SDHD

Succinate dehydrogenase complex, subunit D, integral membrane protein
Available structures
PDB Ortholog search: PDBe, RCSB
Identifiers
Symbols SDHD ; CBT1; CII-4; CWS3; PGL; PGL1; QPs3; SDH4; cybS
External IDs OMIM: 602690 MGI: 1914175 HomoloGene: 37718 GeneCards: SDHD Gene
EC number 1.3.5.1
Orthologs
Species Human Mouse
Entrez 6392 66925
Ensembl ENSG00000204370 ENSMUSG00000000171
UniProt O14521 Q9CXV1
RefSeq (mRNA) NM_001276503 NM_025848
RefSeq (protein) NP_001263432 NP_080124
Location (UCSC) Chr 11:
112.09 – 112.12 Mb
Chr 9:
50.6 – 50.6 Mb
PubMed search

Succinate dehydrogenase [ubiquinone] cytochrome b small subunit, mitochondrial (CybS), also known as succinate dehydrogenase complex subunit D (SDHD), is a protein that in humans is encoded by the SDHD gene. Names previously used for SDHD were PGL and PGL1. Succinate dehydrogenase is an important enzyme in both the citric acid cycle and the electron transport chain.[1][2][3]

Structure

The SDHD gene is located on chromosome 11 at locus 11q23 and it spans 8,978 base pairs.[1] The SDHD gene produces a 17 kDa protein composed of 159 amino acids.[4][5]

The SDHD protein is one of the two transmembrane subunits of the four-subunit succinate dehydrogenase (Complex II) protein complex that resides in the inner mitochondrial membrane. The other transmembrane subunit is SDHC. The SDHC/SDHD dimer is connected to the SDHB electron transport subunit which, in turn, is connected to the SDHA subunit.[6]

Function

SDHD forms part of the transmembrane protein dimer with SDHC that anchors Complex II to the inner mitochondrial membrane. The SDHC/SDHD dimer provides binding sites for ubiquinone and water during electron transport at Complex II. Initially, SDHA oxidizes succinate via deprotonation at the FAD binding site, leaving fumarate, loosely bound to the active site, free to exit the protein. The electrons derived from succinate tunnel along the [Fe-S] relay in the SDHB subunit until they reach the [3Fe-4S] iron sulfur cluster. The electrons are then transferred to an awaiting ubiquinone molecule at the active site in the SDHC/SDHD dimer. The O1 carbonyl oxygen of ubiquinone is oriented at the active site (image 4) by hydrogen bond interactions with Tyr83 of SDHD. The presence of electrons in the [3Fe-4S] iron sulphur cluster induces the movement of ubiquinone into a second orientation. This facilitates a second hydrogen bond interaction between the O4 carbonyl group of ubiquinone and Ser27 of subunit C. Following the first single electron reduction step, a semiquinone radical species is formed. The second electron arrives from the [3Fe-4S] cluster to provide full reduction of the ubiquinone to ubiquinol.[7]

Clinical significance

Mutations in the SDHD gene can cause familial paraganglioma.[1]

Germline mutations in SDHD were first linked to hereditary paraganglioma in 2000.[8] Since then, it has been shown that mutations in SDHB and to a lesser degree SDHC can cause paranglioma as well familial pheochromocytoma. Notably, the tumor spectrum is different for the different mutations. SDHB mutations often lead to metastatic disease that is extra-adrenal, while SDHD mutation related tumors are more typically benign, originating in the head and neck.[9]

The exact mechanism for tumorigenesis is not determined, but it is suspected that malfunction of the SDH complex can cause a hypoxic response in the cell that leads to tumor formation. Mutations in the SDHB, SDHC, SDHD, and SDHAF2 genes lead to the loss or reduction of SDH enzyme activity. Because the mutated SDH enzyme cannot convert succinate to fumarate, succinate accumulates in the cell. As a result, the hypoxia pathways are triggered in normal oxygen conditions, which lead to abnormal cell growth and tumor formation.[9] People living at higher altitudes (for example, the Andes mountains) are known to have an increased rate of benign paraganglioma, with the rate of disease increasing with the altitude of the population.

