| Literature DB >> 25515726 |
Maik Veste1, Henning Todt2, Siegmar-W Breckle2.
Abstract
Halophytes develop various morphological and physiological traits that enable them to grow successfully on saline substrates. Parasitic plants on halophytic hosts may also encounter salt stress. We investigated the mistletoe Plicosepalus acaciae (syn: Loranthus acacia; Loranthaceae), which occurs on 5 halophytic and at least 10 non-halophytic hosts in the Southern Arava Valley (Israel). Plicosepalus acaciae is a common parasite north of Eilat to the Dead Sea area and in the Jordan Valley. Morphological and physiological responses of P. acaciae to salinity were investigated by comparison of plants on halophytic with those on non-halophytic hosts. Ion patterns of different host-parasite associations were determined as was the development of leaf succulence at different growth stages. The leaf water content of P. acaciae increased and leaves developed succulence when growing on halophytic hosts, especially on Tamarix species, where leaf water content was three times higher than that on non-halophytic hosts and the leaf volume increased four to five times. The reason for increased succulence was a higher ion concentration of, and osmotic adjustment with, Na(+) and Cl(-). Plicosepalus acaciae showed a high morphological and ecophysiological plasticity, enabling it to cope with salt stress, and can be classified as a facultative eu-halophyte, which increases its halo-succulence according to the host. Host-parasite associations are a model system for the investigation of halophytes under different salt stress conditions. Published by Oxford University Press on behalf of the Annals of Botany Company.Entities:
Keywords: Ion pattern; Loranthaceae; mistletoe; parasite; plasticity; salt stress; succulence.
Year: 2014 PMID: 25515726 PMCID: PMC4305064 DOI: 10.1093/aobpla/plu084
Source DB: PubMed Journal: AoB Plants Impact factor: 3.276
Figure 1.Climatic diagram of Yotvata (southern Arava, Israel) indicating the 12-months arid season.
Checklist of non-halophytic and halophytic hosts of P. acaciae in the Arava Valley (Israel and Jordan). Hosts in Yotvata (Israel) are marked with YOT. W, species growing in natural habitas; Cv, cultivated species. Data source: (1) Post (1932), (2) Zohary (1966), (3) Täckholm (1974), (4) Feinbrun-Dothan , (5) Shmida and Darom (1992), (6) Veste and Breckle (1995); Todt , (7) Vaknin , (8) Kotschy (1861), (9) Qasem (2009, 2011).
| Host species | Family | Reference/comments | |
|---|---|---|---|
| Non-halophytic hosts | |||
| Mimosaceae | Cv | 9 | |
| Mimosaceae | Cv | 9 | |
| Mimosaceae | W | 8, 9 | |
| Mimosaceae | W,YOT | 1, 2, 3, 4, 5 (only | |
| Mimosaceae | Cv | 9 | |
| Mimosaceae | W,YOT | 1, 2, 3, 4, 5 (only | |
| Caesalpiniaceae | Cv | 6 | |
| Fabaceae | W | 9 | |
| Zygophyllaceae | Cv | 4 | |
| Polygonaceae | W,YOT | 6 | |
| Capparidaceae | W | 6, 9 | |
| Casuarinaceae | Cv | 6 | |
| Casuarinaceae | Cv | 9 | |
| Caesalpiniaceae | W | 9 | |
| Caesalpiniaceae | Cv | 6 | |
| Elaeagnaceae | W | 8 | |
| Moraceae | Cv | 9 | |
| Chenopodiaceae | W,YOT | 8 | |
| Juglandaceae | Cv | 9 | |
| Meliaceae | Cv | 9 | |
| Apocynaceae | W | 9 | |
| Caesalpiniaceae | Cv | 9 | |
| Anacardiaceae | W | 9 | |
| Anacardiaceae | Cv | 9 | |
| Caesalpiniaceae | Cv | 9 | |
| Mimosaceae | Cv | 9 | |
| Mimosaceae | W,Hazeva | Y. Vaknin pers. comm. in 6, 9 | |
| Punicaceae | Cv | 2 | |
| Fabaceae | W | 9 | |
| Rhamnaceae | W | 1 | |
| Anacardiaceae | W,YOT | 4 (only | |
| Resedaceae | W | 4, 5 (only | |
| Anacardiaceae | W | 9 | |
| Salicaceae | W | 9 | |
| Rhamnaceae | Cv | 9 | |
| Rhamnaceae | W,YOT | 9 | |
| Rhamnaceae | W | 1, 2, 3, 4, 5 (only | |
| Halophytic hosts | |||
| Chenopodiaceae | W, YOT | 2, 4 (only | |
| Zygophyllaceae | W, YOT | 4 (only | |
| Tamaricaceae | Cv, W, YOT | 2, 4, 5 (only | |
| Tamaricaceae | Cv, YOT | 2, 4, 5 (only | |
| Tamaricaceae | W, YOT | 2, 4, 5 (only | |
| Tamaricaceae | Cv | 9 |
Figure 2.Leaf area (cm2) of young and old leaves of P. acaciae parasitic on non-halophytic (light grey) and halophytic (dark grey) hosts. Box plots indicate interquartile range, median (thick line) and total variation.
