Research output: Contribution to journal › Article › peer-review
Drying Response of Pea (Pisum sativum) at Post-Germination Stage. / Smolikova, GN; Lankina, AA; Vilis, PV; Bilova, TE; Krylova, EA; Demidchik, VV; Medvedev, SS.
In: Russian Journal of Plant Physiology, Vol. 73, No. 2, 30.03.2026, p. 103.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Drying Response of Pea (Pisum sativum) at Post-Germination Stage
AU - Smolikova, GN
AU - Lankina, AA
AU - Vilis, PV
AU - Bilova, TE
AU - Krylova, EA
AU - Demidchik, VV
AU - Medvedev, SS
N1 - Times Cited in Web of Science Core Collection: 0 Total Times Cited: 0 Cited Reference Count: 61
PY - 2026/3/30
Y1 - 2026/3/30
N2 - Drought is a major threat to global food security, with climate change enhancing its severity. Living organisms employ various adaptation strategies against loss of water, with desiccation tolerance representing the most extreme ones. The present study provides an analysis of dehydration response mechanisms in Pisum sativum, focusing on early seedling development. The experiments were carried out on 3-day-old seedlings (with radicle up to 20 mm) and on similar seedlings with cotyledons removed, each subjected to 24 h of drying. Stress response was assessed through growth analysis, electrolyte leakage tests, and measurements of ascorbate content and lipid peroxidation products. The results demonstrated that, although dried seedlings underwent oxidative stress, those with cotyledons showed a superior recovery capacity upon rehydration. This was evidenced by their ability to regenerate adventitious roots, compensating for the damage to their primary root system. We further monitored the ABA-dependent stress response by registering the expression of key genes associated with 'response to water deprivation' (ABI3, ABI4, ABI5, HVA22, PER1, LEA14, RD22, LTI65, and LTP4). Drying followed by rehydration resulted in the 40-fold upregulation of ABI5 in the hypocotyls of both cotyledon-removed and intact seedlings, and the 108-fold upregulation of this gene specifically in the roots of seedlings with intact cotyledons. Our results demonstrate an extended role for cotyledons, which involves not only nutrient storage but also the coordination of developmental and stress adaptation under severe water deficit. We propose that the post-germination stage constitutes a 'resilience window' of plant development. During this period, desiccation-protective mechanisms remain partially active in the embryonic axis, supporting the survival of the developing seedling, whereas newly formed tissues derived from the meristems do not acquire the desiccation tolerance characteristic of seeds.
AB - Drought is a major threat to global food security, with climate change enhancing its severity. Living organisms employ various adaptation strategies against loss of water, with desiccation tolerance representing the most extreme ones. The present study provides an analysis of dehydration response mechanisms in Pisum sativum, focusing on early seedling development. The experiments were carried out on 3-day-old seedlings (with radicle up to 20 mm) and on similar seedlings with cotyledons removed, each subjected to 24 h of drying. Stress response was assessed through growth analysis, electrolyte leakage tests, and measurements of ascorbate content and lipid peroxidation products. The results demonstrated that, although dried seedlings underwent oxidative stress, those with cotyledons showed a superior recovery capacity upon rehydration. This was evidenced by their ability to regenerate adventitious roots, compensating for the damage to their primary root system. We further monitored the ABA-dependent stress response by registering the expression of key genes associated with 'response to water deprivation' (ABI3, ABI4, ABI5, HVA22, PER1, LEA14, RD22, LTI65, and LTP4). Drying followed by rehydration resulted in the 40-fold upregulation of ABI5 in the hypocotyls of both cotyledon-removed and intact seedlings, and the 108-fold upregulation of this gene specifically in the roots of seedlings with intact cotyledons. Our results demonstrate an extended role for cotyledons, which involves not only nutrient storage but also the coordination of developmental and stress adaptation under severe water deficit. We propose that the post-germination stage constitutes a 'resilience window' of plant development. During this period, desiccation-protective mechanisms remain partially active in the embryonic axis, supporting the survival of the developing seedling, whereas newly formed tissues derived from the meristems do not acquire the desiccation tolerance characteristic of seeds.
KW - <italic>Pisum sativum</italic>
KW - desiccation tolerance of seeds
KW - drought tolerance of plants
KW - seed germination
KW - seedling development
KW - ABA-dependent stress response
KW - gene expression
KW - PROGRAMMED CELL-DEATH
KW - DESICCATION TOLERANCE
KW - OXIDATIVE STRESS
KW - PLANTS
KW - INDUCTION
KW - MECHANISMS
KW - ASCORBATE
KW - HVA22
KW - ling development
KW - aba-dependent stress response
KW - pisum sativum
KW - 1134
KW - s1021443726600121
KW - 10
KW - doi
KW - seed-
UR - https://link.springer.com/10.1134/S1021443726600121
UR - https://www.mendeley.com/catalogue/6b1c1146-6600-324f-881d-a04ce9abe19e/
U2 - 10.1134/s1021443726600121
DO - 10.1134/s1021443726600121
M3 - статья
VL - 73
SP - 103
JO - Russian Journal of Plant Physiology
JF - Russian Journal of Plant Physiology
SN - 1021-4437
IS - 2
ER -
ID: 151954356