulating pH gating and channel assembly. Notably, the DNA region of the GJA1 gene encoding this tail is highly conserved, indicating that it is either resistant to mutations or becomes lethal when mutated. Meanwhile, the N-terminal domain is involved in channel gating and oligomerization and, thus, may control the switch between the channel's open and closed states. The transmembrane domains form the gap junction channel while the extracellular loops facilitate proper channel docking. Moreover, two extracellular loops form disulfide bonds that interact with two hexamers to form a complete gap junction channel.

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