Model-Assisted Analysis of Sugar Metabolism throughout Tomato Fruit Development Reveals Enzyme and Carrier Properties in Relation to Vacuole Expansion

Author:

Beauvoit Bertrand P.12,Colombié Sophie1,Monier Antoine1,Andrieu Marie-Hélène1,Biais Benoit1,Bénard Camille1,Chéniclet Catherine12345,Dieuaide-Noubhani Martine12,Nazaret Christine6,Mazat Jean-Pierre27,Gibon Yves1

Affiliation:

1. INRA, UMR 1332 Biologie du Fruit et Pathology, F33883 Villenave d’Ornon Cedex, France

2. Université de Bordeaux, 146 rue Léo-Saignat, F-33076 Bordeaux Cedex, France.

3. Université de Bordeaux, Bordeaux Imaging Center, UMS 3420, F-33000 Bordeaux, France

4. CNRS, Bordeaux Imaging Center, UMS 3420, F-33000 Bordeaux, France

5. INSERM, Bordeaux Imaging Center, US 004, F-33000 Bordeaux, France

6. Institut de Mathématiques de Bordeaux, ENSTBB-Institut Polytechnique de Bordeaux, F-33600 Pessac, France

7. IBGC-CNRS, UMR 5095, 33077 Bordeaux Cedex, France

Abstract

Abstract A kinetic model combining enzyme activity measurements and subcellular compartmentation was parameterized to fit the sucrose, hexose, and glucose-6-P contents of pericarp throughout tomato (Solanum lycopersicum) fruit development. The model was further validated using independent data obtained from domesticated and wild tomato species and on transgenic lines. A hierarchical clustering analysis of the calculated fluxes and enzyme capacities together revealed stage-dependent features. Cell division was characterized by a high sucrolytic activity of the vacuole, whereas sucrose cleavage during expansion was sustained by both sucrose synthase and neutral invertase, associated with minimal futile cycling. Most importantly, a tight correlation between flux rate and enzyme capacity was found for fructokinase and PPi-dependent phosphofructokinase during cell division and for sucrose synthase, UDP-glucopyrophosphorylase, and phosphoglucomutase during expansion, thus suggesting an adaptation of enzyme abundance to metabolic needs. In contrast, for most enzymes, flux rates varied irrespectively of enzyme capacities, and most enzymes functioned at <5% of their maximal catalytic capacity. One of the major findings with the model was the high accumulation of soluble sugars within the vacuole together with organic acids, thus enabling the osmotic-driven vacuole expansion that was found during cell division.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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