K. Arumuganathan and E. E. , Estimation of nuclear DNA content of plants by flow cytometry, Plant Molecular Biology Reports, vol.9, pp.208-218, 1991.

Y. Bai and P. Lindhout, Domestication and breeding of tomatoes: what have we gained and what can we gain in the future?, Annals of Botany, vol.100, pp.1085-1094, 2007.

N. Bertin, Analysis of the tomato fruit growth response to temperature and plant fruit load in relation to cell division, cell expansion and DNA endoreduplication, Annals of Botany, vol.95, pp.439-447, 2005.
URL : https://hal.archives-ouvertes.fr/hal-02680762

N. Bertin, C. Borel, B. Brunel, C. Cheniclet, and M. Causse, Do genetic makeup and growth manipulation affect tomato fruit size by cell number, or cell size and DNA endoreduplication?, Annals of Botany, vol.92, pp.415-424, 2003.
URL : https://hal.archives-ouvertes.fr/hal-02674039

N. Bertin, H. Gautier, and C. Roche, Number of cells in tomato fruit depending on fruit position and source-sink balance during plant development, Plant Growth Regulation, vol.36, pp.105-112, 2002.
URL : https://hal.archives-ouvertes.fr/hal-02673012

N. Bertin, A. Lecomte, B. Brunel, S. Fishman, G. et al., A model describing cell polyploidization in tissues of growing fruit as related to cessation of cell proliferation, Journal of Experimental Botany, vol.58, pp.1003-1013, 2007.
URL : https://hal.archives-ouvertes.fr/hal-02666622

S. Bü-nger-kibler and F. Bangerth, Relationship between cell number, cell size and fruit size of seeded fruits of tomato (Lycopersicon esculentum Mill.), and those induced parthenocarpically by the application of plant growth regulators, Plant Growth Regulation, vol.1, pp.143-154, 1983.

M. C. Bourne, Food texture and viscosity: concept and measurement, 2002.

M. Causse, M. Buret, K. Robini, and P. Verschave, Inheritance of nutritional and sensory quality traits in fresh market tomato and relation to consumer preferences, Journal of Food Science, vol.68, pp.2342-2350, 2003.
URL : https://hal.archives-ouvertes.fr/hal-02676797

M. Causse, J. Chaïb, L. Lecomte, M. Buret, and F. Hospital, Both additivity and epistasis control the genetic variations for fruit quality traits in tomato, Theoretical and Applied Genetics, vol.115, pp.429-442, 2007.

M. Causse, P. Duffé, M. C. Gomez, M. Buret, R. Damidaux et al., A genetic map of candidate genes and QTLs involved in tomato fruit size and composition, Journal of Experimental Botany, vol.55, pp.1671-1685, 2004.
URL : https://hal.archives-ouvertes.fr/hal-02679748

M. Causse, V. Saliba-colombani, L. Lecomte, P. Duffé, P. Rousselle et al., QTL analysis of fruit quality in fresh market tomato: a few chromosome regions control the variation of sensory and instrumental traits, Journal of Experimental Botany, vol.53, pp.2089-2098, 2002.
URL : https://hal.archives-ouvertes.fr/hal-02680289

J. Chaïb, M. Devaux, M. Grotte, K. Robini, M. Causse et al., Physiological relationships among physical, sensory, and morphological attributes of texture in tomato fruits, Journal of Experimental Botany, vol.58, pp.1915-1925, 2007.

J. Chaïb, L. Lecomte, M. Buret, and M. Causse, Stability over genetic backgrounds, generations and years of quantitative trait locus (QTLs) for organoleptic quality in tomato, Theoretical and Applied Genetics, vol.112, pp.934-944, 2006.

C. Cheniclet, W. Y. Rong, M. Causse, N. Frangne, L. Bolling et al., Cell expansion and endoreduplication show a large genetic variability in pericarp and contribute strongly to tomato fruit growth, Plant Physiology, vol.139, pp.1-11, 2005.
URL : https://hal.archives-ouvertes.fr/hal-02679827

B. Cong, J. Liu, and S. D. Tanksley, Natural alleles at a tomato fruit size quantitative trait locus differ by heterochronic regulatory mutations, Proceedings of the National Academy of Sciences, USA 99, pp.13606-13611, 2002.

S. J. Coockson, A. Radziejwoski, and C. Granier, Cell and leaf size plasticity in Arabidopsis: what is the role of endoreduplication?, Plant, Cell and Environment, vol.29, pp.1273-1283, 2006.

