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| bacteria:t3e:xopc [2020/10/28 10:49] – [XopC] rkoebnik | bacteria:t3e:xopc [2026/06/22 12:09] (current) – [Biological function] rkoebnik | ||
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| - | ====== XopC ====== | + | ====== |
| Author: [[https:// | Author: [[https:// | ||
| Internal reviewer: [[https:// | Internal reviewer: [[https:// | ||
| - | Expert reviewer: FIXME | ||
| Class: XopC\\ | Class: XopC\\ | ||
| - | Family: XopC\\ | + | Families: XopC1 and XopC2\\ |
| - | Prototype: XCV2435 (// | + | Prototype |
| - | RefSeq | + | GenBank |
| - | 3D structure: Unknown. XopC2 is predicted to be a 661 amino-acids protein with 5 alpha helices and 17 beta strands. It has 21 protein binding and one helical transmembrane region of 18 amino acids (Mondal et al., 2020). | + | Prototype (XopC2): XOC_1264 (// |
| + | GenBank ID (XopC2): [[https:// | ||
| + | GenBank ID (XopC2; strain GX01): [[https:// | ||
| + | RefSeq ID (XopC1): [[https:// | ||
| + | RefSeq ID (XopC2): [[https:// | ||
| + | 3D structure: Unknown. XopC2 from // | ||
| ===== Biological function ===== | ===== Biological function ===== | ||
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| === How discovered? === | === How discovered? === | ||
| - | XopC was discovered in //X. campestris// | + | XopC was discovered in //X. campestris// |
| === (Experimental) evidence for being a T3E === | === (Experimental) evidence for being a T3E === | ||
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| * A deletion of // | * A deletion of // | ||
| - | * Roden et al. did not find significant growth defects of a // | + | * Roden et al. did not find significant growth defects of a // |
| * Later, 86 // | * Later, 86 // | ||
| * The absence of // | * The absence of // | ||
| * Virus-induced gene silencing (VIGS) of OAS-TL in planta abolished the acceleration of AvrBs1-mediated HR formation induced by the absence of // | * Virus-induced gene silencing (VIGS) of OAS-TL in planta abolished the acceleration of AvrBs1-mediated HR formation induced by the absence of // | ||
| - | * XopC2 of //Xanthomonas axonopodis | + | * XopC2 of //X. citri// pv. // |
| + | * Ectopic expression of XopC2 was found to promote jasmonate signaling and stomatal opening in transgenic rice plants, which were more susceptible to //X. oryzae// | ||
| + | * The small regulatory noncoding RNA (sRNA) Xonc3711 was found to repress production of the DNA-binding protein Xoc_3982 by binding to the xoc_3982 mRNA, and both ChIP-seq and electrophoretic mobility shift assays showed that Xoc_3982 repressed the transcription of the effector XopC2, which contributes to virulence in //Xoc// < | ||
| + | * XopC2 from // | ||
| === Localization === | === Localization === | ||
| - | XopC localises to the plant cell cytoplasm (Mondal et al. 2020) and the nucleus (Herzfeld, 2013). | + | XopC localises to the plant cell cytoplasm (Mondal |
| === Enzymatic function === | === Enzymatic function === | ||
| - | XopC contains a predicted phosphoribosyl transferase domain and a putative haloacid dehalogenase (HAD)-like hydrolase domain in its C-terminal end. Phenotype of point mutation in catalytic domain have shown that HAD-like hydrolase activity is required for the XopC deleterious effect in yeast (Salomon //et al//., 2011). | + | XopC contains a predicted phosphoribosyl transferase domain and a putative haloacid dehalogenase (HAD)-like hydrolase domain in its C-terminal end. Phenotype of point mutation in catalytic domain have shown that HAD-like hydrolase activity is required for the XopC deleterious effect in yeast (Salomon //et al//., 2011). XopC2 represents a family of atypical kinases that specifically phosphorylate OSK1, a universal adaptor protein of the Skp1-Cullin-F-box ubiquitin ligase complexes (Wang //et al.//, 2021). |
