Salinity affects seed germination, many plant growth and yield traits. This study assessed seed response, quality, ability and phenetic relationship in three sunflower (Helianthaus annuus L.) varieties (SSL-803, SSL-807 and SSL-809) in eleven concentrations of NaCl + CaCl2 solutions (1:1 by weight). Electrical conductivity of the saline solutions ranged from 0.16 to 31.25 dS/m. The repeated factorial experiment (3x11) was laid out in a completely randomized design with three replications in the screenhouse. Germination of 20 seeds per treatment was evaluated within five to ten days after culturing in filter-paper lined petri-dishes. Salinity above 15.63 dS/m significantly (p ≤ 0.05) inhibited seed germination; three seeds of twenty (16.7%) of variety SSL-809 and eight seeds (41.7%) of SSL-807 germinated in 18.75 dS/m solution, and high salinity (18.75 to 31.25 dS/m) caused seed discolouration and shrivelling in SSL-809 and SSL-803 varieties. Cluster analysis (Bray-Curtis’ method) partitioned SSL-807 on a par with SSL-803 in terms of tolerance and adaptability to salinity, SSL-809 was at aversion with the two varieties in these traits. The variety SSL-807 is recommended for cultivation in soils with electrical conductivity below 21.88 dS/m and SSL-803 in saline environments below 18.75 dS/m. Future research on sunflower seed germination will be carried out on the field to verify and fully elucidate current studies.
Published in | Journal of Plant Sciences (Volume 7, Issue 4) |
DOI | 10.11648/j.jps.20190704.11 |
Page(s) | 72-75 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2019. Published by Science Publishing Group |
Helianthaus annuus L., Seed Germination, Sunflower, Tropical Ecology, Salinity Tolerance
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APA Style
Macauley Asim Ittah, Idorenyin Asukwo Udo, Ekemini Edet Obok. (2019). Sunflower (Helianthaus annuus L.) Seeds Germination in Saline Hydroculture. Journal of Plant Sciences, 7(4), 72-75. https://doi.org/10.11648/j.jps.20190704.11
ACS Style
Macauley Asim Ittah; Idorenyin Asukwo Udo; Ekemini Edet Obok. Sunflower (Helianthaus annuus L.) Seeds Germination in Saline Hydroculture. J. Plant Sci. 2019, 7(4), 72-75. doi: 10.11648/j.jps.20190704.11
AMA Style
Macauley Asim Ittah, Idorenyin Asukwo Udo, Ekemini Edet Obok. Sunflower (Helianthaus annuus L.) Seeds Germination in Saline Hydroculture. J Plant Sci. 2019;7(4):72-75. doi: 10.11648/j.jps.20190704.11
@article{10.11648/j.jps.20190704.11, author = {Macauley Asim Ittah and Idorenyin Asukwo Udo and Ekemini Edet Obok}, title = {Sunflower (Helianthaus annuus L.) Seeds Germination in Saline Hydroculture}, journal = {Journal of Plant Sciences}, volume = {7}, number = {4}, pages = {72-75}, doi = {10.11648/j.jps.20190704.11}, url = {https://doi.org/10.11648/j.jps.20190704.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.jps.20190704.11}, abstract = {Salinity affects seed germination, many plant growth and yield traits. This study assessed seed response, quality, ability and phenetic relationship in three sunflower (Helianthaus annuus L.) varieties (SSL-803, SSL-807 and SSL-809) in eleven concentrations of NaCl + CaCl2 solutions (1:1 by weight). Electrical conductivity of the saline solutions ranged from 0.16 to 31.25 dS/m. The repeated factorial experiment (3x11) was laid out in a completely randomized design with three replications in the screenhouse. Germination of 20 seeds per treatment was evaluated within five to ten days after culturing in filter-paper lined petri-dishes. Salinity above 15.63 dS/m significantly (p ≤ 0.05) inhibited seed germination; three seeds of twenty (16.7%) of variety SSL-809 and eight seeds (41.7%) of SSL-807 germinated in 18.75 dS/m solution, and high salinity (18.75 to 31.25 dS/m) caused seed discolouration and shrivelling in SSL-809 and SSL-803 varieties. Cluster analysis (Bray-Curtis’ method) partitioned SSL-807 on a par with SSL-803 in terms of tolerance and adaptability to salinity, SSL-809 was at aversion with the two varieties in these traits. The variety SSL-807 is recommended for cultivation in soils with electrical conductivity below 21.88 dS/m and SSL-803 in saline environments below 18.75 dS/m. Future research on sunflower seed germination will be carried out on the field to verify and fully elucidate current studies.}, year = {2019} }
TY - JOUR T1 - Sunflower (Helianthaus annuus L.) Seeds Germination in Saline Hydroculture AU - Macauley Asim Ittah AU - Idorenyin Asukwo Udo AU - Ekemini Edet Obok Y1 - 2019/07/31 PY - 2019 N1 - https://doi.org/10.11648/j.jps.20190704.11 DO - 10.11648/j.jps.20190704.11 T2 - Journal of Plant Sciences JF - Journal of Plant Sciences JO - Journal of Plant Sciences SP - 72 EP - 75 PB - Science Publishing Group SN - 2331-0731 UR - https://doi.org/10.11648/j.jps.20190704.11 AB - Salinity affects seed germination, many plant growth and yield traits. This study assessed seed response, quality, ability and phenetic relationship in three sunflower (Helianthaus annuus L.) varieties (SSL-803, SSL-807 and SSL-809) in eleven concentrations of NaCl + CaCl2 solutions (1:1 by weight). Electrical conductivity of the saline solutions ranged from 0.16 to 31.25 dS/m. The repeated factorial experiment (3x11) was laid out in a completely randomized design with three replications in the screenhouse. Germination of 20 seeds per treatment was evaluated within five to ten days after culturing in filter-paper lined petri-dishes. Salinity above 15.63 dS/m significantly (p ≤ 0.05) inhibited seed germination; three seeds of twenty (16.7%) of variety SSL-809 and eight seeds (41.7%) of SSL-807 germinated in 18.75 dS/m solution, and high salinity (18.75 to 31.25 dS/m) caused seed discolouration and shrivelling in SSL-809 and SSL-803 varieties. Cluster analysis (Bray-Curtis’ method) partitioned SSL-807 on a par with SSL-803 in terms of tolerance and adaptability to salinity, SSL-809 was at aversion with the two varieties in these traits. The variety SSL-807 is recommended for cultivation in soils with electrical conductivity below 21.88 dS/m and SSL-803 in saline environments below 18.75 dS/m. Future research on sunflower seed germination will be carried out on the field to verify and fully elucidate current studies. VL - 7 IS - 4 ER -