M. A. D'aoust, S. Yelle, and B. Nguyen-quoc, Antisense inhibition of tomato fruit sucrose synthase decreases fruit setting and the sucrose unloading capacity of young fruit, The Plant Cell, vol.11, pp.2407-2418, 1999.

J. N. Davies and G. E. Hobson, The constituents of tomato fruit-the influence of environment, nutrition and genotype, Critical Reviews in Food Science and Nutrition, vol.15, pp.205-280, 1981.

A. R. Fernie, Y. Tadmor, and D. Zamir, Natural genetic variation for improving crop quality, Current Opinion in Plant Biology, vol.9, pp.196-202, 2006.

A. Frary, T. C. Nesbitt, and A. Frary, fw2.2: a quantitative traitlocus key to the evolution of tomato fruit size, Science, vol.289, pp.85-88, 2000.

E. Fridman, T. Pleban, and D. Zamir, A recombination hotspot delimits a wild-species quantitative trait locus for tomato sugar content to 484 bp within an invertase gene, Proceedings of the National Academy of Sciences, USA 97, pp.4718-4723, 2000.

E. Fridman and D. Zamir, Functional divergence of a syntenic invertase gene family in tomato, potato, and Arabidopsis, Plant Physiology, vol.131, pp.603-609, 2003.

E. Fridman, F. Carrari, Y. S. Liu, A. R. Fernie, and D. Zamir, Zooming on a quantitative trait for tomato yield using interspecific introgressions, Science, vol.305, pp.1786-1789, 2004.

L. Gomez, E. Rubio, and M. Augé, A new procedure for extraction and measurement of soluble sugars in ligneous plants, Journal of the Science of Food and Agriculture, vol.82, pp.360-369, 2002.
URL : https://hal.archives-ouvertes.fr/hal-02680723

L. Gomez, E. Rubio, and F. Lescourret, Critical study of a procedure for the assay of starch in ligneous plants, Journal of the Science of Food and Agriculture, vol.83, pp.1114-1123, 2003.
URL : https://hal.archives-ouvertes.fr/hal-02680757

S. Grandillo, H. Ku, and S. D. Tanksley, Identifying loci responsible for natural variations in fruit size and shape in tomato, Theoretical and Applied Genetics, vol.99, pp.978-987, 1999.

G. Gyllaspy, H. Ben-david, and W. Gruissem, Fruits: a developmental perspective, The Plant Cell, vol.5, pp.1439-1451, 1993.

L. C. Ho, Metabolism and compartmentation of translocates in sink organs, pp.317-324, 1986.

L. C. Ho, The mechanism of assimilate partitioning and carbohydrate compartmentation in fruit in relation to the quality and yield of tomato, Journal of Experimental Botany, vol.47, pp.1239-1243, 1996.

L. C. Ho, R. I. Grange, and A. J. Picken, An analysis of the accumulation of water and dry matter in tomato fruit, Plant, Cell and Environment, vol.10, pp.157-162, 1987.

S. Islam and S. Khan, Seasonal fluctuations of carbohydrate accumulation and metabolism of three tomato (Lycopersicon esculentum Mill.) cultivars grown at seven sowing times, Journal of Horticultural Science and Biotechnology, vol.76, pp.764-770, 2001.

A. J. Kortstee, N. Appeldoorn, M. Oortwijn, and R. Visser, Differences in regulation of carbohydrate metabolism during early fruit development between domesticated tomato and two wild relatives, Planta, vol.226, pp.929-939, 2007.

L. Lecomte, P. Duffé, M. Buret, B. Servin, F. Hospital et al., Marker-assisted introgression of 5 QTLs controlling fruit quality traits into three tomato lines revealed interactions between QTLs and genetic backgrounds, Theoretical and Applied Genetics, vol.109, pp.658-668, 2004.

D. R. Lee, Vasculature of the abscission zone of tomato fruit: implications for transport, Canadian Journal of Botany, vol.67, pp.1898-1902, 1989.

C. Lemontey, C. Mousset-dé-clas, N. Munier-jolain, and P. Boutin, Maternal genotype influences pea seed size by controlling both mitotic activity during early embryogenesis and final endoreduplication level/cotyledon cell size in mature seed, Journal of Experimental Botany, vol.51, pp.167-175, 2000.
URL : https://hal.archives-ouvertes.fr/hal-02695887

X. Li, J. Xing, T. J. Gianfagna, and H. W. Janes, Sucrose regulation of ADP-glucose pyrophosphorylase subunit genes transcript levels in leaves and fruits, Plant Science, vol.162, pp.239-244, 2002.

