Lactate dehydrogenase A

LDHA
Available structures
PDBOrtholog search: PDBe RCSB
Identifiers
AliasesLDHA, GSD11, HEL-S-133P, LDH1, LDHM, PIG19, lactate dehydrogenase A
External IDsMGI: 96759 HomoloGene: 56495 GeneCards: LDHA
Gene location (Human)
Chr.Chromosome 11 (human)[1]
BandNo data availableStart18,394,388 bp[1]
End18,408,425 bp[1]
RNA expression pattern
More reference expression data
Orthologs
SpeciesHumanMouse
Entrez

3939

16828

Ensembl

ENSG00000134333

ENSMUSG00000063229

UniProt

P00338

P06151

RefSeq (mRNA)

NM_001135239
NM_001165414
NM_001165415
NM_001165416
NM_005566

NM_001136069
NM_010699

RefSeq (protein)

NP_001128711
NP_001158886
NP_001158887
NP_001158888
NP_005557

NP_001129541
NP_034829

Location (UCSC)Chr 11: 18.39 – 18.41 MbChr 11: 46.84 – 46.86 Mb
PubMed search[3][4]
Wikidata
View/Edit HumanView/Edit Mouse

Lactate dehydrogenase A (LDHA) is an enzyme which in humans is encoded by the LDHA gene.[5] It is a monomer of lactate dehydrogenase, which exists as a tetramer. The other main subunit is lactate dehydrogenase B (LDHB).

Function

Lactate dehydrogenase A catalyzes the inter-conversion of pyruvate and L-lactate with concomitant inter-conversion of NADH and NAD+. LDHA is found in most somatic tissues, though predominantly in muscle tissue and tumours, and belongs to the lactate dehydrogenase family. It has long been known that many human cancers have higher LDHA levels compared to normal tissues. It has also been shown that LDHA plays an important role in the development, invasion and metastasis of malignancies. Mutations in LDHA have been linked to exertional myoglobinuria.[6]

Interactive pathway map

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

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GlycolysisGluconeogenesis_WP534 go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to article go to Entrez go to article go to article go to article go to article go to article go to WikiPathways go to article go to Entrez go to article

|{{{bSize}}}px|alt=Glycolysis and Gluconeogenesis edit]]

Glycolysis and Gluconeogenesis edit

  1. The interactive pathway map can be edited at WikiPathways: "GlycolysisGluconeogenesis_WP534".

Model organisms

Model organisms have been used in the study of LDHA function. A conditional knockout mouse line, called Ldhatm1a(EUCOMM)Wtsi[14][15] was generated as part of the International Knockout Mouse Consortium program — a high-throughput mutagenesis project to generate and distribute animal models of disease to interested scientists.[16][17][18]

Male and female animals underwent a standardized phenotypic screen to determine the effects of deletion.[12][19] Twenty seven tests were carried out on mutant mice and five significant abnormalities were observed.[12] Few homozygous mutant embryos were identified during gestation, and none survived until weaning. The remaining tests were carried out on heterozygous mutant adult mice. Animals of both sex had abnormal plasma chemistry, males also had improved glucose tolerance and increased red blood cell distribution width.[12]

LDHA

The following compounds have been demonstrated to inhibit the LDHA enzyme:

References

  1. 1 2 3 GRCh38: Ensembl release 89: ENSG00000134333 - Ensembl, May 2017
  2. 1 2 3 GRCm38: Ensembl release 89: ENSMUSG00000063229 - Ensembl, May 2017
  3. "Human PubMed Reference:".
  4. "Mouse PubMed Reference:".
  5. Chung FZ, Tsujibo H, Bhattacharyya U, Sharief FS, Li SS (November 1985). "Genomic organization of human lactate dehydrogenase-A gene". The Biochemical Journal. 231 (3): 537–41. PMC 1152784Freely accessible. PMID 3000353.
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Further reading