At least five variants in the SDHD gene have been identified in people with Cowden syndrome or a similar disorder called Cowden-like syndrome. These conditions are characterized by multiple tumor-like growths called hamartomas and an increased risk of developing certain cancers. When Cowden syndrome and Cowden-like syndrome are caused by SDHD gene mutations, the conditions are associated with a particularly high risk of developing breast and thyroid cancers. The SDHD gene variants associated with Cowden syndrome and Cowden-like syndrome change single amino acids in the SDHD protein, which likely alters the function of the SDH enzyme. Studies suggest that the defective enzyme could allow cells to grow and divide unchecked, leading to the formation of hamartomas and cancerous tumors. However, researchers are uncertain whether the identified SDHD gene variants are directly associated with Cowden syndrome and Cowden-like syndrome. Some of the variants described above have rarely been found in people without the features of these conditions.[10]

Mutations in the SDHD gene have been found in a small number of people with Carney-Stratakis syndrome, a hereditary form of a cancer of the gastrointestinal tract called gastrointestinal stromal tumor (GIST). Those with Carney-Stratakis syndrome present with a noncancerous tumor associated with the nervous system called a paraganglioma or pheochromocytoma (a type of paraganglioma). An inherited SDHD gene mutation predisposes an individual to cancer formation. An additional mutation that deletes the normal copy of the gene is needed to cause Carney-Stratakis syndrome. This second mutation, called a somatic mutation, is acquired during a person's lifetime and is present only in tumor cells.[10]

Interactive pathway map

Click on genes, proteins and metabolites below to link to respective articles. [§ 1]

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|{{{bSize}}}px|alt=TCA Cycle edit]]

TCA Cycle edit

  1. The interactive pathway map can be edited at WikiPathways: "TCACycle_WP78".

References

  1. 1 2 3 "Entrez Gene: succinate dehydrogenase complex".
  2. Heutink P, van der Mey AG, Sandkuijl LA, van Gils AP, Bardoel A, Breedveld GJ, van Vliet M, van Ommen GJ, Cornelisse CJ, Oostra BA (Apr 1992). "A gene subject to genomic imprinting and responsible for hereditary paragangliomas maps to chromosome 11q23-qter". Human Molecular Genetics 1 (1): 7–10. doi:10.1093/hmg/1.1.7. PMID 1301144.
  3. Hirawake H, Taniwaki M, Tamura A, Kojima S, Kita K (1997). "Cytochrome b in human complex II (succinate-ubiquinone oxidoreductase): cDNA cloning of the components in liver mitochondria and chromosome assignment of the genes for the large (SDHC) and small (SDHD) subunits to 1q21 and 11q23". Cytogenetics and Cell Genetics 79 (1-2): 132–8. doi:10.1159/000134700. PMID 9533030.
  4. Zong NC, Li H, Li H, Lam MP, Jimenez RC, Kim CS, Deng N, Kim AK, Choi JH, Zelaya I, Liem D, Meyer D, Odeberg J, Fang C, Lu HJ, Xu T, Weiss J, Duan H, Uhlen M, Yates JR, Apweiler R, Ge J, Hermjakob H, Ping P (Oct 2013). "Integration of cardiac proteome biology and medicine by a specialized knowledgebase". Circulation Research 113 (9): 1043–53. doi:10.1161/CIRCRESAHA.113.301151. PMC 4076475. PMID 23965338.
  5. "SDHD - Succinate dehydrogenase [ubiquinone] cytochrome b small subunit, mitochondrial". Cardiac Organellar Protein Atlas Knowledgebase (COPaKB).
  6. Sun, F; Huo, X; Zhai, Y; Wang, A; Xu, J; Su, D; Bartlam, M; Rao, Z (1 July 2005). "Crystal structure of mitochondrial respiratory membrane protein complex II.". Cell 121 (7): 1043–57. doi:10.1016/j.cell.2005.05.025. PMID 15989954.
  7. Horsefield, R; Yankovskaya, V; Sexton, G; Whittingham, W; Shiomi, K; Omura, S; Byrne, B; Cecchini, G; Iwata, S (17 March 2006). "Structural and computational analysis of the quinone-binding site of complex II (succinate-ubiquinone oxidoreductase): a mechanism of electron transfer and proton conduction during ubiquinone reduction.". The Journal of Biological Chemistry 281 (11): 7309–16. doi:10.1074/jbc.m508173200. PMID 16407191.
  8. Baysal BE, Ferrell RE, Willett-Brozick JE, Lawrence EC, Myssiorek D, Bosch A, van der Mey A, Taschner PE, Rubinstein WS, Myers EN, Richard CW, Cornelisse CJ, Devilee P, Devlin B (Feb 2000). "Mutations in SDHD, a mitochondrial complex II gene, in hereditary paraganglioma". Science 287 (5454): 848–51. doi:10.1126/science.287.5454.848. PMID 10657297.
  9. 1 2 "Hereditary paraganglioma-pheochromocytoma". Genetics Home Reference. U.S. National Library of Medicine. Retrieved 26 March 2015.
  10. 1 2 "SDHD". Genetics Home Reference. U.S. National Library of Medicine. Retrieved 26 March 2015.