J. A. Lockhart, An analysis of irreversible plant cell elongation, Journal of Theoretical Biology, vol.8, pp.264-275, 1965.

J. P. Mitchell, C. Shennan, and S. R. Grattan, Developmental changes in tomato fruit composition in response to water deficit and salinity, Physiologia Plantarum, vol.83, pp.177-185, 1991.

B. Nguyen-quoc and C. H. Foyer, A role for 'futile cycles' involving invertase and sucrose synthase in sucrose metabolism of tomato fruit, Journal of Experimental Botany, vol.52, pp.881-889, 2001.

P. S. Nobel, Introduction to biophysical plant physiology, 1974.

Y. N'tchobo, N. Dali, B. Nguyen-quoc, C. H. Foyer, and S. Yelle, Starch synthesis in tomato remains constant throughout fruit development and is dependent on sucrose supply and sucrose synthase activity, Journal of Experimental Botany, vol.50, pp.1457-1463, 1999.

A. H. Paterson, E. S. Lander, J. D. Hewitt, S. Peterson, S. E. Lincoln et al., Resolution of quantitative traits into Mendelian factors, using a complete linkage map of restriction fragment length polymorphisms, Nature, vol.335, pp.721-726, 1988.

S. A. Quarrie, P. Quarrie, S. Radosevic, R. Rancic, D. Kaminska et al., Dissecting a wheat QTL for yield present in a range of environments: from the QTL to candidate genes, Journal of Experimental Botany, vol.57, pp.2627-2637, 2006.

B. Quemener, D. Bertrand, M. I. Causse, M. Lahaye, and M. , Fast data preprocessing for chromatographic fingerprints of tomato cell wall polysaccharides using chemometric methods, Journal of Chromatography A, vol.1141, pp.41-49, 2007.
URL : https://hal.archives-ouvertes.fr/hal-02663017

B. Quilot, J. Kervella, M. Gé-nard, and F. Lescourret, Analysing the genetic control of peach fruit quality through an ecophysiological model combined with a QTL approach, Journal of Experimental Botany, vol.56, pp.3083-3092, 2005.
URL : https://hal.archives-ouvertes.fr/hal-02675468

N. L. Robinson, J. D. Hewitt, and A. B. Bennett, Sink metabolism in tomato fruit 1. Developmental changes in carbohydrate metabolizing enzymes, Plant Physiology, vol.87, pp.727-730, 1988.

Y. L. Ruan and J. W. Patrick, The cellular pathway of postphloem sugar transport in developing tomato fruit, Planta, vol.196, pp.434-444, 1995.

Y. L. Ruan, J. W. Patrick, and C. Brady, Protoplast hexose carrier activity is a determinate of genotypic difference in hexose storage in tomato fruit, Plant, Cell and Environment, vol.20, pp.341-349, 1997.

V. Saliba-colombani, M. Causse, D. Langlois, J. Philouze, and M. Buret, Genetic analysis of organoleptic quality in fresh market tomato. 1. Mapping QTLs for physical and chemical traits, Theoretical and Applied Genetics, vol.102, pp.259-272, 2001.
URL : https://hal.archives-ouvertes.fr/hal-02674426

A. A. Schaffer, M. Petreikov, and D. Miron, Modification of carbohydrate content in developing tomato fruit, Hortscience, vol.34, pp.1024-1027, 1999.

A. A. Schaffer, A. Levin, I. Oguz, M. Petreikov, F. Cincarevsky et al., ADPglucose pyrophosphorylase activity and starch accumulation in immature tomato fruit: the effect of a Lycopersicon hirsutum-derived introgression encoding for the large subunit, Plant Science, vol.152, pp.135-144, 2000.

K. Sugimoto-shirasu and K. Roberts, Big it up': endoreduplication and cell-size control in plants, Current Opinion in Plant Biology, vol.6, pp.544-553, 2003.

F. Tardieu, M. Reymond, B. Muller, C. Granier, T. Simonneau et al., Linking physiological and genetic analyses of the control of leaf growth under changing environmental conditions, Australian Journal of Agricultural Research, vol.56, pp.937-946, 2005.
URL : https://hal.archives-ouvertes.fr/hal-02683419

H. Tsukaya, Controlling size in multicellular organs: focus on the leaf, PLoS Biology, vol.6, pp.1373-76, 2008.

R. Van-berloo, H. Aalbers, A. Werkman, and R. E. Niks, Resistance QTL confirmed through development of QTL-NILs for barley leaf rust resistance, Molecular Breeding, vol.8, pp.187-195, 2001.