Figure 3.Leaf thickness (mm) of young and old leaves of P. acaciae parasitic on non-halophytic (light grey) and halophytic (dark grey) hosts. Box plots indicate interquartile range, median (thick line) and total variation.
Figure 4.Volume (cm3) of young and old leaves of P. acaciae parasitic on non-halophytic (light grey) and halophytic (dark grey) hosts. Box plots indicate interquartile range, median (thick line) and total variation.
Figure 5.Succulence (g H2O g−1 d.m. org.) of young and old leaves of P. acaciae parasitic on non-halophytic (light grey) and halophytic (dark grey) hosts, with standard deviation.
Figure 6.Ash content of old leaves of P. acaciae parasitic on non-halophytic (light grey) and halophytic (dark grey) hosts. Box plots indicate interquartile range, median (thick line) and total variation for N > 2.
Figure 7.Correlation between Na+ and Cl− concentration (mmol kg−1 H2O) in leaves of P. acaciae growing on non-halophytic and halophytic hosts.
Figure 8.Correlation between Na+ and K+ concentration (mmol kg−1 H2O) in leaves of P. acaciae growing on non-halophytic and halophytic hosts.
Figure 9.Correlation between K+ and Cl− concentration (mmol kg−1 H2O) in leaves of P. acaciae growing on non-halophytic and halophytic hosts.
Figure 10.Correlation between succulence (g H2O g−1 d.m. org.) and Na+ concentration (dots: mmol kg−1 d.m.; crosses: mmol kg−1 H2O) in leaves of P. acaciae growing on non-halophytic and halophytic hosts.
Figure 11.Correlation between succulence (g H2O g−1 d.m. org.) and the ion sum (Na+ + K+ + Ca2+ + Mg2+ + Cl−, mmol kg−1 d.m.) in leaves of P. acaciae growing on non-halophytic and halophytic hosts.
Sodium–potassium ratio (derived from H2O values, mmol kg−1) in leaves of the non-halophytic hosts A. tortilis, C. comosum and H. persicum the halophytic hosts T. nilotica, A. halimus and N. retusa and the respective P. acaciae hemi-parasites on them.
| Non-halophytic | Na/K | Halophytic | Na/K |
|---|---|---|---|
| Leaves | 0.37 | Young shoots | 0.65 |
| Old leaves | 0.069 | Old leaves | 2.46 |
| Middle-aged leaves | 0.056 | Middle-aged leaves | 1.81 |
| Young leaves | 0.056 | Young leaves | 1.06 |
| Shoots | 0.77 | Leaves | 5.90 |
| Old leaves | 0.41 | Old leaves | 4.31 |
| Middle-aged leaves | 0.40 | Middle-aged leaves | 2.26 |
| Young leaves | 0.37 | Young leaves | 1.75 |
| Shoots | 1.36 | Leaves | 3.30 |
| Old leaves | 1.10 | Old leaves | 2.45 |
| Middle-aged leaves | 0.92 | Middle-aged leaves | 1.54 |
| Young leaves | 0.68 | Young leaves | 0.82 |
Ion contents of old leaves of P. acaciae on various hosts (± standard deviation) and corresponding ionic contents of host plants [in each cell: upper figure, mmol kg−1 d.m.; lower figure, mmol kg−1 H2O].
