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The cystathionine gamma-lyase enzymes from multiple organisms form an evolutionarily conserved group of PLP-dependent enzymes, specifically categorized within the cystathionine synthase-like enzyme family. The data exhibits a substantial level of sequence homology among these CSE enzymes at the genomic level. Furthermore, a predominant structural similarity is observed between the active site region of the CSE enzymes and other PLP-dependent enzymes<ref name ="x"/>.<br>
The cystathionine gamma-lyase enzymes from multiple organisms form an evolutionarily conserved group of PLP-dependent enzymes, specifically categorized within the cystathionine synthase-like enzyme family. The data exhibits a substantial level of sequence homology among these CSE enzymes at the genomic level. Furthermore, a predominant structural similarity is observed between the active site region of the CSE enzymes and other PLP-dependent enzymes<ref name ="x"/>.<br>
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[[Image:Alinhamento gui.png|600px|center|thumb| Alignment of the amino acid sequences of cystathionine gamma-lyase protein from Homo sapiens, Mus musculus, Pseudomonas aeruginosa [[7ba4]], and Saccharomyces cerevisiae [[1n8p]], showing high similarity across different lineages. Alignment by COBALT NCBI tool.]]
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[[Image:Alinhamento gui.png|600px|center|thumb| Alignment of the amino acid sequences of cystathionine gamma-lyase protein from Homo sapiens, Mus musculus, Pseudomonas aeruginosa ([[7ba4]]), and Saccharomyces cerevisiae ([[1n8p]]), showing high similarity across different lineages. Alignment by COBALT NCBI tool.]]
== Structure ==
== Structure ==

Revision as of 13:28, 7 July 2023

Cystathionine gamma-lyase (Homo sapiens)

Homo sapiens cystathionine gamma-lyase (PDB code 2nmp)

Drag the structure with the mouse to rotate

References

  1. 1.0 1.1 Chiku T, Padovani D, Zhu W, Singh S, Vitvitsky V, Banerjee R. H2S biogenesis by human cystathionine gamma-lyase leads to the novel sulfur metabolites lanthionine and homolanthionine and is responsive to the grade of hyperhomocysteinemia. J Biol Chem. 2009 Apr 24;284(17):11601-12. doi: 10.1074/jbc.M808026200. Epub 2009, Mar 4. PMID:19261609 doi:10.1074/jbc.M808026200
  2. Messerschmidt A, Worbs M, Steegborn C, Wahl MC, Huber R, Laber B, Clausen T. Determinants of enzymatic specificity in the Cys-Met-metabolism PLP-dependent enzymes family: crystal structure of cystathionine gamma-lyase from yeast and intrafamiliar structure comparison. Biol Chem. 2003 Mar;384(3):373-86. PMID:12715888
  3. 3.0 3.1 3.2 3.3 3.4 3.5 3.6 3.7 Sun Q, Collins R, Huang S, Holmberg-Schiavone L, Anand GS, Tan CH, van-den-Berg S, Deng LW, Moore PK, Karlberg T, Sivaraman J. Structural basis for the inhibition mechanism of human cystathionine gamma-lyase, an enzyme responsible for the production of H(2)S. J Biol Chem. 2009 Jan 30;284(5):3076-85. Epub 2008 Nov 19. PMID:19019829 doi:http://dx.doi.org/10.1074/jbc.M805459200
  4. 4.0 4.1 Adaikan PG, Karim SM. Effects of PGA and PGB compounds on gastrointestinal tract smooth muscle from man and laboratory animals. Prostaglandins. 1976 Jan;11(1):15-22. PMID:1257494 doi:10.1016/0090-6980(76)90168-4
  5. Scott CR, Dassell SW, Clark SH, Chiang-Teng C, Swedberg KR. Cystathioninemia: a benign genetic condition. J Pediatr. 1970 Apr;76(4):571-7. PMID:5420794 doi:10.1016/s0022-3476(70)80407-3
  6. Wang J, Hegele RA. Genomic basis of cystathioninuria (MIM 219500) revealed by multiple mutations in cystathionine gamma-lyase (CTH). Hum Genet. 2003 Apr;112(4):404-8. Epub 2003 Feb 6. PMID:12574942 doi:10.1007/s00439-003-0906-8

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