Basic Information
Name | Medium-chain fatty acid ethyl ester synthase/esterase 2 (Alcohol O-acetyltransferase) (EC 2.3.1.84) (EC 3.1.1.-) (Ethanol hexanoyl transferase 1) |
Uniprot ID | P38295 |
Systematic gene name | YBR177C |
Standard gene name | EHT1 |
Gene names | EHT1 YBR177C YBR1239 |
Description from SGD | YBR177C EHT1 SGDID:S000000381, Chr II from 586162-584807, Genome Release 64-3-1, reverse complement, Verified ORF, "Octanoyl-CoA:ethanol acyltransferase; also functions as thioesterase; plays a minor role in medium-chain fatty acid ethyl ester biosynthesis; localizes to lipid particles and the mitochondrial outer membrane; EHT1 has a paralog, EEB1, that arose from the whole genome duplication" |
Protein length | 451 |
Download | sequence (fasta, from Uniprot), modifications (csv format) |
Database links | Uniprot, SGD, TheCellVision.org, FungiDB |
Sequence
MSEVSKWPAI NPFHWGYNGT VSHIVGENGS IKLHLKDNKE QVDFDEFANK
YVPTLKNGAQ FKLSPYLFTG ILQTLYLGAA DFSKKFPVFY GREIVKFSDG
GVCTADWLID SWKKDYEFDQ STTSFDKKKF DKDEKATHPE GWPRLQPRTR
YLKDNELEEL REVDLPLVVI LHGLAGGSHE PIIRSLAENL SRSGRFQVVV
LNTRGCARSK ITTRNLFTAY HTMDIREFLQ REKQRHPDRK LYAVGCSFGA
TMLANYLGEE GDKSPLSAAA TLCNPWDLLL SAIRMSQDWW SRTLFSKNIA
QFLTRTVQVN MGELGVPNGS LPDHPPTVKN PSFYMFTPEN LIKAKSFKST
REFDEVYTAP ALGFPNAMEY YKAASSINRV DTIRVPTLVI NSRDDPVVGP
DQPYSIVEKN PRILYCRTDL GGHLAYLDKD NNSWATKAIA EFFTKFDELV
V
YVPTLKNGAQ FKLSPYLFTG ILQTLYLGAA DFSKKFPVFY GREIVKFSDG
GVCTADWLID SWKKDYEFDQ STTSFDKKKF DKDEKATHPE GWPRLQPRTR
YLKDNELEEL REVDLPLVVI LHGLAGGSHE PIIRSLAENL SRSGRFQVVV
LNTRGCARSK ITTRNLFTAY HTMDIREFLQ REKQRHPDRK LYAVGCSFGA
TMLANYLGEE GDKSPLSAAA TLCNPWDLLL SAIRMSQDWW SRTLFSKNIA
QFLTRTVQVN MGELGVPNGS LPDHPPTVKN PSFYMFTPEN LIKAKSFKST
REFDEVYTAP ALGFPNAMEY YKAASSINRV DTIRVPTLVI NSRDDPVVGP
DQPYSIVEKN PRILYCRTDL GGHLAYLDKD NNSWATKAIA EFFTKFDELV
V
Legend
- X Ubiquitination
- X Phoshorylation
Structure
Structure visualized by GLmol written by biochem_fan. The structure was downloaded from the AlphaFold Protein Structure Database.
