Affiliation:
1. Timiryazev Institute of Plant Physiology, Russian Academy of Sciences
Abstract
The effect of photoperiod duration on efficiency of low-temperature hardening was investigated in Arabidopsis thaliana (L.) Heynh. plants, ecotype Col-0. Six-week-old plants were exposed to cold acclimation at a temperature of 2С during 1‒5 days at photoperiods of 0, 8, and 16 h (illuminance of 200 mol/(m2 s)). According to survival data and leakage of electrolytes after test freezing (6C, 24 h), the plants exposed to cold acclimation in the dark did not show frost resistance. The plants hardened in the light (irrespective of the length of photoperiod) considerably improved their frost resistance by the end of the cold-acclimation period. Net photosynthesis/dark respiration ratio in these plants was almost two times greater than in control material (without hardening). The plants exposed to a 16-h-long photoperiod surpassed the type of treatment with 8-h-long illumination both in the highest levels of accumulation of sugars (by almost 40%) and in the rate of reaching these levels in daily dynamics of hardening. It was shown that MDA content transiently rose during the first 24 h of hardening in the light and did not change in the dark, which may point to a signal role of lipid peroxidation products upon cold acclimation. It was discovered that the photoperiod duration affected the formation rate of frost resistance in A. thaliana plants. A more prolonged operation of A. thalianas photosynthetic apparatus at 16-h-long photoperiod considerably accelerated the accumulation of sugars upon cold acclimation and, therefore, hastened development of frost resistance as compared with an 8-h-long photoperiod. It was concluded that rapid formation of frost resistance in A. thaliana requires a combination of low above-zero temperature and 16-h-long photoperiod.
Publisher
The Russian Academy of Sciences
Reference31 articles.
1. Nievola C.C., Carvalho C.P., Carvalho V., Rodrigues E. Rapid responses of plants to temperature changes // Temperature. 2017. V. 4. P. 371. https://doi.org/10.1080/23328940.2017.1377812
2. Larcher W. Physiological Plant Ecology. Ecophysiology and stress physiology of functional groups. Springer: Berlin, Heidelberg, New York, 2003. P. 513.
3. Трунова Т.И. Растение и низкотемпературный стресс. 64-е Тимирязевские чтения. М.: Наука, 2007. 54 с.
4. Theocharis A., Clement C., Barka E.A. Physiological and molecular changes in plants grown at low temperatures // Planta. 2012. V. 235. P. 1091. https://doi.org/10.1007/s00425-012-1641-y
5. Rihan H.Z., Al-Issawi M., Fuller M.P. Advances in physiological and molecular aspects of plant cold tolerance // J. Plant Interact. 2017. V. 12. P. 143. https://doi.org/10.1080/17429145.2017.1308568