Search bioRxiv⌕ Search

Biology subjects

Han, C.-G.

Publications and source records attributed to Han, C.-G..

3 recordsLinked to original sources

The triose phosphate/phosphate translocator exports photosynthetic glyceraldehyde 3-phosphate from chloroplasts to trigger antimicrobial immunity in plants.

Chloroplasts play a crucial role in plant immunity against invading microbes. However, it remains poorly understood whether photosynthetic metabolites from chloroplasts participate directly in host defenses. Here, we uncovered Arabidopsis thalinana triose phosphate/phosphate translocator (AtTPT), a known translocator for chloroplast inner membrane, plays an indispensable role in suppressing virus infection and evoking defense responses. Interestingly, overexpression of AtTPT impairs virus accumulation in plants, while loss-of-function tpt3 mutants exhibit an increased viral load. The antiviral activity of AtTPT requires its phosphate transport capacity, implying that it actually functions through its metabolite(s). To this end, we found that glyceraldehyde 3-phosphate (GAP), one of AtTPTs translocated metabolites, can drastically enhance expression of defense-related genes and prominently induce defense signaling pathways. More excitingly, AtTPT or GAP robustly restricts the proliferation of multiple types of phytopathogens. Collectively, we propose that AtTPT exports GAP to mediate broad-spectrum resistance to pathogens, which provides new insights into the mechanism underlying the chloroplast-mediated immunity by a photosynthetic metabolite.

plant biology↗

The P2 protein of wheat yellow mosaic virus acts as a VSR to facilitate virus infection in wheat plants

Wheat yellow mosaic virus (WYMV) causes severe viral wheat disease in Asia. The WYMV P1 protein encoded by RNA2 has viral suppressor of RNA silencing (VSR) activity to facilitate virus infection; however, VSR activity has not been identified for P2 protein encoded by RNA2. In this study, P2 protein exhibited strong VSR activity in Nicotiana benthamiana at the four-leaf stage, and point mutants P70A and G230A lost VSR activity. Protein P2 interacted with calmodulin (CaM) protein, a gene-silencing associated protein, while point mutants P70A and G230A did not interact with it. Competitive bimolecular fluorescence complementation and competitive co-immunoprecipitation experiments showed that P2 interfered with the interaction between CaM and calmodulin-binding transcription activator 3 (CAMTA3), but the point mutants P70A and G230A could not. Mechanical inoculation of wheat with in vitro transcripts of WYMV infectious cDNA clone further confirmed that VSR-deficient mutants P70A and G230A decreased WYMV infection in wheat plants compared with the wild type. In addition, RNA silencing, temperature, and autophagy had significant effects on accumulation of P2 protein in N. benthamiana leaves. In conclusion, WYMV P2 plays a VSR role in wheat and promotes virus infection by interfering with calmodulin-related antiviral RNAi defense. One-sentence summaryWYMV P2 protein exerts VSR activity by interfering with the CaM-CAMTA3 interaction to facilitate virus efficient systemic infection in wheat plants.

plant biology↗

Barley stripe mosaic virus γb protein targets thioredoxin h-type 1 to dampen SA-mediated antiviral defenses

Salicylic acid (SA) acts as a signaling molecule to perceive and defend against pathogen infections. Accordingly, pathogens evolve versatile strategies to disrupt the SA-mediated signal transduction. However, it is necessary to further characterize how plant viruses manipulate the SA-dependent defense responses. Here, we show that Barley stripe mosaic virus (BSMV) infection activates SA-mediated defense signaling pathway and upregulates the expression of Nicotiana benthamiana thioredoxin h-type 1 (NbTRXh1). The {gamma}b protein interacts directly with NbTRXh1 in vivo and in vitro. Overexpression of NbTRXh1, but not a reductase-defective mutant, impedes BSMV infection, whereas low NbTRXh1 expression level results in increased viral accumulation. Similar with its orthologues in Arabidopsis, NbTRXh1 also plays an essential role in SA signaling transduction in N. benthamiana. To counteract NbTRXh1-mediated defenses, the BSMV {gamma}b protein targets NbTRXh1 to dampen its reductase activity and thereby impairing downstream SA defense genes expression to optimize viral cell-to-cell movement. We also found that NbTRXh1-mediated resistance defends against Lychnis ringspot virus, Beet black scorch virus, and Beet necrotic yellow vein virus. Taken together, our results reveal a novel role for the multifunctional {gamma}b protein in counteracting plant defense responses, and broadens the broad-spectrum antibiotic role of SA signaling pathway. One sentence summaryBSMV {gamma}b protein impairs NbTRXh1 reductase activity and dampen downstream SA-related genes expression to facilitate viral cell-to-cell movement.

microbiology↗