| Taxon: parasite and relevant host | Na+ | K+ | Ca2+ | Mg2+ | Cl− |
|---|---|---|---|---|---|
| 45.9 ± 12.6 | 668 ± 201 | 307 ± 104 | 86.4 ± 19.7 | 220 ± 88.9 | |
| 26.6 ± 7.67 | 375 ± 63.9 | 181 ± 72.9 | 49.5 ± 8.01 | 126 ± 46.7 | |
| 55.7 ± 14.1 | 161 ± 89.4 | 519 ± 243 | 94.3 ± 24.9 | 82.3 ± 28.7 | |
| 44.7 ± 16.8 | 115 ± 35.7 | 440 ± 217 | 78.4 ± 31.3 | 63.6 ± 24.2 | |
| 38.0 ± 8.56 | 596 ± 296 | 454 ± 128 | 111 ± 32.2 | 248 ± 80.5 | |
| 23.2 ± 6.63 | 334 ± 125 | 274 ± 84.6 | 65.6 ± 15.2 | 144 ± 29.7 | |
| 47.6 ± 10.0 | 127 ± 53.3 | 607 ± 272 | 162 ± 51.5 | 82.5 ± 21.6 | |
| 40.3 ± 8.23 | 105 ± 37.2 | 528 ± 242 | 140 ± 49.8 | 70.7 ± 20.9 | |
| 35.9 ± 4.46 | 864 ± 199 | 283 ± 50.3 | 259 ± 46.1 | 140 ± 10.5 | |
| 14.4 ± 2.73 | 334 ± 27.5 | 111 ± 15.1 | 102 ± 13.9 | 56.9 ± 13.6 | |
| 33.1 ± 1.06 | 269 ± 83.9 | 141 ± 77.9 | 149 ± 53.4 | 49.9 ± 13.0 | |
| 14.5 ± 2.52 | 112 ± 12.8 | 69.5 ± 47.2 | 70.8 ± 37.1 | 20.9 ± 1.24 | |
| 399 ± 176 | 997 ± 313 | 83.6 ± 60.4 | 312 ± 94.3 | 399 ± 190 | |
| 142 ± 59.2 | 350 ± 76.8 | 31.9 ± 25.3 | 112 ± 36.8 | 141 ± 65.8 | |
| 108 ± 56.0 | 156 ± 98.4 | 51.9 ± 102 | 283 ± 92.0 | 79.0 ± 25.5 | |
| 70.1 ± 33.1 | 91.4 ± 44.3 | 60.0 ± 147 | 204 ± 109 | 52.9 ± 19.2 | |
| 822 ± 293 | 688 ± 139 | 41.0 ± 3.07 | 128 ± 21.1 | 789 ± 273 | |
| 247 ± 14.0 | 222 ± 48.9 | 13.9 ± 4.74 | 41.9 ± 10.7 | 238 ± 16.2 | |
| 98.7 ± 15.5 | 255 ± 16.3 | 267 ± 2.04 | 195 ± 14.1 | 317 ± 106 | |
| 71.0 ± 21.6 | 181 ± 38.9 | 188 ± 27.3 | 135 ± 11.1 | 234 ± 108 | |
| 556 ± 126 | 496 ± 52.4 | 127 ± 38.9 | 265 ± 57.0 | 387 ± 173 | |
| 327 ± 59.6 | 295 ± 38.3 | 75.0 ± 23.6 | 160 ± 46.4 | 223 ± 86.0 | |
| 941 ± 165 | 698 ± 113 | 7.23 ± 2.74 | 295 ± 39.4 | 479 ± 202 | |
| 572 ± 110 | 420 ± 43.8 | 4.44 ± 1.87 | 181 ± 37.5 | 290 ± 127 | |
| 329 ± 208 | 862 ± 184 | 111 ± 35.9 | 133 ± 28.6 | 166 ± 121 | |
| 145 ± 76.2 | 397 ± 61.4 | 52.6 ± 19.0 | 61.8 ± 13.7 | 73.4 ± 42.1 | |
| 129 ± 53.1 | 209 ± 60.5 | 117 ± 23.0 | 71.5 ± 14.8 | 85.4 ± 59.2 | |
| 109 ± 39.7 | 178 ± 36.6 | 102 ± 22.7 | 62.7 ± 15.7 | 69.6 ± 40.7 | |
| 74.1 ± 17.0 | 961 ± 253 | 249 ± 14.8 | 208 ± 33.0 | 745 ± 76.6 | |
| 25.6 ± 0.86 | 330 ± 0.69 | 90.3 ± 18.5 | 73.3 ± 7.84 | 267 ± 43.5 | |
