DOI QR코드

DOI QR Code

Negative evidence on the transgenerational inheritance of defense priming in Arabidopsis thaliana

  • Yun, Se-Hun (School of Biological Sciences, Seoul National University) ;
  • Noh, Bosl (Research Institute of Basic Sciences, Seoul National University) ;
  • Noh, Yoo-Sun (School of Biological Sciences, Seoul National University)
  • 투고 : 2022.01.12
  • 심사 : 2022.03.15
  • 발행 : 2022.07.31

초록

Defense priming allows plants to enhance their immune responses to subsequent pathogen challenges. Recent reports suggested that acquired resistances in parental generation can be inherited into descendants. Although epigenetic mechanisms are plausible tools enabling the transmission of information or phenotypic traits induced by environmental cues across generations, the mechanism for the transgenerational inheritance of defense priming in plants has yet to be elucidated. With the initial aim to elucidate an epigenetic mechanism for the defense priming in plants, we reassessed the transgenerational inheritance of plant defense, however, could not observe any evidence supporting it. By using the same dipping method with previous reports, Arabidopsis was exposed repeatedly to Pseudomonas syringae pv tomato DC3000 (Pst DC3000) during vegetative or reproductive stages. Irrespective of the developmental stages of parental plants that received pathogen infection, the descendants did not exhibit primed resistance phenotypes, defense marker gene (PR1) expression, or elevated histone acetylation within PR1 chromatin. In assays using the pressure-infiltration method for infection, we obtained the same results as above. Thus, our results suggest that the previous observations on the transgenerational inheritance of defense priming in plants should be more extensively and carefully reassessed.

키워드

과제정보

This work was supported by grants from the National Research Foundation of Korea [NRF- 2021R1A2C1012064 and NRF-2021R1A5A1032428 to Y.-S.N. and NRF-2020R1A2C2008109 to B.N.]. S.-H.Y. was partially supported by the Stadelmann-Lee Scholarship Fund of Seoul National University.

참고문헌

  1. D'Urso A and Brickner JH (2014) Mechanisms of epigenetic memory. Trends Genet 30, 230-236 https://doi.org/10.1016/j.tig.2014.04.004
  2. Heard E and Martienssen RA (2014) Transgenerational epigenetic inheritance: myths and mechanisms. Cell 157, 95-109 https://doi.org/10.1016/j.cell.2014.02.045
  3. Macho AP and Zipfel C (2014) Plant PRRs and the activation of innate immune signaling. Mol Cell 54, 263-272 https://doi.org/10.1016/j.molcel.2014.03.028
  4. Pieterse CM, Leon-Reyes A, Van der Ent S and Van Wees SC (2009) Networking by small-molecule hormones in plant immunity. Nat Chem Biol 5, 308-316 https://doi.org/10.1038/nchembio.164
  5. Kourelis J and van der Hoorn RAL (2018) Defended to the nines: 25 years of resistance gene cloning identifies nine mechanisms for R protein function. Plant Cell 30, 285-299 https://doi.org/10.1105/tpc.17.00579
  6. Singh P, Yekondi S, Chen PW et al (2014) Environmental history modulates Arabidopsis pattern-triggered immunity in a histone acetyl transferase1-dependent manner. Plant Cell 26, 2676-2688 https://doi.org/10.1105/tpc.114.123356
  7. Slaughter A, Daniel X, Flors V, Luna E, Hohn B and Mauch-Mani B (2012) Descendants of primed Arabidopsis plants exhibit resistance to biotic stress. Plant Physiol 158, 835-843 https://doi.org/10.1104/pp.111.191593
  8. Luna E, Bruce TJ, Roberts MR, Flors V and Ton J (2012) Next-generation systemic acquired resistance. Plant Physiol 158, 844-853 https://doi.org/10.1104/pp.111.187468
  9. Rasmann S, Vos MD, Casteel CL et al (2012) Herbivory in the previous generation primes plants for enhanced insect resistance. Plant Physiol 158, 854-863 https://doi.org/10.1104/pp.111.187831
  10. Lopez Sanchez A, Stassen JH, Furci L, Smith LM and Ton J (2016) The role of DNA (de)methylation in immune responsiveness of Arabidopsis. Plant J 88, 361-374 https://doi.org/10.1111/tpj.13252
  11. Conrath U, Beckers GJ, Langenbach CJ and Jaskiewicz MR (2015) Priming for enhanced defense. Annu Rev Phytopathol 53, 97-119 https://doi.org/10.1146/annurev-phyto-080614-120132
  12. Choi SM, Song HR, Han SK et al (2012) HDA19 is required for the repression of salicylic acid biosynthesis and salicylic acid-mediated defense responses in Arabidopsis. Plant J 71, 125-146
  13. Jin H, Choi SM, Kang MJ et al (2018) Salicylic acid-induced transcriptional reprogramming by the HAC-NPR1-TGA histone acetyltransferase complex in Arabidopsis. Nucleic Acids Res 46, 11712-11725 https://doi.org/10.1093/nar/gky847
  14. Perez MF and Lehner B (2019) Intergenerational and transgenerational epigenetic inheritance in animals. Nat Cell Biol 21, 143-151 https://doi.org/10.1038/s41556-018-0242-9
  15. Xin XF, Nomura K, Aung K et al (2016) Bacteria establish an aqueous living space in plants crucial for virulence. Nature 539, 524-529 https://doi.org/10.1038/nature20166
  16. Stassen JHM, Lopez A, Jain R et al (2018) The relationship between transgenerational acquired resistance and global DNA methylation in Arabidopsis. Sci Rep 8, 14761 https://doi.org/10.1038/s41598-018-32448-5
  17. Katagiri F, Thilmony R, He SY (2002) The Arabidopsis thaliana-pseudomonas syringae interaction. Arabidopsis Book 1, e0039 https://doi.org/10.1199/tab.0039
  18. Song SK, Jang HU, Kim YH et al (2020) Overexpression of three related root-cap outermost-cell-specific C2H2-type zinc-finger protein genes suppresses the growth of Arabidopsis in an EAR-motif-dependent manner. BMB Rep 53, 160-165 https://doi.org/10.5483/BMBRep.2020.53.3.286
  19. Livak KJ and Schmittgen TD (2001) Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method. Methods 25, 402-408 https://doi.org/10.1006/meth.2001.1262