» Articles » PMID: 1820820

Salicylic Acid is a Systemic Signal and an Inducer of Pathogenesis-related Proteins in Virus-infected Tobacco

Overview
Journal Plant Cell
Specialties Biology
Cell Biology
Date 1991 Aug 1
PMID 1820820
Citations 129
Authors
Affiliations
Soon will be listed here.
Abstract

Systemic induction of pathogenesis-related (PR) proteins in tobacco, which occurs during the hypersensitive response to tobacco mosaic virus (TMV), may be caused by a minimum 10-fold systemic increase in endogenous levels of salicylic acid (SA). This rise in SA parallels PR-1 protein induction and occurs in TMV-resistant Xanthi-nc tobacco carrying the N gene, but not in TMV-susceptible (nn) tobacco. By feeding SA to excised leaves of Xanthi-nc (NN) tobacco, we have shown that the observed increase in endogenous SA levels is sufficient for the systemic induction of PR-1 proteins. TMV infection became systemic and Xanthi-nc plants failed to accumulate PR-1 proteins at 32 degrees C. This loss of hypersensitive response at high temperature was associated with an inability to accumulate SA. However, spraying leaves with SA induced PR-1 proteins at both 24 and 32 degrees C. SA is most likely exported from the primary site of infection to the uninfected tissues. A computer model predicts that SA should move rapidly in phloem. When leaves of Xanthi-nc tobacco were excised 24 hr after TMV inoculation and exudates from the cut petioles were collected, the increase in endogenous SA in TMV-inoculated leaves paralleled SA levels in exudates. Exudation and leaf accumulation of SA were proportional to TMV concentration and were higher in light than in darkness. Different components of TMV were compared for their ability to induce SA accumulation and exudation: three different aggregation states of coat protein failed to induce SA, but unencapsidated viral RNA elicited SA accumulation in leaves and phloem. These results further support the hypothesis that SA acts as an endogenous signal that triggers local and systemic induction of PR-1 proteins and, possibly, some components of systemic acquired resistance in NN tobacco.

Citing Articles

Genome-wide identification of NDR1/HIN1-like genes in kiwifruit and function analysis of AeNHL17 in response to disease resistance.

Zhang M, Fu R, Lin M, Fang J, Wang R, Li Y BMC Plant Biol. 2024; 24(1):1184.

PMID: 39695371 PMC: 11654341. DOI: 10.1186/s12870-024-05936-2.


infection aggravates gray mold disease caused by by manipulating the salicylic acid pathway in tomato.

Gupta R, Leibman-Markus M, Weiss D, Spiegelman Z, Bar M Front Plant Sci. 2023; 14:1196456.

PMID: 37377809 PMC: 10291333. DOI: 10.3389/fpls.2023.1196456.


Salicylic Acid and Mobile Regulators of Systemic Immunity in Plants: Transport and Metabolism.

Kim T, Lim G Plants (Basel). 2023; 12(5).

PMID: 36903874 PMC: 10005269. DOI: 10.3390/plants12051013.


Shared and Related Molecular Targets and Actions of Salicylic Acid in Plants and Humans.

Ding Y, Fan B, Zhu C, Chen Z Cells. 2023; 12(2).

PMID: 36672154 PMC: 9856608. DOI: 10.3390/cells12020219.


A Panoramic View on Grapevine Trunk Diseases Threats: Case of Eutypa Dieback, Botryosphaeria Dieback, and Esca Disease.

Kenfaoui J, Radouane N, Mennani M, Tahiri A, El Ghadraoui L, Belabess Z J Fungi (Basel). 2022; 8(6).

PMID: 35736078 PMC: 9224927. DOI: 10.3390/jof8060595.


References
1.
Raskin I, Ehmann A, Melander W, Meeuse B . Salicylic Acid: a natural inducer of heat production in arum lilies. Science. 1987; 237(4822):1601-2. DOI: 10.1126/science.237.4822.1601. View

2.
Legrand M, Kauffmann S, Geoffroy P, Fritig B . Biological function of pathogenesis-related proteins: Four tobacco pathogenesis-related proteins are chitinases. Proc Natl Acad Sci U S A. 1987; 84(19):6750-4. PMC: 299162. DOI: 10.1073/pnas.84.19.6750. View

3.
Raskin I, Turner I, Melander W . Regulation of heat production in the inflorescences of an Arum lily by endogenous salicylic acid. Proc Natl Acad Sci U S A. 1989; 86(7):2214-8. PMC: 286882. DOI: 10.1073/pnas.86.7.2214. View

4.
Kleier D . Phloem mobility of xenobiotics: I. Mathematical model unifying the weak Acid and intermediate permeability theories. Plant Physiol. 1988; 86(3):803-10. PMC: 1054574. DOI: 10.1104/pp.86.3.803. View

5.
Weibull J, Ronquist F, Brishammar S . Free amino Acid composition of leaf exudates and Phloem sap : a comparative study in oats and barley. Plant Physiol. 1990; 92(1):222-6. PMC: 1062273. DOI: 10.1104/pp.92.1.222. View