Safflower ( <i>Carthamus tinctorius </i> L.) is a promising culture to be widespread in Brazil. However, the lack of basic knowledge about cultivation techniques, such as water demand by the culture, is still obstacle to the expansion of safflower in that country. The objective was, then, to evaluate the effect of the soil water availability on growth and development of safflower in the Cerrado soil of Mato Grosso, Brazil. The experiment was conducted in a greenhouse, in a completely randomized design with five water availabilities (25%, 50%, 75%, 100% and 125% of the maximum water holding capacity in the soil) and four replications. Maintenance soil moisture was performed by gravimetric method with daily weighing of experimental units. The variables analyzed were: plant height, stem diameter, number of leaves, number of heads, heads diameter, dry mass of shoots, heads, and roots. The results were submitted to analysis of variance and regression test at 5% probability by SISVAR program. All variables set to the quadratic regression model, showing the best results in the water availability between 64% and 76%. Safflower is shown to be more sensitive to water stress with increased tolerance to water deficit in the soil than to flooding.
The need to be unlinked from the dependence on exhaustible sources has led increasingly to the search for sustainable energy production systems. Thus, the importance of oil crops, among them the safflower (Carthamus tinctorius L.), has increased, especially with the interest in biofuel production [
The use of safflower in human activity is well known, whether in the production of dyes [
The safflower culture has important agronomic traits, such as tolerance to water deficit [
Nonetheless, although there is adaptation of the safflower to the climate of semi-arid regions, its water requirement is not yet defined [
There are papers that relate the development of safflower with soil water availability [
Both deficiency and excess of water in plants can cause significant changes in its metabolism, reducing growth, development [
Considering soil water from the energetic point of view, its movement takes place from the point where its total energy is higher (wet) to the point where it is lower (dry) [
To compensate for the resistance to water flow in the soil, the potential in the root decreases to its limit, then physiological mechanisms cause the closure of the stomata in the leaves, increasing the total resistance of the soil-plant-atmosphere path, thereby reducing the flow of water. When there is stomatal closure, there is also, collaterally, reduced CO2 absorption, which is limiting to plant growth under optimal lighting conditions [
In situations of very wet soils, with less negative matric potentials, the anaerobic zones are found. They cause plant stress due to lack of oxygen to the root system.
In this context, the objective was to evaluate the effect of water availability in the growth and development of safflower in soil of the Cerrado of Mato Grosso, Brazil.
The study was conducted in a greenhouse located at the geographic coordinates of 16˚27'52''S and 54˚34'46''W, at the Federal University of Mato Grosso, Campus Rondonópolis-MT, Brazil.
The soil used in the experiment, from an area under Cerrado vegetation, was collected in the 0 - 0.20 m layer of an Oxisol. Chemical and granulometric analyzes were performed for its characterization (
Liming with dolomite lime (PRNT = 80.3%) was performed to raise the base saturation to 60%. Soil moisture was maintained at 60% of its maximum water holding capacity, remaining incubated for 30 days.
After the incubation period of the soil with limestone, basic fertilization was performed with 50, 150 and 100 mg∙dm−3 of nitrogen (N), phosphorus (P2O5) and potassium (K2O), respectively, having as source urea, simple superphosphate and potassium chloride.
Each plot consisted of a plastic pot with a capacity of 3.5 dm3 containing four plants. The experimental design was completely randomized with five water availabilities (25%, 50%, 75%, 100% and 125% of the maximum capacity of soil water retention) and four replications. The maximum capacity of soil water retention in the pots was maintained by the gravimetric method with daily weighing of experimental units, according to reference [
Ten safflower seeds per pot were sown, and the thinning was carried out at ten days after sowing, leaving four plants per pot.
pH | P | K | Ca | Mg | H | Al | SB | CEC | V | O.M. | Sand | Silt | Clay |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
CaCl2 | mg∙dm−3 | -----------cmolc∙dm−3--------------- | % | g dm-3 | ---------g∙kg−1----------- | ||||||||
4.1 | 2.4 | 28 | 0.3 | 0.2 | 4.2 | 1.1 | 0.6 | 5.9 | 9.8 | 22.7 | 549 | 84 | 367 |
Phosphorus (P), Potassium (K), Calcium (Ca), Magnesium (Mg), Hydrogen (H), Aluminum (Al), Sum of Bases (SB), Cation Exchange Capacity (CEC), Calcium Chloride (CaCl2), base saturation (V) and Organic Matter (O.M.).
In the first ten days after planting, soil moisture was maintained at 60% of the maximum capacity of the soil water retention to ensure good plant growth in the establishment phase. After this period, each plot was irrigated so as to keep the water availability corresponding to treatments.
At 60 days, the following variables were evaluated: plant height, stem diameter, number of leaves, number of heads, heads diameter, dry mass of shoots, heads, and roots.
