ATP5G1: Difference between revisions
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{{ | The ''ATP5MC1'' [[gene]] is one of three human paralogs that encode '''membrane subunit c''' of the mitochondrial [[ATP synthase]].<ref name="pmid8328972">{{cite journal | vauthors = Dyer MR, Walker JE | title = Sequences of members of the human gene family for the c subunit of mitochondrial ATP synthase | journal = The Biochemical Journal | volume = 293 | issue = Pt 1 | pages = 51–64 | date = Jul 1993 | pmid = 8328972 | pmc = 1134319 | doi = 10.1042/bj2930051}}</ref><ref name="entrez">{{cite web | title = Entrez Gene: ATP5MC1 ATP synthase membrane subunit c locus 1| url = https://www.ncbi.nlm.nih.gov/sites/entrez?Db=gene&Cmd=ShowDetailView&TermToSearch=516| accessdate = }}</ref> | ||
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== Function == | |||
This gene encodes a subunit of mitochondrial [[ATP synthase]]. Mitochondrial ATP synthase catalyzes ATP synthesis, utilizing an electrochemical gradient of protons across the inner membrane during [[oxidative phosphorylation]]. ATP synthase is composed of two linked multi-subunit complexes: the soluble catalytic core, F1, and the membrane-spanning component, Fo, comprising the [[proton channel]]. The catalytic portion of mitochondrial ATP synthase consists of 5 different subunits (alpha, beta, gamma, delta, and epsilon) assembled with a stoichiometry of 3 alpha, 3 beta, and a single representative of the other 3. The proton channel seems to have nine subunits (a, b, c, d, e, f, g, F6 and 8). This gene is one of three genes that encode subunit c of the proton channel. Each of the three genes have distinct mitochondrial import sequences but encode the identical mature protein. Alternatively spliced transcript variants encoding the same protein have been identified.<ref name="entrez" /> | |||
==References== | == References == | ||
{{reflist| | {{reflist}} | ||
==Further reading== | |||
==External links== | |||
* {{UCSC gene info|ATP5MC1}} | |||
== Further reading == | |||
{{refbegin | 2}} | {{refbegin | 2}} | ||
* {{cite journal | vauthors = Farrell LB, Nagley P | title = Human liver cDNA clones encoding proteolipid subunit 9 of the mitochondrial ATPase complex | journal = Biochemical and Biophysical Research Communications | volume = 144 | issue = 3 | pages = 1257–64 | date = May 1987 | pmid = 2883974 | doi = 10.1016/0006-291X(87)91446-X }} | |||
* {{cite journal | vauthors = Yan WL, Lerner TJ, Haines JL, Gusella JF | title = Sequence analysis and mapping of a novel human mitochondrial ATP synthase subunit 9 cDNA (ATP5G3) | journal = Genomics | volume = 24 | issue = 2 | pages = 375–7 | date = Nov 1994 | pmid = 7698763 | doi = 10.1006/geno.1994.1631 }} | |||
*{{cite journal | * {{cite journal | vauthors = Higuti T, Kawamura Y, Kuroiwa K, Miyazaki S, Tsujita H | title = Molecular cloning and sequence of two cDNAs for human subunit c of H(+)-ATP synthase in mitochondria | journal = Biochimica et Biophysica Acta | volume = 1173 | issue = 1 | pages = 87–90 | date = Apr 1993 | pmid = 8485160 | doi = 10.1016/0167-4781(93)90249-D }} | ||
*{{cite journal | * {{cite journal | vauthors = Bonaldo MF, Lennon G, Soares MB | title = Normalization and subtraction: two approaches to facilitate gene discovery | journal = Genome Research | volume = 6 | issue = 9 | pages = 791–806 | date = Sep 1996 | pmid = 8889548 | doi = 10.1101/gr.6.9.791 }} | ||
*{{cite journal | * {{cite journal | vauthors = Elston T, Wang H, Oster G | title = Energy transduction in ATP synthase | journal = Nature | volume = 391 | issue = 6666 | pages = 510–3 | date = Jan 1998 | pmid = 9461222 | doi = 10.1038/35185 }} | ||
* {{cite journal | vauthors = Wang H, Oster G | title = Energy transduction in the F1 motor of ATP synthase | journal = Nature | volume = 396 | issue = 6708 | pages = 279–82 | date = Nov 1998 | pmid = 9834036 | doi = 10.1038/24409 }} | |||
*{{cite journal | * {{cite journal | vauthors = Hartley JL, Temple GF, Brasch MA | title = DNA cloning using in vitro site-specific recombination | journal = Genome Research | volume = 10 | issue = 11 | pages = 1788–95 | date = Nov 2000 | pmid = 11076863 | pmc = 310948 | doi = 10.1101/gr.143000 }} | ||
