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Daloso, D. M.

Publications and source records attributed to Daloso, D. M..

2 recordsLinked to original sources

Distinct metabolic flux modes through the tricarboxylic acid cycle in mesophyll and guard cells revealed by GC-MS-based 13C-positional isotopomer analysis

O_LI13C-Metabolic flux analysis (13C-MFA) have greatly contributed to revealing the regulation of plant metabolism. However, mass spectrometry (MS) approaches have hitherto been limited in their power to deduce flux information due to lack of positional information. C_LIO_LIHere we established an MS-based 13C-positional isotopomer labelling approach and performed a multi-species/cell-types analysis based on previous 13C-MFA to compare flux modes through the tricarboxylic acid (TCA) cycle and associated pathways in mesophyll (MCs) and guard cells (GCs). C_LIO_LIBoth cell types showed high 13C-enrichment in pyruvate. However, GCs and sink MCs, but not source MCs showed high 13C-incorporation into Glu/Gln following provision of 13C-sucrose. Only GCs showed higher 13C-enrichment in the carbon 1 atom of Gln, which is derived from PEPc-mediated CO2 fixation. Increased 13C-enrichment in the carbon 1 of Glu was also observed in both trxo1 and ntra ntrb mutants, but not in wild type Arabidopsis plants, following provision of 13C-glucose. C_LIO_LIOur results suggest that the mitochondrial thioredoxin system restricts the fluxes from PEPc and glycolysis to Glu in illuminated MCs and reveal that fluxes throughout the TCA cycle of GCs resemble those of sink MCs but operate different non-cyclic flux modes to support Gln synthesis in the light. C_LI

plant biology

Mild reductions in guard cell sucrose synthase 2 expression leads to slower stomatal opening and decreased whole plant transpiration in tobacco

The understanding of the dynamics of stomatal movements has increased substantially through genetic manipulation of plant metabolism either at the whole plant level or specifically in guard cells. However, the regulation of stomatal speediness remains not completely elucidated. Here we shown that reduced expression of guard cell sucrose synthase 2 (NtSUS2) of Nicotiana tabacum L. altered the topology and the connectivity of the guard cell metabolic network and the accumulation of metabolites positively correlated with stomatal speediness during dark-to-light transition. This leads to a slower light-induced stomatal opening, lower steady-state stomatal conductance and a strong reduction (up to 44%) in daily whole plant transpiration in the transgenics, when compared to wild type plants. Furthermore, the transgenic lines transpired more or have lower reduction in whole plant transpiration under short water deficit periods, indicating a higher effective use of water under this condition. Our results collectively suggest that the regulation of stomatal movement and speediness involve a complex modulation of the guard cell metabolic network, in which NtSUS2 has an important role. The results are discussed on the role of guard cell metabolism for the regulation of both stomatal speediness and whole plant transpiration.

plant biology