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References
[36, Ubi] | Back, S., Gorman, A.W., Vogel, C., Silva, G.M. (2019). Site-specific K63 ubiquitinomics provides insights into translation regulation under stress. Journal of Proteome Research 18(1): 309-318. (Publication) (All modifications) |
[39, Ubi] | Back, S., Gorman, A.W., Vogel, C., Silva, G.M. (2019). Site-specific K63 ubiquitinomics provides insights into translation regulation under stress. Journal of Proteome Research 18(1): 309-318. (Publication) (All modifications) |
[39, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[39, Ubi] | Fang, N.N., Chan, G.T., Zhu, M., Comyn, S.A., Persaud, A., Deshaies, R.J., Rotin, D., Gsponer, J., Mayor, T. (2014). Rsp5/Nedd4 is the main ubiquitin ligase that targets cytosolic misfolded proteins following heat stress. Nature Cell Biology 16(12): 1227-1237. (Publication) (All modifications) |
[85, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[114, Ubi] | Back, S., Gorman, A.W., Vogel, C., Silva, G.M. (2019). Site-specific K63 ubiquitinomics provides insights into translation regulation under stress. Journal of Proteome Research 18(1): 309-318. (Publication) (All modifications) |
[114, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[116, Phos] | Bai Y, Chen B, Li M, et al (2017) FPD: A comprehensive phosphorylation database in fungi. Fungal Biology 121:869–875. (Publication) (All modifications) |
[116, Phos] | Frankovsky, J., Vozáriková, V., Nosek, J., Tomáška, Ľ. (2021a). Mitochondrial protein phosphorylation in yeast revisited.Mitochondrion 57:148-162. (Publication) (All modifications) |
[121, Phos] | Lanz MC, Yugandhar K, Gupta S, Sanford EJ, Faça VM, Vega S, Joiner AMN, Fromme JC, Yu H, Smolka MB (2021). In-depth and 3-dimensional exploration of the budding yeast phosphoproteome. EMBO Reports, e51121. (Publication) (All modifications) |
[185, Phos] | Zhou, X., Li, W., Liu, Y., Amon, A. (2021. Cross-compartment signal propagation in the mitotic exit network. Elife 10:e63645. (Publication) (All modifications) |
[297, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[332, Phos] | Lanz MC, Yugandhar K, Gupta S, Sanford EJ, Faça VM, Vega S, Joiner AMN, Fromme JC, Yu H, Smolka MB (2021). In-depth and 3-dimensional exploration of the budding yeast phosphoproteome. EMBO Reports, e51121. (Publication) (All modifications) |
[332, Phos] | Renvoisé M, Bonhomme L, Davanture M, et al (2014) Quantitative variations of the mitochondrial proteome and phosphoproteome during fermentative and respiratory growth in Saccharomyces cerevisiae. Journal of Proteomics 106:140–150. (Publication) (All modifications) |
[332, Phos] | Bai Y, Chen B, Li M, et al (2017) FPD: A comprehensive phosphorylation database in fungi. Fungal Biology 121:869–875. (Publication) (All modifications) |
[332, Phos] | Frankovsky, J., Vozáriková, V., Nosek, J., Tomáška, Ľ. (2021a). Mitochondrial protein phosphorylation in yeast revisited.Mitochondrion 57:148-162. (Publication) (All modifications) |
[343, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[345, Ubi] | Back, S., Gorman, A.W., Vogel, C., Silva, G.M. (2019). Site-specific K63 ubiquitinomics provides insights into translation regulation under stress. Journal of Proteome Research 18(1): 309-318. (Publication) (All modifications) |
[345, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |
[375, Phos] | Lanz MC, Yugandhar K, Gupta S, Sanford EJ, Faça VM, Vega S, Joiner AMN, Fromme JC, Yu H, Smolka MB (2021). In-depth and 3-dimensional exploration of the budding yeast phosphoproteome. EMBO Reports, e51121. (Publication) (All modifications) |
[376, Phos] | Lanz MC, Yugandhar K, Gupta S, Sanford EJ, Faça VM, Vega S, Joiner AMN, Fromme JC, Yu H, Smolka MB (2021). In-depth and 3-dimensional exploration of the budding yeast phosphoproteome. EMBO Reports, e51121. (Publication) (All modifications) |
[409, Ubi] | Swaney, D.L., Beltrao, P., Starita, L., Guo, A., Rush, J., Fields, S., Krogan, N.J., Villén, J. (2013). Global analysis of phosphorylation and ubiquitylation cross-talk in protein degradation. Nature Methods 10(7): 676-682. (Publication) (All modifications) |