| Literature DB >> 25178274 |
Yvonne Ventura1, Malika Myrzabayeva2, Zerekbay Alikulov3, Rustem Omarov3, Inna Khozin-Goldberg1, Moshe Sagi4.
Abstract
The fresh water shortage in agriculture is an increasing problem worldwide, therefore the possibility of cultivating crops under saline conditions is of high importance. Crithmum maritimum, a halophytic plant naturally found on the rocky coastlines of the Atlantic Ocean and the Mediterranean Sea, has a long history of human consumption and was recently suggested as a cash crop for biosaline agriculture. In the present study, we compared the responses of different genotypes originating from France, Portugal and Israel to moderate saline irrigation (up to 100 mM NaCl). The genotypes varied greatly in the onset of flowering, their leaf appearance, growth habits and leaf metabolite content. Both Atlantic genotypes (from France and Portugal) flowered earlier than those from the Mediterranean, but the number of inflorescences decreased with salinity. Irrigation with 50 and 100 mM NaCl led to a reduction in biomass production in both the Israeli and the Portuguese genotypes, while the French genotype was found to produce maximum leaf yield at 50 mM NaCl. With increasing salinity, salt was accumulated by the plants, as indicated by increasing electrical conductivities of the leaf extracts. Concomitantly, antioxidant compounds (such as ascorbic acid), total polyphenols and ureides responded to salinity in a genotype-dependent manner; either they increased, decreased or were unaffected. Notably, the total fatty acid concentration increased with salinity in both Mediterranean genotypes, reaching 2.7 and 2.4 % total fatty acids (on a dry weight basis) at 100 mM NaCl. Moreover, the proportion assigned to omega-3 fatty acids in these genotypes was higher than in their Atlantic counterparts at the highest salinity tested. Our results highlight the variations existing among C. maritimum genotypes from different origins regarding salt-induced changes in plant growth, flowering behaviour and leaf metabolites with nutritional value. Thus, genotypic characteristics should be taken into account when evaluating a wild plant species for future crop cultivation. Published by Oxford University Press on behalf of the Annals of Botany Company.Entities:
Keywords: Antioxidant compounds; Crithmum maritimum; flowering; germination; omega-3 polyunsaturated fatty acids; salinity.
Year: 2014 PMID: 25178274 PMCID: PMC4172196 DOI: 10.1093/aobpla/plu053
Source DB: PubMed Journal: AoB Plants Impact factor: 3.276
Figure 1.Leaf appearance of four C. maritimum genotypes: FR, HB, PO and IS.
Figure 2.Effect of salinity on plant morphology (A), fresh weight (B) and dry weight (C) in four C. maritimum genotypes. Values denoted by different letters are significantly different, P < 0.05.
Figure 3.Effect of salinity on the flowering pattern of four C. maritimum genotypes. Number of inflorescences was counted at three time points after the onset of flowering (2.5, 3.5 and 4.5 MAH). Values denoted by different letters are significantly different, P < 0.05.
Effect of salinity on EC and TSS in four C. maritimum genotypes. Values denoted by different letters are significantly different, P < 0.05.
| Leaf constituents | Salinity (mM NaCl) | FR | HB | IS | PO |
|---|---|---|---|---|---|
| EC (dS m−1) | 0 | 19.8e | 14.7f | 14.8f | 16.5f |
| 50 | 22.3d | 28.0a | 25.3bc | 23.3d | |
| 100 | 25.3bc | 27.0ab | 26.3ab | 24.0cd | |
| TSS (%) | 0 | 4.5e | 4.7de | 5.2bcd | 5.0cde |
| 50 | 5.5bc | 5.3bc | 5.0cde | 5.7ab | |
| 100 | 6.2a | 5.0cde | 5.2bcd | 5.7ab |
Figure 4.Effect of salinity level on ASC and DHA in four C. maritimum genotypes. Values denoted by different letters are significantly different, P < 0.05.
Figure 5.Effect of salinity level on total polyphenols, expressed as gallic acid equivalents (GAE), in leaves of four C. maritimum genotypes. Values denoted by different letters are significantly different, P < 0.05.
Figure 6.Effect of salinity on allantoin (ALN) and allantoate (ALT) levels in leaves of four C. maritimum genotypes. Values denoted by different letters are significantly different, P < 0.05.
Effect of salinity on FAME profile in leaves of four C. maritimum genotypes. Values in the table are mean fatty acid (as % of total fatty acids) (n = 3). Values denoted by different letters are significantly different, P < 0.05.
| FAME | Genotype | |||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| FR | HB | IS | PO | |||||||||
| Salinity (mM NaCl) | ||||||||||||
| 0 | 50 | 100 | 0 | 50 | 100 | 0 | 50 | 100 | 0 | 50 | 100 | |
| 16 : 0 | 19.9bc | 19.2bc | 18.4c | 22.3a | 20.2bc | 21.1ab | 19.0c | 18.8c | 19.0c | 19.3bc | 19.0c | 18.9c |
| 16 : 1 | 3.2bc | 2.9bc | 3.0bc | 2.5c | 3.0bc | 2.6bc | 4.1a | 3.4ab | 3.2bc | 2.5c | 2.6bc | 2.9bc |
| 16 : 1 pg | 2.5e | 2.4e | 2.2e | 3.3a | 3.1ab | 3.4a | 2.7cd | 2.8cd | 2.9c | 2.9bc | 2.8cd | 2.8c |
| 16 : 2 | 0.5b | 0.5Ab | 0.6b | 0.0e | 0.3cd | 0.5b | 0.1de | 0.5bc | 0.7b | 0.5b | 0.6b | 0.9a |
| 16 : 3ω3 | 6.4b | 6.4b | 6.2b | 8.6a | 9.3a | 9.9a | 9.1a | 9.5a | 10.0a | 9.8a | 9.5a | 9.5a |
| 18 : 0 | 2.5ab | 2.5ab | 2.6a | 2.4abc | 2.0d | 2.1cd | 2.4abc | 2.2bcd | 2.3bcd | 2.1cd | 2.2bcd | 2.4abc |
| 18 : 1ω9 | 1.7bcd | 1.6bcde | 1.8bc | 1.2cde | 1.1e | 1.2de | 1.5bcde | 1.8bc | 2.0ab | 2.0ab | 1.8bc | 2.4a |
| 18 : 2 | 32.3a | 33.2ab | 33.9a | 29.9cd | 28.1ef | 26.9f | 29.1cde | 29.4cde | 28.8de | 29.3cde | 30.4c | 30.0cd |
| 18 : 3ω3 | 30.7a | 31.3a | 31.1a | 29.2a | 32.2a | 31.4a | 31.Aa | 31.2a | 30.7a | 31.0a | 30.2a | 29.3a |
| Others | 0.4cdef | 0.0f | 0.2def | 0.6abcd | 0.6abcd | 1.0a | 0.1ef | 0.5bcde | 0.6abcde | 0.6abcd | 0.9ab | 0.7abc |
| Total FAME (%DW) | 2.3bcd | 2.2bcd | 2.3bcd | 1.9d | 2.4abc | 2.4abc | 2.1cd | 2.5ab | 2.7a | 2.7a | 2.5ab | 2.5abc |
| Total ω3 | 37.1c | 37.7bc | 37.3c | 37.9bc | 41.5a | 41.2a | 40.9ab | 40.6ab | 40.7ab | 40.8ab | 39.7abc | 38.8abc |