*{{cite journal | * {{cite journal | vauthors = Wiemann S, Weil B, Wellenreuther R, Gassenhuber J, Glassl S, Ansorge W, Böcher M, Blöcker H, Bauersachs S, Blum H, Lauber J, Düsterhöft A, Beyer A, Köhrer K, Strack N, Mewes HW, Ottenwälder B, Obermaier B, Tampe J, Heubner D, Wambutt R, Korn B, Klein M, Poustka A | title = Toward a catalog of human genes and proteins: sequencing and analysis of 500 novel complete protein coding human cDNAs | journal = Genome Research | volume = 11 | issue = 3 | pages = 422–35 | date = Mar 2001 | pmid = 11230166 | pmc = 311072 | doi = 10.1101/gr.GR1547R }} | ||
*{{cite journal | * {{cite journal | vauthors = Cross RL | title = Molecular motors: turning the ATP motor | journal = Nature | volume = 427 | issue = 6973 | pages = 407–8 | date = Jan 2004 | pmid = 14749816 | doi = 10.1038/427407b }} | ||
*{{cite journal | * {{cite journal | vauthors = Wiemann S, Arlt D, Huber W, Wellenreuther R, Schleeger S, Mehrle A, Bechtel S, Sauermann M, Korf U, Pepperkok R, Sültmann H, Poustka A | title = From ORFeome to biology: a functional genomics pipeline | journal = Genome Research | volume = 14 | issue = 10B | pages = 2136–44 | date = Oct 2004 | pmid = 15489336 | pmc = 528930 | doi = 10.1101/gr.2576704 }} | ||
*{{cite journal | * {{cite journal | vauthors = Wang HL, Zhu ZM, Yerle M, Wu X, Wang H, Yang SL, Li K | title = Full-length coding sequences and mapping of porcine ATP6VOE and ATP5G1 genes | journal = Cytogenetic and Genome Research | volume = 109 | issue = 4 | pages = 533 | year = 2005 | pmid = 15906478 | doi = 10.1159/000084223 }} | ||
*{{cite journal | * {{cite journal | vauthors = Mehrle A, Rosenfelder H, Schupp I, del Val C, Arlt D, Hahne F, Bechtel S, Simpson J, Hofmann O, Hide W, Glatting KH, Huber W, Pepperkok R, Poustka A, Wiemann S | title = The LIFEdb database in 2006 | journal = Nucleic Acids Research | volume = 34 | issue = Database issue | pages = D415–8 | date = Jan 2006 | pmid = 16381901 | pmc = 1347501 | doi = 10.1093/nar/gkj139 }} | ||
*{{cite journal | |||
*{{cite journal | |||
*{{cite journal | |||
}} | |||
{{refend}} | {{refend}} | ||
{{ | |||
{{gene-17-stub}} |
Latest revision as of 12:05, 21 November 2018
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Aliases | |||||||
External IDs | GeneCards: [1] | ||||||
Orthologs | |||||||
Species | Human | Mouse | |||||
Entrez |
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Ensembl |
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UniProt |
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RefSeq (mRNA) |
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RefSeq (protein) |
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Location (UCSC) | n/a | n/a | |||||
PubMed search | n/a | n/a | |||||
Wikidata | |||||||
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The ATP5MC1 gene is one of three human paralogs that encode membrane subunit c of the mitochondrial ATP synthase.[1][2]
Function
This gene encodes a subunit of mitochondrial ATP synthase. Mitochondrial ATP synthase catalyzes ATP synthesis, utilizing an electrochemical gradient of protons across the inner membrane during oxidative phosphorylation. ATP synthase is composed of two linked multi-subunit complexes: the soluble catalytic core, F1, and the membrane-spanning component, Fo, comprising the proton channel. The catalytic portion of mitochondrial ATP synthase consists of 5 different subunits (alpha, beta, gamma, delta, and epsilon) assembled with a stoichiometry of 3 alpha, 3 beta, and a single representative of the other 3. The proton channel seems to have nine subunits (a, b, c, d, e, f, g, F6 and 8). This gene is one of three genes that encode subunit c of the proton channel. Each of the three genes have distinct mitochondrial import sequences but encode the identical mature protein. Alternatively spliced transcript variants encoding the same protein have been identified.[2]
References
- ↑ Dyer MR, Walker JE (Jul 1993). "Sequences of members of the human gene family for the c subunit of mitochondrial ATP synthase". The Biochemical Journal. 293 (Pt 1): 51–64. doi:10.1042/bj2930051. PMC 1134319. PMID 8328972.
