Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment
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Tolin, SerenaArrigoni, Giorgio

Trentin, Anna Rita
Veljović-Jovanović, Sonja

Pivato, Micaela
Zechmann, Bernd

Masi, Antonio

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The existence of a gamma-glutamyl cycle consisting of intracellular GSH synthesis, extrusion to the apoplastic space and recovery by gamma-glutamyl transferase (GGT)-assisted degradation into its constituent amino acids, has been demonstrated in plants. To address the significance of this cycle in plant cells, we performed integrated biochemical, immunocytochemical, and quantitative proteomics analyses in the Arabidopsis thaliana ggt1 knockout mutant (lacking apoplastic GGT1 isoform) and its corresponding wild-type (WT). The ggt1 knockout leaves exhibited an increased ascorbate and GSH content, increased apoplastic GSH content, and enhanced protein carbonylations in the low-molecular weight range compared to WT. The combined iTRAQ and LC-MS/MS-based quantitative proteomics approach identified 70 proteins (out of 1013 identified proteins) whose abundance was significantly different in leaves of ggt1 mutant compared to WT, with a fold change 1.5. Mining of the proteome data for GSH-assoc...iated genes showed that disruption of gamma-glutamyl cycle in ggt1 knockout-leaves was associated with the induction of genes encoding four GSTs in the phi class (GSTF2, GSTF6, GSTF9, and GSTF10), a GSH peroxidase (GPX1), and glyoxylase II. Proteins with a lower abundance compared to the WT are involved in chloroplast functions, carbohydrate/maltose metabolism, and vegetative storage protein synthesis. Present findings suggest that GGT1 plays a role in redox signaling. The disruption of the gamma-glutamyl cycle in the ggt1 mutant results in pleiotropic effects related to biotic and abiotic stress response, antioxidant metabolism, senescence, carbohydrate metabolism, and photosynthesis, with strong implications for plant adaptation to the environment.
Keywords:
Plant proteomics / Oxidative stress / Glutathione / Gamma-glutamyl cycle / Differential proteomics / AntioxidantsSource:
Proteomics, 2013, 13, 12-13, 2031-2045Publisher:
- Wiley, Hoboken
Funding / projects:
- Cassa di Risparmio di Padova e Rovigo (Cariparo)Fondazione Cariparo
- MURSTMinistry of Education, Universities and Research (MIUR)
- Austrian Science FundAustrian Science Fund (FWF) [FWF P22988]
- University of Padova [CPDA082784/08]
- Austrian Science Fund (FWF)Austrian Science Fund (FWF) [P 22988] Funding Source: researchfish
DOI: 10.1002/pmic.201200479
ISSN: 1615-9853
PubMed: 23661340
WoS: 000327008000019
Scopus: 2-s2.0-84880107945
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Institut za multidisciplinarna istraživanjaTY - JOUR AU - Tolin, Serena AU - Arrigoni, Giorgio AU - Trentin, Anna Rita AU - Veljović-Jovanović, Sonja AU - Pivato, Micaela AU - Zechmann, Bernd AU - Masi, Antonio PY - 2013 UR - http://rimsi.imsi.bg.ac.rs/handle/123456789/679 AB - The existence of a gamma-glutamyl cycle consisting of intracellular GSH synthesis, extrusion to the apoplastic space and recovery by gamma-glutamyl transferase (GGT)-assisted degradation into its constituent amino acids, has been demonstrated in plants. To address the significance of this cycle in plant cells, we performed integrated biochemical, immunocytochemical, and quantitative proteomics analyses in the Arabidopsis thaliana ggt1 knockout mutant (lacking apoplastic GGT1 isoform) and its corresponding wild-type (WT). The ggt1 knockout leaves exhibited an increased ascorbate and GSH content, increased apoplastic GSH content, and enhanced protein carbonylations in the low-molecular weight range compared to WT. The combined iTRAQ and LC-MS/MS-based quantitative proteomics approach identified 70 proteins (out of 1013 identified proteins) whose abundance was significantly different in leaves of ggt1 mutant compared to WT, with a fold change 