| === Interaction partners === | === Interaction partners === | ||
| - | Yeast-2-hybrid studies revealed a XopC interactor, which also interacted with XopC in planta. The interactor localises to the plant cell cytoplasm and carries typical features of plant cytosolic O-acetylserine (thiol)lyases (OAS-TL). It shows OAS-TL activity in vivo and in vitro. The latter one is enhanced by adding XopC (Herzfeld, 2013). | + | Yeast-2-hybrid studies revealed a XopC interactor, which also interacted with XopC //in planta//. The interactor localises to the plant cell cytoplasm and carries typical features of plant cytosolic |
| + | |||
| + | XopC2 from // | ||
| ===== Conservation ===== | ===== Conservation ===== | ||
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| The distantly related XopC2 has homologs in //X. citri//, //X. axonopodis//, | The distantly related XopC2 has homologs in //X. citri//, //X. axonopodis//, | ||
| + | |||
| === In other plant pathogens/ | === In other plant pathogens/ | ||
| XopC1: //Ralstonia solanacearum// | XopC1: //Ralstonia solanacearum// | ||
| - | XopC2: // | + | XopC2: // |
| ===== References ===== | ===== References ===== | ||
| Line 72: | Line 82: | ||
| Liu Y, Long J, Shen D, Song C (2016). // | Liu Y, Long J, Shen D, Song C (2016). // | ||
| - | <font 14px/ | + | Mondal KK, Soni M, Verma G, Kulshreshtha A, Mrutyunjaya |
| Noël L, Thieme F, Gäbler J, Büttner D, Bonas U (2003). XopC and XopJ, two novel type III effector proteins from // | Noël L, Thieme F, Gäbler J, Büttner D, Bonas U (2003). XopC and XopJ, two novel type III effector proteins from // | ||
| - | [[https:// | + | Noël L, Thieme F, Nennstiel D, Bonas U (2001). cDNA-AFLP analysis unravels a genome-wide // |
| Roden JA, Belt B, Ross JB, Tachibana T, Vargas J, Mudgett MB (2004). A genetic screen to isolate type III effectors translocated into pepper cells during // | Roden JA, Belt B, Ross JB, Tachibana T, Vargas J, Mudgett MB (2004). A genetic screen to isolate type III effectors translocated into pepper cells during // | ||
| Line 82: | Line 92: | ||
| Salomon D, Dar D, Sreeramulu S, Sessa G (2011). Expression of // | Salomon D, Dar D, Sreeramulu S, Sessa G (2011). Expression of // | ||
| - | Szurek B, Rossier O, Hause G, Bonas U (2002). Type III-dependent translocation of the // | + | Szurek B, Rossier O, Hause G, Bonas U (2002). Type III-dependent translocation of the // |
| + | |||
| + | Wang S, Li S, Wang J, Li Q, Xin XF, Zhou S, Wang Y, Li D, Xu J, Luo ZQ, He SY, Sun W (2021). A bacterial kinase phosphorylates OSK1 to suppress stomatal immunity in rice. Nat. Commun.12: 5479. DOI: [[https:// | ||
| + | |||
| + | Wei Y, Zhu B, Zhang Y, Ma G, Wu J, Tang L, Shi H (2024). CPK1-HSP90 phosphorylation and effector XopC2-HSP90 interaction underpin the antagonism during cassava defense-pathogen infection. New Phytol. 242: 2734-2745. DOI: [[https:// | ||
| + | |||
| + | Wu Y, Wang S, Nie W, Wang P, Fu L, Ahmad I, Zhu B, Chen G (2021). A key antisense sRNA modulates the oxidative stress response and virulence in // | ||
| + | |||
| + | ===== Acknowledgements ===== | ||
| + | |||
| + | This fact sheet is based upon work from COST Action CA16107 EuroXanth, supported by COST (European Cooperation in Science and Technology). | ||