Morpho-Physiological Traits Linked to High Temperature Stress Tolerance in Tomato (S. lycopersicum L.)
Climate change has increased the incidence of heat stress in many crop
production environments globally. Several traits have been implicated in heat
stress tolerance in tomato including membrane thermo stability (MTS), floral
characteristics, cone splitting, pollen viability, fruit set and fruit yield.
And the identification of heat tolerance traits that express across
environments is key to the successful development of high temperature tolerant
tomatoes.
In this study, a replicated experiment of 145 tomato genotypes was
established at two temperature regimes in two planting seasons using
hydroponics in a poly greenhouse to assess high temperature tolerance.
Electrolyte leakage, number of inflorescences, number of flowers and fruits,
fresh fruit weight and fresh and dry plant weight were measured and genotype
and temperature treatment differences were observed for all traits.
The results showed that planting season impacted all traits except
electrolyte leakage and number of flowers. High temperature reduced number of
fruits by 88.8%, flower fruit set ratio by 77.2% and fresh fruit weight by 79.3%.
In contrast, traits little impacted by temperature included number of flowers
per inflorescence (1.3%) and plant dry weight (11.1%). The correlation between
plant dry weight under both high and optimal temperature was significant (R2 =
0.82). To assess the effectiveness of plant dry weight and flower-fruit set
ratio for selection under heat stress two subsets of genotypes (A and B)
comprising ten and six genotypes respectively were subsequently selected on the
basis of their dry weight loss and flower-fruit set ratio under high
temperature. Organic metabolite analyses of set A and B respectively, showed a
significant change (%) in citric acid (77.4 and 15.4), L-proline (117.8 and
40.2), aminobutyric acid (68.6 and 11.8), fructose (24.9 and 21.3), malic acid
(50.3 and 42.7), myo-inositol (55.1 and 6.1), pentaerythitol (54.1 and
39.0) and sucrose (34.7 and 25.8). The change (%) in all metabolites was
greater in heat tolerant genotypes with the exception of fructose and
sucrose where sensitive genotypes produced a higher variation. The change in
sucrose in tolerant genotypes was variable in subset A and more uniform in
subset B.
In conclusion, dry weight loss and flower-fruit set ratio are useful traits to categorize
genotypes; various organic metabolites are up/down regulated and the extent of
change may depend on the tolerance/sensitivity of the genotype and the capacity
to maintain sucrose level in the plant tissues indicates
the capacity of a genotype to maintain higher flower-fruit set ratio.
Article
by Muhammed Alsamir, et al, from Australia and Iraq.
Full
access: http://mrw.so/2qjT3F
Image
by Sally Gunnett, from Flickr-cc.

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