  • Miyajima H, Shimizu T, Kaneko E (October 1992). "[Gene expression in lactate dehydrogenase-A subunit deficiency]". Rinsho Shinkeigaku = Clinical Neurology. 32 (10): 1087–92. PMID 1297552. 
  • Sudo K, Maekawa M, Shioya M, Ikeda K, Takahashi N, Isogai Y, Li SS, Kanno T, Machida K, Toriumi J (September 1992). "Molecular analysis of genetic mutation in electrophoretic variant of human lactate dehydrogenase-A(M) subunit". Biochemistry International. 27 (6): 1051–7. PMID 1445373. 
  • Maekawa M, Sudo K, Li SS, Kanno T (October 1991). "Analysis of genetic mutations in human lactate dehydrogenase-A(M) deficiency using DNA conformation polymorphism in combination with polyacrylamide gradient gel and silver staining". Biochemical and Biophysical Research Communications. 180 (2): 1083–90. PMID 1953713. doi:10.1016/S0006-291X(05)81177-5. 
  • Maekawa M, Sudo K, Li SS, Kanno T (November 1991). "Genotypic analysis of families with lactate dehydrogenase A (M) deficiency by selective DNA amplification". Human Genetics. 88 (1): 34–8. PMID 1959923. doi:10.1007/BF00204925. 
  • Scrable HJ, Johnson DK, Rinchik EM, Cavenee WK (March 1990). "Rhabdomyosarcoma-associated locus and MYOD1 are syntenic but separate loci on the short arm of human chromosome 11". Proceedings of the National Academy of Sciences of the United States of America. 87 (6): 2182–6. Bibcode:1990PNAS...87.2182S. PMC 53650Freely accessible. PMID 2315312. doi:10.1073/pnas.87.6.2182. 
  • Maekawa M, Sudo K, Kanno T, Li SS (April 1990). "Molecular characterization of genetic mutation in human lactate dehydrogenase-A (M) deficiency". Biochemical and Biophysical Research Communications. 168 (2): 677–82. PMID 2334430. doi:10.1016/0006-291X(90)92374-9. 
  • Gosti F, Marty MC, Courvalin JC, Maunoury R, Bornens M (February 1987). "Centrosomal proteins and lactate dehydrogenase possess a common epitope in human cell lines". Proceedings of the National Academy of Sciences of the United States of America. 84 (4): 1000–4. Bibcode:1987PNAS...84.1000G. PMC 304349Freely accessible. PMID 2434947. doi:10.1073/pnas.84.4.1000. 
  • Chung FZ, Tsujibo H, Bhattacharyya U, Sharief FS, Li SS (November 1985). "Genomic organization of human lactate dehydrogenase-A gene". The Biochemical Journal. 231 (3): 537–41. PMC 1152784Freely accessible. PMID 3000353. 
  • Tsujibo H, Tiano HF, Li SS (February 1985). "Nucleotide sequences of the cDNA and an intronless pseudogene for human lactate dehydrogenase-A isozyme". European Journal of Biochemistry. 147 (1): 9–15. PMID 3838278. doi:10.1111/j.1432-1033.1985.tb08711.x. 
  • Glass RD, Doyle D (April 1972). "Genetic control of lactate dehydrogenase expression in mammalian tissues". Science. 176 (4031): 180–1. Bibcode:1972Sci...176..180G. PMID 5014440. doi:10.1126/science.176.4031.180. 
  • Maekawa M, Sudo K, Kobayashi A, Sugiyama E, Li SS, Kanno T (April 1994). "Fast-type electrophoretic variant of lactate dehydrogenase M(A) and comparison with other missense mutations in lactate dehydrogenase M(A) and H(B) genes". Clinical Chemistry. 40 (4): 665–8. PMID 7908613. 
  • Maruyama K, Sugano S (January 1994). "Oligo-capping: a simple method to replace the cap structure of eukaryotic mRNAs with oligoribonucleotides". Gene. 138 (1–2): 171–4. PMID 8125298. doi:10.1016/0378-1119(94)90802-8. 
  • Miyajima H, Takahashi Y, Suzuki M, Shimizu T, Kaneko E (July 1993). "Molecular characterization of gene expression in human lactate dehydrogenase-A deficiency". Neurology. 43 (7): 1414–9. PMID 8327147. doi:10.1212/wnl.43.7.1414. 
  • Suzuki Y, Yoshitomo-Nakagawa K, Maruyama K, Suyama A, Sugano S (October 1997). "Construction and characterization of a full length-enriched and a 5'-end-enriched cDNA library". Gene. 200 (1–2): 149–56. PMID 9373149. doi:10.1016/S0378-1119(97)00411-3. 
  • Scanlan MJ, Gordan JD, Williamson B, Stockert E, Bander NH, Jongeneel V, Gure AO, Jäger D, Jäger E, Knuth A, Chen YT, Old LJ (November 1999). "Antigens recognized by autologous antibody in patients with renal-cell carcinoma". International Journal of Cancer. 83 (4): 456–64. PMID 10508479. doi:10.1002/(SICI)1097-0215(19991112)83:4<456::AID-IJC4>3.0.CO;2-5. 
  • Vilà MR, Nicolás A, Morote J, de I, Meseguer A (July 2000). "Increased glyceraldehyde-3-phosphate dehydrogenase expression in renal cell carcinoma identified by RNA-based, arbitrarily primed polymerase chain reaction". Cancer. 89 (1): 152–64. PMID 10897012. doi:10.1002/1097-0142(20000701)89:1<152::AID-CNCR20>3.0.CO;2-T. 
  • Boutet A, Altmeyer R, Héry C, Tardieu M (December 2000). "Direct role of plasma membrane-expressed gp120/41 in toxicity to human astrocytes induced by HIV-1-infected macrophages". Aids. 14 (17): 2687–97. PMID 11125887. doi:10.1097/00002030-200012010-00008. 
  • Read JA, Winter VJ, Eszes CM, Sessions RB, Brady RL (May 2001). "Structural basis for altered activity of M- and H-isozyme forms of human lactate dehydrogenase". Proteins. 43 (2): 175–85. PMID 11276087. doi:10.1002/1097-0134(20010501)43:2<175::AID-PROT1029>3.0.CO;2-# (inactive 2017-01-24). 
  • Sung JH, Shin SA, Park HK, Montelaro RC, Chong YH (October 2001). "Protective effect of glutathione in HIV-1 lytic peptide 1-induced cell death in human neuronal cells". Journal of Neurovirology. 7 (5): 454–65. PMID 11582518. doi:10.1080/135502801753170318. 
  • Pioli PA, Hamilton BJ, Connolly JE, Brewer G, Rigby WF (September 2002). "Lactate dehydrogenase is an AU-rich element-binding protein that directly interacts with AUF1". The Journal of Biological Chemistry. 277 (38): 35738–45. PMID 12107167. doi:10.1074/jbc.M204002200. 
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