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Sulphur deprivation limits Fe-deficiency responses in tomato plants.
- Source :
-
Planta [Planta] 2009 Jun; Vol. 230 (1), pp. 85-94. Date of Electronic Publication: 2009 Apr 07. - Publication Year :
- 2009
-
Abstract
- The aim of this work was to clarify the role of S supply in the development of the response to Fe depletion in Strategy I plants. In S-sufficient plants, Fe-deficiency caused an increase in the Fe(III)-chelate reductase activity, 59Fe uptake rate and ethylene production at root level. This response was associated with increased expression of LeFRO1 [Fe(III)-chelate reductase] and LeIRT1 (Fe2+ transporter) genes. Instead, when S-deficient plants were transferred to a Fe-free solution, no induction of Fe(III)-chelate reductase activity and ethylene production was observed. The same held true for LeFRO1 gene expression, while the increase in 59Fe2+ uptake rate and LeIRT1 gene over-expression were limited. Sulphur deficiency caused a decrease in total sulphur and thiol content; a concomitant increase in 35SO4(2-) uptake rate was observed, this behaviour being particularly evident in Fe-deficient plants. Sulphur deficiency also virtually abolished expression of the nicotianamine synthase gene (LeNAS), independently of the Fe growth conditions. Sulphur deficiency alone also caused a decrease in Fe content in tomato leaves and an increase in root ethylene production; however, these events were not associated with either increased Fe(III)-chelate reductase activity, higher rates of 59Fe uptake or over-expression of either LeFRO1 or LeIRT1 genes. Results show that S deficiency could limit the capacity of tomato plants to cope with Fe-shortage by preventing the induction of the Fe(III)-chelate reductase and limiting the activity and expression of the Fe2+ transporter. Furthermore, the results support the idea that ethylene alone cannot trigger specific Fe-deficiency physiological responses in a Strategy I plant, such as tomato.
- Subjects :
- Calcium metabolism
Cation Transport Proteins genetics
Ethylenes metabolism
FMN Reductase genetics
Gene Expression Regulation, Developmental
Gene Expression Regulation, Plant
Ion Transport
Iron Radioisotopes metabolism
Solanum lycopersicum genetics
Solanum lycopersicum growth & development
Magnesium metabolism
Plant Leaves genetics
Plant Leaves growth & development
Plant Leaves metabolism
Plant Proteins genetics
Plant Roots genetics
Plant Roots growth & development
Plant Roots metabolism
Potassium metabolism
Reverse Transcriptase Polymerase Chain Reaction
Sodium metabolism
Sulfates metabolism
Sulfhydryl Compounds metabolism
Sulfur Radioisotopes metabolism
Iron metabolism
Solanum lycopersicum metabolism
Sulfur metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1432-2048
- Volume :
- 230
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- Planta
- Publication Type :
- Academic Journal
- Accession number :
- 19350269
- Full Text :
- https://doi.org/10.1007/s00425-009-0919-1