| 67.2 ± 2.87 | 102 ± 52.9 | 258 ± 131 | 196 ± 32.3 | 385 ± 14.2 | |
| 36.1 ± 12.3 | 45.5 ± 11.7 | 116 ± 28.3 | 98.7 ± 14.3 | 207 ± 69.3 | |
| 2603 ± 231 | 609 ± 193 | 160 ± 74.0 | 271 ± 67.1 | 3006 ± 373 | |
| 479 ± 22.4 | 111 ± 30.1 | 30.1 ± 14.4 | 50.6 ± 14.1 | 552 ± 42.8 | |
| 3267 ± 400 | 594 ± 171 | 11.2 ± 4.10 | 268 ± 46.0 | 3458 ± 430 | |
| 1955 ± 801 | 331 ± 86.1 | 6.28 ± 2.13 | 179 ± 122 | 2084 ± 902 | |
| 1481 ± 366 | 572 ± 182 | 344 ± 71.4 | 281 ± 42.6 | 1068 ± 302 | |
| 500 ± 77.4 | 204 ± 81.0 | 121 ± 36.0 | 97.0 ± 15.9 | 362 ± 81.3 | |
| 1586 ± 762 | 457 ± 159 | 611 ± 155 | 513 ± 85.6 | 1560 ± 724 | |
| 446 ± 154 | 135 ± 48.9 | 179 ± 45.0 | 151 ± 27.0 | 442 ± 146 | |
| 1503 ± 531 | 621 ± 145 | 501 ± 105 | 632 ± 62.6 | 1382 ± 471 | |
| 300 ± 105 | 126 ± 35.1 | 102 ± 26.6 | 128 ± 18.1 | 273 ± 72.8 | |
| 586 ± 196 | 259 ± 58.6 | 504 ± 127 | 598 ± 166 | 573 ± 217 | |
| 306 ± 82.5 | 139 ± 37.8 | 274 ± 87.9 | 326 ± 107 | 299 ± 92.0 | |
| 2253 ± 466 | 917 ± 219 | 517 ± 67.9 | 291 ± 45.9 | 1621 ± 438 | |
| 402 ± 54.8 | 169 ± 52.2 | 94.2 ± 16.8 | 53.0 ± 10.7 | 289 ± 60.1 | |
| 240 ± 99.9 | 367 ± 67.1 | 590 ± 112 | 319 ± 52.1 | 413 ± 544 | |
| 169 ± 72.5 | 259 ± 46.5 | 417 ± 84.6 | 226 ± 42.0 | 287 ± 368 |
Ion ratio (mmol-paras/mmol-host) calculated from H2O values (mmol kg−1) for the checked parasite/host pairs.
| Ion ratio: parasite/host for taxon | Ratio for Na+ | Ratio for K+ | Ratio for Ca2+ | Ratio for Mg2+ | Ratio for Cl− |
|---|---|---|---|---|---|
| 0.60 | 3.26 | 0.41 | 0.63 | 1.98 | |
| 0.58 | 3.18 | 0.52 | 0.47 | 2.04 | |
| 0.99 | 2.98 | 1.60 | 1.44 | 2.72 | |
| 2.03 | 3.82 | 0.53 | 0.55 | 2.66 | |
| 3.48 | 1.23 | 0.074 | 0.31 | 1.02 | |
| 0.57 | 0.70 | 16.9 | 0.88 | 0.77 | |
| 1.33 | 2.23 | 0.52 | 0.99 | 1.05 | |
| 0.71 | 7.25 | 0.78 | 0.74 | 1.29 | |
| 0.24 | 0.34 | 4.79 | 0.28 | 0.26 | |
| 1.12 | 1.51 | 0.68 | 0.64 | 0.82 | |
| 0.98 | 0.91 | 2.91 | 0.39 | 0.91 | |
| 2.37 | 0.65 | 0.23 | 0.23 | 1.01 |
Figure 12.Ratio of ion concentration parasite/host for the five ions, calculated from the H2O values (mmol kg−1). The values for A. halimus are beyond the graph (Na+ = 479/1955; Cl− = 552/2084).