» Articles » PMID: 28413359

Disulfide Proteomics of Rice Cultured Cells in Response to OsRacl and Probenazole-related Immune Signaling Pathway in Rice

Overview
Journal Proteome Sci
Publisher Biomed Central
Date 2017 Apr 18
PMID 28413359
Citations 1
Authors
Affiliations
Soon will be listed here.
Abstract

Background: Reactive oxygen species (ROS) production is an early event in the immune response of plants. ROS production affects the redox-based modification of cysteine residues in redox proteins, which contribute to protein functions such as enzymatic activity, protein-protein interactions, oligomerization, and intracellular localization. Thus, the sensitivity of cysteine residues to changes in the cellular redox status is critical to the immune response of plants.

Methods: We used disulfide proteomics to identify immune response-related redox proteins. Total protein was extracted from rice cultured cells expressing constitutively active or dominant-negative OsRacl, which is a key regulator of the immune response in rice, and from rice cultured cells that were treated with probenazole, which is an activator of the plant immune response, in the presence of the thiol group-specific fluorescent probe monobromobimane (mBBr), which was a tag for reduced proteins in a differential display two-dimensional gel electrophoresis. The mBBr fluorescence was detected by using a charge-coupled device system, and total protein spots were detected using Coomassie brilliant blue staining. Both of the protein spots were analyzed by gel image software and identified using MS spectrometry. The possible disulfide bonds were identified using the disulfide bond prediction software. Subcellular localization and bimolecular fluorescence complementation analysis were performed in one of the identified proteins: cold shock protein 2 (OsCSP2).

Results: We identified seven proteins carrying potential redox-sensitive cysteine residues. Two proteins of them were oxidized in cultured cells expressing DN-OsRac1, which indicates that these two proteins would be inactivated through the inhibition of OsRac1 signaling pathway. One of the two oxidized proteins, OsCSP2, contains 197 amino acid residues and six cysteine residues. Site-directed mutagenesis of these cysteine residues revealed that a Cys mutation causes mislocalization of a green fluorescent protein fusion protein in the root cells of rice. Bimolecular fluorescence complementation analysis revealed that OsCSP2 is localized in the nucleus as a homo dimer in rice root cells.

Conclusions: The findings of the study indicate that redox-sensitive cysteine modification would contribute to the immune response in rice.

Citing Articles

Regulation and Functions of ROP GTPases in Plant-Microbe Interactions.

Engelhardt S, Trutzenberg A, Huckelhoven R Cells. 2020; 9(9).

PMID: 32887298 PMC: 7565977. DOI: 10.3390/cells9092016.

References
1.
Chang Q, Petrash J . Disruption of aldo-keto reductase genes leads to elevated markers of oxidative stress and inositol auxotrophy in Saccharomyces cerevisiae. Biochim Biophys Acta. 2007; 1783(2):237-45. PMC: 2254213. DOI: 10.1016/j.bbamcr.2007.08.008. View

2.
Akter S, Huang J, Waszczak C, Jacques S, Gevaert K, Van Breusegem F . Cysteines under ROS attack in plants: a proteomics view. J Exp Bot. 2015; 66(10):2935-44. DOI: 10.1093/jxb/erv044. View

3.
Zhang C, Zhao B, Ge W, Zhang Y, Song Y, Sun D . An apoplastic h-type thioredoxin is involved in the stress response through regulation of the apoplastic reactive oxygen species in rice. Plant Physiol. 2011; 157(4):1884-99. PMC: 3327207. DOI: 10.1104/pp.111.182808. View

4.
Yano H, Kuroda S, Buchanan B . Disulfide proteome in the analysis of protein function and structure. Proteomics. 2002; 2(9):1090-6. DOI: 10.1002/1615-9861(200209)2:9<1090::AID-PROT1090>3.0.CO;2-1. View

5.
Fukuoka H, Ogawa T, Mitsuhara I, Iwai T, Isuzugawa K, Nishizawa Y . Agrobacterium-mediated transformation of monocot and dicot plants using the NCR promoter derived from soybean chlorotic mottle virus. Plant Cell Rep. 2019; 19(8):815-820. DOI: 10.1007/s002990000191. View