A detached petal disc assay and virus-induced gene silencing facilitate the study of Botrytis cinerea resistance in rose flowers

Xiaoqian Cao , Huijun Yan , Xintong Liu , Dandan Li , Mengjie Sui , Jie Wu , Hongqiang Yu , Zhao Zhang

Horticulture Research ›› 2019, Vol. 6 ›› Issue (1) : 136

PDF (3956KB)
Horticulture Research ›› 2019, Vol. 6 ›› Issue (1) :136 DOI: 10.1038/s41438-019-0219-2
Article
research-article
A detached petal disc assay and virus-induced gene silencing facilitate the study of Botrytis cinerea resistance in rose flowers
Author information +
History +
PDF (3956KB)

Abstract

Fresh-cut roses (Rosa hybrida) are one of the most important ornamental crops worldwide, with annual trade in the billions of dollars. Gray mold disease caused by the pathogen Botrytis cinerea is the most serious fungal threat to cut roses, causing extensive postharvest losses. In this study, we optimized a detached petal disc assay (DPDA) for artificial B. cinerea inoculation and quantification of disease symptoms in rose petals. Furthermore, as the identification of rose genes involved in B. cinerea resistance could provide useful genetic and genomic resources, we devised a virus-induced gene silencing (VIGS) procedure for the functional analysis of B. cinerea resistance genes in rose petals. We used RhPR10.1 as a reporter of silencing efficiency and found that the rose cultivar ‘Samantha’ showed the greatest decrease in RhPR10.1 expression among the cultivars tested. To determine whether jasmonic acid and ethylene are required for B. cinerea resistance in rose petals, we used VIGS to silence the expression of RhLOX5 and RhEIN3 (encoding a jasmonic acid biosynthesis pathway protein and an ethylene regulatory protein, respectively) and found that petal susceptibility to B. cinerea was affected. Finally, a VIGS screen of B. cinerea-induced rose transcription factors demonstrated the potential benefits of this method for the high-throughput identification of gene function in B. cinerea resistance. Collectively, our data show that the combination of the DPDA and VIGS is a reliable and high-throughput method for studying B. cinerea resistance in rose.

Cite this article

Download citation ▾
Xiaoqian Cao, Huijun Yan, Xintong Liu, Dandan Li, Mengjie Sui, Jie Wu, Hongqiang Yu, Zhao Zhang. A detached petal disc assay and virus-induced gene silencing facilitate the study of Botrytis cinerea resistance in rose flowers. Horticulture Research, 2019, 6 (1) : 136 DOI:10.1038/s41438-019-0219-2

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Qi, W. et al. Genomic and transcriptomic sequencing of Rosa hybrida provides microsatellite markers for breeding, flower trait improvement and taxonomy studies. BMC Plant Biol. 18, 119 (2018).

[2]

Liu, X. et al. Comparative RNA-Seq analysis reveals a critical role for brassinosteroids in rose (Rosa hybrida) petal defense against Botrytis cinerea infection. BMC Genet. 19, 62 (2018).

[3]

Williamson, B., Tudzynski, B., Tudzynski, P. & van Kan, J. A. Botrytis cinerea: the cause of grey mould disease. Mol. Plant Pathol. 8, 561-580 (2007).

[4]

Hao, Y. et al. Potential applications and antifungal activities of engineered nanomaterials against gray mold disease agent Botrytis cinerea on rose petals. Front. Plant Sci. 8, 1332 (2017).

[5]

Williamson, B. et al. Effect of humidity on infection of rose petals by dry-inoculated conidia of Botrytis cinerea. Mycol. Res. 99, 1303-1310 (1995).

[6]

Fu, Y. et al. Genetic mapping and QTL analysis of Botrytis resistance in Gerbera hybrida. Mol. Breed. 37, 13 (2017).

[7]

Elad, Y. Latent infection of Botrytis cinerea in rose flowers and combined chemical and physiological control of the disease. Crop Prot. 7, 361-366 (1988).

[8]

Lu, P. et al. RhHB1 mediates the antagonism of gibberellins to ABA and ethylene during rose (Rosa hybrida) petal senescence. Plant J. 78, 578-590 (2014).

[9]

Pie, K. & Brouwer, Y. J. C. M. Susceptibility of cut rose flower cultivars to infections by different isolates of Botrytis cinerea. J. Phytopathol. 137, 233-244 (1993).

[10]

Morandi, M. A. B., Sutton, J. C. & Maffia, L. A. Effects of host and microbial factors on development of Clonostachys rosea and control of Botrytis cinerea in Rose. Eur. J. Plant Pathol. 106, 439-448 (2000).

[11]

Liu, Y. L., Schiff, M. & Dinesh-Kumar, S. P. Virus-induced gene silencing in tomato. Plant J. 31, 777-786 (2002).

[12]

Yan, H. et al. Graft-accelerated virus-induced gene silencing facilitates functional genomics in rose flowers. J. Integr. Plant Biol. 60, 34-44 (2018).

[13]

Ma, N. et al. Rh-PIP2;1, a rose aquaporin gene, is involved in ethylene-regulated petal expansion. Plant Physiol. 148, 894-907 (2008).

[14]

Zhang, Z. & Thomma, B. Virus-induced gene silencing and tumefaciens-mediated transient expression in Nicotiana tabacum. Methods Mol. Biol. 1127, 173-181 (2014).

[15]

Zhang, Z. et al. Optimized agroinfiltration and virus-induced gene silencing to study Ve1-mediated Verticillium resistance in tobacco. Mol. Plant Microbe Interact. 26, 182-190 (2013).

[16]

Wu, L. et al. An ethylene-induced regulatory module delays flower senescence by regulating cytokinin content. Plant Physiol. 173, 853-862 (2017).

[17]

Thomma, B. P., Penninckx, I. A., Broekaert, W. F. & Cammue, B. P. The complexity of disease signaling in Arabidopsis. Curr. Opin. Immunol. 13, 63-68 (2001).

[18]

AbuQamar, S., Moustafa, K. & Tran, L. P. Mechanisms and strategies of plant defense against Botrytis cinerea. Crit. Rev. Biotechnol. 37, 262-274 (2017).

[19]

Song, S. et al. Interaction between MYC2 and ETHYLENE INSENSITIVE3 modulates antagonism between jasmonate and ethylene signaling in Arabidopsis. Plant Cell. 26, 263-279 (2014).

[20]

Lu, R. et al. High throughput virus-induced gene silencing implicates heat shock protein 90 in plant disease resistance. EMBO J. 22, 5690-5699 (2003).

[21]

Wang, Y. et al. Leucine-rich repeat receptor-like gene screen reveals that Nicotiana RXEG1 regulates glycoside hydrolase 12 MAMP detection. Nat. Commun. 9, 594 (2018).

[22]

Luo, J. et al. A DELLA gene, RhGAI1, is a direct target of EIN3 and mediates ethylene-regulated rose petal cell expansion via repressing the expression of RhCesA2. J. Exp. Bot. 64, 5075-5084 (2013).

PDF (3956KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/