1.5. Mining of the proteome data for GSH-associated genes showed that disruption of gamma-glutamyl cycle in ggt1 knockout-leaves was associated with the induction of genes encoding four GSTs in the phi class (GSTF2, GSTF6, GSTF9, and GSTF10), a GSH peroxidase (GPX1), and glyoxylase II. Proteins with a lower abundance compared to the WT are involved in chloroplast functions, carbohydrate/maltose metabolism, and vegetative storage protein synthesis. Present findings suggest that GGT1 plays a role in redox signaling. The disruption of the gamma-glutamyl cycle in the ggt1 mutant results in pleiotropic effects related to biotic and abiotic stress response, antioxidant metabolism, senescence, carbohydrate metabolism, and photosynthesis, with strong implications for plant adaptation to the environment. PB - Wiley, Hoboken T2 - Proteomics T1 - Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment EP - 2045 IS - 12-13 SP - 2031 VL - 13 DO - 10.1002/pmic.201200479 ER -
@article{ author = "Tolin, Serena and Arrigoni, Giorgio and Trentin, Anna Rita and Veljović-Jovanović, Sonja and Pivato, Micaela and Zechmann, Bernd and Masi, Antonio", year = "2013", abstract = "The existence of a gamma-glutamyl cycle consisting of intracellular GSH synthesis, extrusion to the apoplastic space and recovery by gamma-glutamyl transferase (GGT)-assisted degradation into its constituent amino acids, has been demonstrated in plants. To address the significance of this cycle in plant cells, we performed integrated biochemical, immunocytochemical, and quantitative proteomics analyses in the Arabidopsis thaliana ggt1 knockout mutant (lacking apoplastic GGT1 isoform) and its corresponding wild-type (WT). The ggt1 knockout leaves exhibited an increased ascorbate and GSH content, increased apoplastic GSH content, and enhanced protein carbonylations in the low-molecular weight range compared to WT. The combined iTRAQ and LC-MS/MS-based quantitative proteomics approach identified 70 proteins (out of 1013 identified proteins) whose abundance was significantly different in leaves of ggt1 mutant compared to WT, with a fold change 1.5. Mining of the proteome data for GSH-associated genes showed that disruption of gamma-glutamyl cycle in ggt1 knockout-leaves was associated with the induction of genes encoding four GSTs in the phi class (GSTF2, GSTF6, GSTF9, and GSTF10), a GSH peroxidase (GPX1), and glyoxylase II. Proteins with a lower abundance compared to the WT are involved in chloroplast functions, carbohydrate/maltose metabolism, and vegetative storage protein synthesis. Present findings suggest that GGT1 plays a role in redox signaling. The disruption of the gamma-glutamyl cycle in the ggt1 mutant results in pleiotropic effects related to biotic and abiotic stress response, antioxidant metabolism, senescence, carbohydrate metabolism, and photosynthesis, with strong implications for plant adaptation to the environment.", publisher = "Wiley, Hoboken", journal = "Proteomics", title = "Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment", pages = "2045-2031", number = "12-13", volume = "13", doi = "10.1002/pmic.201200479" }
Tolin, S., Arrigoni, G., Trentin, A. R., Veljović-Jovanović, S., Pivato, M., Zechmann, B.,& Masi, A.. (2013). Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment. in Proteomics Wiley, Hoboken., 13(12-13), 2031-2045. https://doi.org/10.1002/pmic.201200479
Tolin S, Arrigoni G, Trentin AR, Veljović-Jovanović S, Pivato M, Zechmann B, Masi A. Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment. in Proteomics. 2013;13(12-13):2031-2045. doi:10.1002/pmic.201200479 .
Tolin, Serena, Arrigoni, Giorgio, Trentin, Anna Rita, Veljović-Jovanović, Sonja, Pivato, Micaela, Zechmann, Bernd, Masi, Antonio, "Biochemical and quantitative proteomics investigations in Arabidopsis ggt1 mutant leaves reveal a role for the gamma-glutamyl cycle in plant's adaptation to environment" in Proteomics, 13, no. 12-13 (2013):2031-2045, https://doi.org/10.1002/pmic.201200479 . .