Figure 1 Proposed mechanisms of the zinc-dependent hydrolysis of C2-ceramide (Black arrows) and the zinc-dependent synthesis of C2-ceramide from palmitate and sphingosine (Red arrows) by CerN . Figure adapted from Inoe et al.(2009)[1]
CerN is an enzyme that catalyzes the cleavage of the SphingolipidCeramide at the N-acyl linkage, producing sphingosine and a fatty acid.[2][1] As a neutral ceramidase, optimal catalytic activity of CerN occurs between pH 6.5-8.5.[2] CerN cleaves the N-acyl linkage within ceramides via zinc-dependent hydrolysis and the enzyme is also capable of synthesizing ceramide from sphingosine and palmitic acid by the reverse mechanism.[1][3] The zinc ion within the active site is coordinated by His97, His204, Glu411, Tyr448, and a water molecule. His97 and Tyr448 are required for zinc binding within the active site. Ligand binding within the active site is recognized by Gly25, His99, Arg160, and Tyr460.[1] Ser27 and Gly25 stabilize ceramide within the active site by forming a water-mediated hydrogen bond with the central OH of ceramide, and the carbonyl oxygen is stabilized by the Tyr448 and Tyr460.
Upon ligand binding, CerN enters the closed conformation. [1]His99 and Arg160 function in the catalysis of ceramide hydrolysis, as they deprotonate their coordinated water molecule to produce a hydroxide ion.[1] The carbonyl carbon of ceramide undergoes a nucleophilic attack by the hydroxide ion (Figure 1).[1] The carbonyl oxygen stabilized by Tyr448 and Tyr460 is then passed to the zinc ion, allowing for the breakage of the N-acyl linkage.[1] Sphingosine is then released from the active site while the fatty acid remains bound to the zinc ion until it is replaced by a new water molecule, shifting CerN into the open conformation.[1] The synthesis of ceramide from palmitate and sphingosine occurs via the same mechanism but in reverse (Figure 1). [1]
Full crystallographic information for 2zxc (Closed) is available from OCA.Full crystallographic information for 2zws (Open) is available from OCA. For a guided tour on the structure components use FirstGlance.
Sphingolipids play key role in eukaryotic cell membrane structure and function.[4][5] Additionally, sphingolipids act as signaling molecules for eukaryotic processes such as proliferation, apoptosis, inflammation, cell migration, and pathogen defense.[5] Ceramide is considered as the central molecule in sphingolipid metabolism, as it can be converted to more complex sphingolipids or be broken down for the production of sphingosine and sphingosine-1-phosphate (Seitz and Gulbins).[6]Cite error: Closing </ref> missing for <ref> tag Eukaryotes utilize ceramide in the formation of lipid rafts, lipid-protein platforms that alter the biophysical properties of cell membranes as well as localize receptors for signal amplification.Cite error: Closing </ref> missing for <ref> tag Ceramide-rich membrane platforms on human-epithelial cells serve as sites for the attachment and invasion of bacterial pathogens such as Neisseria gonorrhoeae.[7]Pseudomonas aeruginosa is capable of detecting host-derived sphingosine, resulting in activation of P. aeruginosa sphingosine-responsive genes. The products of P. aeruginosa sphingosine-responsive genes are used for the detoxification of sphingosine, as well as its production from other host-derived sphingolipids, making P. aeruginosa sphingosine tolerant. Loss of P. aeruginosa sphingosine-responsive genes results in the inability of the bacteria to survive in the presence of sphingosine in vitro or in the murine lung. CerN is one of the proteins encoded by P. aeruginosa sphingosine-responsive genes used for the production of sphingosine from ceramide, with the added ability of functioning as a ceramide synthase.[2][3] It has been hypothesized that the hydrolysis of host-membrane ceramide via CerN facilitates P. aeruginosa intracellular invasion, similar to other bacterial pathogens. CerN is also involved in P. aeruginosabiofilm production, a major virulence trait of the pathogen. Sphingosine production via CerN-mediated hydrolysis of host ceramide induces a biofilm formation at sites of infection, biofilm accumulation yields more ceramide hydrolysis, creating a positive-feedback loop for P. aeruginosa virulence.
↑ 2.02.12.22.3Okino N, Tani M, Imayama S, Ito M. Purification and characterization of a novel ceramidase from Pseudomonas aeruginosa. J Biol Chem. 1998 Jun 5;273(23):14368-73. PMID:9603946
↑ 3.03.13.2Kita K, Okino N, Ito M. Reverse hydrolysis reaction of a recombinant alkaline ceramidase of Pseudomonas aeruginosa. Biochim Biophys Acta. 2000 May 31;1485(2-3):111-20. doi:, 10.1016/s1388-1981(00)00029-9. PMID:10832092 doi:https://dx.doi.org/10.1016/s1388-1981(00)00029-9
↑ 5.05.15.2Hannun YA, Obeid LM. Principles of bioactive lipid signalling: lessons from sphingolipids. Nat Rev Mol Cell Biol. 2008 Feb;9(2):139-50. doi: 10.1038/nrm2329. PMID:18216770 doi:https://dx.doi.org/10.1038/nrm2329
↑ 6.06.1Wu Y, Liu Y, Gulbins E, Grassme H. The Anti-Infectious Role of Sphingosine in Microbial Diseases. Cells. 2021 May 4;10(5). pii: cells10051105. doi: 10.3390/cells10051105. PMID:34064516 doi:https://dx.doi.org/10.3390/cells10051105
↑ 7.07.1Seitz AP, Grassme H, Edwards MJ, Pewzner-Jung Y, Gulbins E. Ceramide and sphingosine in pulmonary infections. Biol Chem. 2015 Jun;396(6-7):611-20. doi: 10.1515/hsz-2014-0285. PMID:25720061 doi:https://dx.doi.org/10.1515/hsz-2014-0285
↑Harrison PJ, Dunn TM, Campopiano DJ. Sphingolipid biosynthesis in man and microbes. Nat Prod Rep. 2018 Sep 19;35(9):921-954. doi: 10.1039/c8np00019k. PMID:29863195 doi:https://dx.doi.org/10.1039/c8np00019k
References
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