Height was measured with a ruler graduated from the ground level to the highest part of each plant. The diameter of stem and heads was obtained by measurement using caliper rule.
The cut of the shoot was done close to the ground, and leaves + stem were separated from heads to determine their respective dry masses. The roots were collected and washed on sieve mesh of 4 mm. All the collected material was packed in paper bag and subjected to drying in an oven with forced air at 65˚C to constant weight and, then, it was weighed.
The results were submitted to analysis of variance by F test and, when significant, it was applied regression testing, both at 5% probability, using the statistical program SISVAR [
There were significant differences for all analysed variables regarding soil water availabilities, which set to the quadratic regression model.
The height of safflower plants was influenced by water availability, being the greatest plant height, of 51 cm (
The knowledge of the influence of water availability in the growth of a crop is essential in situations where the plant in question will have its production harvested mechanically, especially when there is the possibility of investment savings when it can be used the same implements used in other crops, such as soybeans and cotton.
These results corroborate those of reference [
The low availability of aeration does not favor the growth of safflower plants. This statement is validated by the results shown by the treatment in which the water supply was above 100% of the maximum water holding capacity in the soil. As in this study, the references [
For stem diameter, the water availability that provided the largest diameter (4 cm) was of 77% (
The stem diameter reflects the robustness of the plant, based on this variable, when compared between plants of the same species; one can infer the propensity to lodging. Relevant characteristic in plants whose cultivation is mechanized, since the non-tipping facilitates its handling, treatment, and harvest [
The number of leaves was influenced by the soil water availability with greater value in the availability of 72% (
reactions may be the reduction in the number of leaves that occurs due to reductions or inhibitions in the leaf initiation rate, or even as a result of accelerated foliar senescence induction.
The leaf senescence is one of the mechanisms to prevent dehydration that, notwithstanding, takes a sharp decline in productivity potential, even after the elimination of the deficit [
The study of the number of leaves highlights the importance of measuring this characteristic, as indicative of the crop yield, for being these organs the main site for the occurrence of the photosynthetic process [
The largest numbers and diameter of heads were obtained in the water availabilities of 71% and 61%, respectively (
The number of heads per plant is directly related to the final production of the culture. Nonetheless, the head diameter is also relevant in research because heads with larger diameters, in theory, have a greater ability to flower formation and therefore higher number of seeds, which may contribute, along with other components, to increased productivity [
The greatest production of dry mass of shoots of safflower was observed in plants submitted to the water availability of 76% (
The results of this study are consistent with those observed by reference [
The reference [
The lower water availability may lead to reduced cell expansion, stomatal closure, reduction in photosynthesis,
severely affecting the yield of biomass of shoot and root. However, in flooded soil conditions, there is a lack of oxygen to the roots, which causes the death of the root tissues by favoring lactic fermentation and acidosis in the cells, also with the probability of leading to reduced absorption of nutrients and water by lack of energy, hindering the growth of shoots [
The dry mass of heads showed higher production with the soil at 72% of its maximum water holding capacity, an increase of 83% compared to treatment with water deficit (water availability of 25%) (
Thus, it can be observed that in conditions of water excess in the soil (125% water availability), the safflower plant did not produce heads, reproductive structure that houses the grains to oil extraction. Hence, safflower shows to be more sensitive to flooding than to drought, although in this last condition there is also production reduction (
The highest production of dry mass of roots of the safflower was observed in plants submitted to the water availability of 74% (
Through this study, it is possible to realize a marked reduction of the roots in the treatment with flooded soil (125% of the maximum water retention), demonstrating the susceptibility of the safflower to the excess of water in the soil. The reference [
The excess of water in the soil causes immediate reduction in gas exchange between the plant and the environment. The anoxia or hypoxia suffered by the root system in flooded plants causes immediate drop in respiration of roots and can cause death [
The expression of data followed the same adjustment model for all variables, the quadratic regression. The graph curve of this type of function is a half upward and half downward parabola, divided by an inflection point. Although it is an expected behavior for works of this nature, as extreme treatments are stressful for most crops [
The response of growth and development of safflower depending on the water availabilities in the soil demonstrates the need for more detailed studies on the water availability for this culture. The reference [
The soil water availability influences the growth and development of safflower plants with better results in the ranges between 61% and 76% of maximum water holding capacity in the soil. Water stresses both by the deficit and the excess of water in the soil reduce the dry mass production of safflower. Safflower is more sensitive to water stress with increased tolerance to water deficit in the soil than to flooding.
Edna MariaBonfim-Silva,Ellen Cristina Alvesde Anicésio,Jakeline Rosade Oliveira,Helon Hébano deFreitas Sousa,Tonny JoséAraújo da Silva, (2015) Soil Water Availability on Growth and Development of Safflower Plants. American Journal of Plant Sciences,06,2066-2073. doi: 10.4236/ajps.2015.613207