Further reading

  • Bayley JP, Weiss MM, Grimbergen A, van Brussel BT, Hes FJ, Jansen JC, Verhoef S, Devilee P, Corssmit EP, Vriends AH (Sep 2009). "Molecular characterization of novel germline deletions affecting SDHD and SDHC in pheochromocytoma and paraganglioma patients". Endocrine-Related Cancer (Bioscientifica) 16 (3): 929–37. doi:10.1677/ERC-09-0084. PMID 19546167. 
  • Gaal J, Burnichon N, Korpershoek E, Roncelin I, Bertherat J, Plouin PF, de Krijger RR, Gimenez-Roqueplo AP, Dinjens WN (Mar 2010). "Isocitrate dehydrogenase mutations are rare in pheochromocytomas and paragangliomas". The Journal of Clinical Endocrinology and Metabolism 95 (3): 1274–8. doi:10.1210/jc.2009-2170. PMID 19915015. 
  • Milosevic D, Lundquist P, Cradic K, Vidal-Folch N, Huynh T, Pacak K, Grebe SK (May 2010). "Development and validation of a comprehensive mutation and deletion detection assay for SDHB, SDHC, and SDHD". Clinical Biochemistry 43 (7-8): 700–4. doi:10.1016/j.clinbiochem.2010.01.016. PMC 3419008. PMID 20153743. 
  • Janecke AR, Willett-Brozick JE, Karas C, Hasipek M, Loeffler-Ragg J, Baysal BE (Mar 2010). "Identification of a 4.9-kilo base-pair Alu-mediated founder SDHD deletion in two extended paraganglioma families from Austria". Journal of Human Genetics 55 (3): 182–5. doi:10.1038/jhg.2009.142. PMID 20111059. 
  • Cascón A, López-Jiménez E, Landa I, Leskelä S, Leandro-García LJ, Maliszewska A, Letón R, de la Vega L, García-Barcina MJ, Sanabria C, Alvarez-Escolá C, Rodríguez-Antona C, Robledo M (Sep 2009). "Rationalization of genetic testing in patients with apparently sporadic pheochromocytoma/paraganglioma". Hormone and Metabolic Research = Hormon- Und Stoffwechselforschung = Hormones Et Métabolisme 41 (9): 672–5. doi:10.1055/s-0029-1202814. PMID 19343621. 
  • Waldmann J, Langer P, Habbe N, Fendrich V, Ramaswamy A, Rothmund M, Bartsch DK, Slater EP (Jun 2009). "Mutations and polymorphisms in the SDHB, SDHD, VHL, and RET genes in sporadic and familial pheochromocytomas". Endocrine 35 (3): 347–55. doi:10.1007/s12020-009-9178-y. PMID 19399650. 
  • Ricketts CJ, Forman JR, Rattenberry E, Bradshaw N, Lalloo F, Izatt L, Cole TR, Armstrong R, Kumar VK, Morrison PJ, Atkinson AB, Douglas F, Ball SG, Cook J, Srirangalingam U, Killick P, Kirby G, Aylwin S, Woodward ER, Evans DG, Hodgson SV, Murday V, Chew SL, Connell JM, Blundell TL, Macdonald F, Maher ER (Jan 2010). "Tumor risks and genotype-phenotype-proteotype analysis in 358 patients with germline mutations in SDHB and SDHD". Human Mutation 31 (1): 41–51. doi:10.1002/humu.21136. PMID 19802898. 
  • Gill AJ, Benn DE, Chou A, Clarkson A, Muljono A, Meyer-Rochow GY, Richardson AL, Sidhu SB, Robinson BG, Clifton-Bligh RJ (Jun 2010). "Immunohistochemistry for SDHB triages genetic testing of SDHB, SDHC, and SDHD in paraganglioma-pheochromocytoma syndromes". Human Pathology 41 (6): 805–14. doi:10.1016/j.humpath.2009.12.005. PMID 20236688. 
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