- ↑ 2.0 2.1 "Entrez Gene: ATP5MC1 ATP synthase membrane subunit c locus 1".
External links
- Human ATP5MC1 genome location and ATP5MC1 gene details page in the UCSC Genome Browser.
Further reading
- Farrell LB, Nagley P (May 1987). "Human liver cDNA clones encoding proteolipid subunit 9 of the mitochondrial ATPase complex". Biochemical and Biophysical Research Communications. 144 (3): 1257–64. doi:10.1016/0006-291X(87)91446-X. PMID 2883974.
- Yan WL, Lerner TJ, Haines JL, Gusella JF (Nov 1994). "Sequence analysis and mapping of a novel human mitochondrial ATP synthase subunit 9 cDNA (ATP5G3)". Genomics. 24 (2): 375–7. doi:10.1006/geno.1994.1631. PMID 7698763.
- Higuti T, Kawamura Y, Kuroiwa K, Miyazaki S, Tsujita H (Apr 1993). "Molecular cloning and sequence of two cDNAs for human subunit c of H(+)-ATP synthase in mitochondria". Biochimica et Biophysica Acta. 1173 (1): 87–90. doi:10.1016/0167-4781(93)90249-D. PMID 8485160.
- Bonaldo MF, Lennon G, Soares MB (Sep 1996). "Normalization and subtraction: two approaches to facilitate gene discovery". Genome Research. 6 (9): 791–806. doi:10.1101/gr.6.9.791. PMID 8889548.
- Elston T, Wang H, Oster G (Jan 1998). "Energy transduction in ATP synthase". Nature. 391 (6666): 510–3. doi:10.1038/35185. PMID 9461222.
- Wang H, Oster G (Nov 1998). "Energy transduction in the F1 motor of ATP synthase". Nature. 396 (6708): 279–82. doi:10.1038/24409. PMID 9834036.
- Hartley JL, Temple GF, Brasch MA (Nov 2000). "DNA cloning using in vitro site-specific recombination". Genome Research. 10 (11): 1788–95. doi:10.1101/gr.143000. PMC 310948. PMID 11076863.
- Wiemann S, Weil B, Wellenreuther R, Gassenhuber J, Glassl S, Ansorge W, Böcher M, Blöcker H, Bauersachs S, Blum H, Lauber J, Düsterhöft A, Beyer A, Köhrer K, Strack N, Mewes HW, Ottenwälder B, Obermaier B, Tampe J, Heubner D, Wambutt R, Korn B, Klein M, Poustka A (Mar 2001). "Toward a catalog of human genes and proteins: sequencing and analysis of 500 novel complete protein coding human cDNAs". Genome Research. 11 (3): 422–35. doi:10.1101/gr.GR1547R. PMC 311072. PMID 11230166.
- Cross RL (Jan 2004). "Molecular motors: turning the ATP motor". Nature. 427 (6973): 407–8. doi:10.1038/427407b. PMID 14749816.
- Wiemann S, Arlt D, Huber W, Wellenreuther R, Schleeger S, Mehrle A, Bechtel S, Sauermann M, Korf U, Pepperkok R, Sültmann H, Poustka A (Oct 2004). "From ORFeome to biology: a functional genomics pipeline". Genome Research. 14 (10B): 2136–44. doi:10.1101/gr.2576704. PMC 528930. PMID 15489336.
- Wang HL, Zhu ZM, Yerle M, Wu X, Wang H, Yang SL, Li K (2005). "Full-length coding sequences and mapping of porcine ATP6VOE and ATP5G1 genes". Cytogenetic and Genome Research. 109 (4): 533. doi:10.1159/000084223. PMID 15906478.
- Mehrle A, Rosenfelder H, Schupp I, del Val C, Arlt D, Hahne F, Bechtel S, Simpson J, Hofmann O, Hide W, Glatting KH, Huber W, Pepperkok R, Poustka A, Wiemann S (Jan 2006). "The LIFEdb database in 2006". Nucleic Acids Research. 34 (Database issue): D415–8. doi:10.1093/nar/gkj139. PMC 1347501. PMID 16381901.
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