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Rawal, H.

Publications and source records attributed to Rawal, H..

3 recordsLinked to original sources

A kiwellin protein-like fold containing rust effector protein localizes to chloroplast and suppress cell death in plants

The effector proteins expressed by plant pathogens are one of the essential components of the host-pathogen interaction. Despite being important, most of the effector proteins remain unexplored due to the lack of conserved features and huge diversity in their primary sequence. In the present study, extensive secretome analysis was performed in sixteen major plant fungal pathogens to find the conserved features in the candidate secretory effector proteins (CSEPs) using homology and ab initio modeling approaches. Interestingly, a variable number of plant kiwellin proteins fold like secretory proteins were found in all the major rust fungal pathogens. Many of them are predicted as potential effector proteins. For instance, 26 out of 35 Kiwellin like proteins identified in Puccinia striiformis race 104E 137A were predicted as potential effector proteins. In addition, a kiwellin predicted effector gene, Pst_13960, from the Indian Puccinia striiformis race Yr9 was characterized using overexpression, localization, and deletion studies in Nicotiana benthamiana. The Pst_13960 suppressed the BAX-induced cell death and localized in the chloroplast. Furthermore, the expression of the kiwellin matching region (Pst_13960_kiwi) alone suppressed the BAX-induced cell death in N. benthamiana despite the change of location to the cytoplasm and nucleus, suggesting the novel function of the kiwellin fold in rust fungi. Further analysis of these proteins predicted these candidates to contain N-terminal Intrinsically disordered regions (IDRs) putatively associated with chloroplast translocation as deletion of region abolished the chloroplast localization of Pstr_13960. Overall, the current study reports the presence of kiwellin like proteins in rust fungi that act as a novel effector in plants. Author SummaryRust fungi are one of the most devastating plants infecting pathogens. These pathogens secrete several distinct proteins like effector proteins that help the pathogens in the establishment of infection by suppressing cell death induced by the plants. Despite being important, these effector proteins remain unexplored due to the lack of conserved features. Currently, different methods are being used to characterize them however, could not describe their specific function fully due to a lack of knowledge of the functional domain. Recent advancement in effector protein tertiary structure characterization using NMR (Nuclear magnetic resonance) and X-ray crystallography has been very helpful in identifying the conserved structural features defining functionality. However, these techniques are quite complicated and may take a lot of time and labor. On the other hand, the computational approaches for structural prediction of the effectors may help to identify known folds or domains with few efforts but at a significant level. Therefore, such computational approaches can be efficiently implemented in the preliminary screening of the candidates. In the present study using the computational structure prediction method, we were able to find several conserved novel kiwellin folds containing effectors, in different rust fungi. We characterized one of the candidates and it showed interference with artificially induced cell death in plants. This study highlights the novel function of the kiwellin like effector proteins of the rust fungi that are already identified to play a role in host defense against plant pathogens.

microbiology↗

Comparative secretomics identifies conserved WAxR motif-containing effectors in rust fungi that suppress cell death in plants

Identification of novel effectors with conserved features has always remained a challenge in plant-pathogen interaction studies. The introduction of the genomics era in plant-pathogen studies has led to the identification of significant candidate effectors with novel motifs such as RxLR and dEER motifs. However, in the case of fungal pathogens, limited conserved motifs associated with effectors have been discovered yet. In the present study, we have performed comparative secretome analysis for major plant pathogens of diverse nutrition mechanisms with the aim of dissecting the features underlying their corresponding secretome and conserved motifs. We showed that rust fungi possess the lowest Cell wall degrading enzymes (CWDEs) consortium lower than other biotrophic pathogens. We also showed rust fungi possess the highest secretory superoxide dismutase (SOD) than other studied plant pathogens. Further, we prioritized the candidate secretory effectors proteins (CSEPs) of all the studied pathogens by combining various effector mining parameters to highlight the candidates with potential effector features. A novel WAxR motif in conjugation with the Y/F/WxC (FGC) motif was identified in the effectors of various P. striiformis races present globally. The WAxR/WAxR like motifs ( WxxR, WAxx, xAxR) containing effectors were also found in the secretome of other rust fungi. Further, the functional validation of two candidate effectors with WAxR motif from P. striiformis Yr9 showed that these effectors localize to the nucleus as well as cytoplasm, and are able to suppress BAX induced cell death in Nicotiana benthamiana. The mutation analysis of individual residues of the WAxR motif (W, A, R) however did not affect the cell death suppression nor subcellular localization of these effectors. Overall, the current study reports the presence of novel motifs in large numbers of effectors of rust fungi with cell death suppression features. HighlightsO_LISecretome analysis of various plant pathogens performed C_LIO_LIA prioritization list for candidate effectors designed C_LIO_LIA novel WAxR motif was discovered in rust fungal effector proteins C_LIO_LITwo WAxR candidate effectors were functionally validated C_LI

microbiology↗

Horizontal transfer of a conserved npc-2 like effector gene in rust fungi that suppresses cell death in plants

ML/MD-2 is a conserved lipid/sterol-binding protein family having a role in sterol transfer and innate immunity in lower and higher eukaryotes. Here we report a genome-wide survey of this family, identifying 84 genes in 25 fungal and five oomycetes plant pathogen, having a different nutrition mode. All the fungal species were found to have varied numbers of family members, a distinctively substantial expansion of the ML gene family was observed in Rhizophagus irregularis (RI) with 33 genes. Our analysis also showed that NPC2 like proteins, a subfamily of ML domain superfamily, were not only restricted to animals and insect species but also present in plant fungal pathogens, including members of Clavicipitaceae, Pucciniacease, and Tremellaceae family. The phylogenetic analysis showed that these NPC2 like fungal proteins are more closely related to animals/insects than other fungal species. The molecular docking studies of these proteins with cholesterol and other derivatives indicate lipid-binding functional conservation across the animal and fungi kingdom. Further, the full length CDS of one of the npc2 like genes from Puccinia triticina (Pt5643) was PCR amplified and further characterized using various studies such as qRT-PCR, expression in onion epidermal cells, Nicotiana benthamiana for subcellular localization studies, yeast functional complementation, and expression studies. The mRNA abundance of Pt5643 was observed to be increased along with the infection progression and exhibits the highest expression at 5thday post-infection (dpi), suggesting its important role in the P. triticina infection cycle in wheat. The fluorescent confocal microscopy of transiently expressed YFP tagged Pt5643 in onion epidermal cells and N. benthamiana shows its location in cytoplasm and nucleus, indicating its involvement in the manipulation of host genes. The functional complementation of Pt5643 in npc2 mutant yeast showed its functional similarity to the eukaryotic npc2 gene. Further, the overexpression of Pt5643 also suppressed the BAX and H2O2 induced program cell death in N. benthamiana and yeast, respectively thus proving to be a novel horizontally transferred effector in rust fungal pathogens. Altogether the present study reports the novel function of fungal NPC2 like proteins playing a crucial role in host defense manipulation possibly through lipid binding/transport similar to animals.

microbiology↗