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Dependence of the content of ascorbic acid in apples at the beginning and at the end of storage on the hydrothermal conditions of the growing season

https://doi.org/10.31676/0235-2591-2020-5-24-31

Abstract

The degree of fruit maturity varies from year to year, depending on hydrothermal conditions, and therefore it is impossible to focus only on the calendar dates of harvesting due to their seasonal changes. The keeping capacity and quality of apples have variety specificity and depend, among other factors, on the meteorological conditions of the growing season. The analysis of the quantitative content of ascorbic acid (AA) in the fruits of five new columnar scab immune apple varieties – Vostorg, Zvezda Efira, Poezia, Priokskoye and Sozvezdiye at the beginning and at the end of storage in different years (2012, 2014, 2016, 2018) showed the closest dependence of this parameter on the conditions of humidification of the active growing season (hydro-thermal coefficient (HTC)). The dependence of the AA content in fruits on the hydrothermal coefficient was approximated by the second-order parabola equation. Certain regularity was revealed in the content of AA in fruits depending on HTC. The parabolic curve, reflecting the maximum calculated AA content, increases to maximum values at HTC – 0.85-0.90 at the beginning of fruit storage and 0.79-0.89 at the end of storage. Under droughty conditions, the dependence curve decreases. The comparison of the experimental data with calculated data showed that the correlation relations between them had values from 0.61 to 0.88 at the beginning of storage and 0.40-0.99 at the end. The calculated data can be interpolated, and it makes sense to use HTC as one of the predictor parameters of fruit quality during harvesting and potential keeping capacity of fruits.

About the Authors

A. L. Nikitin
Russian Research Institute of Fruit Crop Breeding
Russian Federation

PhD (Agric.), Senior Researcher, Laboratory for Biochemical and Technological Evaluation of Varieties and Storage,

v. Zhilina, Orel district, Orel region, 302530



M. A. Makarkina
Russian Research Institute of Fruit Crop Breeding
Russian Federation

Dr. Sci. (Agric.), Chief Researcher, Head of the Laboratory for Biochemical and Technological Evaluation of Varieties and Storage,

v. Zhilina, Orel district, Orel region, 302530



References

1. Hyson D. A. A comprehensive review of apples and apple components and their relationship to human health. Adv Nutr. 2011;2(5):408-420. DOI: 10.3945/an.111.000513

2. Wolfe K.,Wu X., Liu R. H. Antioxidant activity of apple peels. J Agric Food Chem. 2003;51(3):609-614. DOI: 10.1021/jf020782a

3. De la Fuente M. Effects of antioxidants on immune system ageing. Eur J Clin Nutr. 2002;56(3):5-8. DOI: 10.1038/sj.ejcn.1601476

4. Hribar J., Vidrih R. Impacts of climate change on fruit physiology and quality. 50th Croatian and 10th 42 International Symposium on Agriculture. 2015:42-45.

5. Sedov E. N., M akarkina M. A., Levgerova N. S. Biochemical and technological characteristic of fruits of apple gene pool. VNIISPK, Orel. 2007:312. (In Russ).

6. Bazba E. G, Belous O. Infl uence of hydrothermal conditions of the growing period on ascorbic acid content in apple fruits. The All-Russian Scientific Conference with International Participation and Schools of Young Scientists “Mechanisms of resistance of plants and microorganisms to unfavorable environmental”. 2018:98-101. DOI: 10.31255/978-5-94797-319-8-98-101

7. Szeto Y. T., Tomlinson B., Benzie I. F. Total antioxidant and ascorbic acid content of fresh fruits and vegetables: implications for dietary planning and food preservation. Br J Nutr. 2002;87(1):55-59. DOI: 10.1079/BJN2001483

8. Nour V., Trandafir I., Ionica M. E. Compositional Characteristics of Fruits of several Apple (Malus domestica Borkh.) Cultivars. Not. Bot. Hort. Agrobot. Cluj. 2010;38(3):228-233.

9. Sedov E. N., Makarkina M. A., Serova Z. M. Production and biological assessment of fruit of scab immune apple varieties breeding at the VNIISPK. Contemporary horticulture. 2015;1:25-29. (In Russ)

10. Pshenichny N. V., Belous O. G. Assessment of the adaptive p otential of columnar Apple varieties in the conditions of the black sea zone of the Centra l subzone of horticulture. Subtropicheskoye i dekorativnoe sadovodstvo. 2012;1:45-51. (In Russ)

11. Lemmens E., Alós E., Rymenants M. et al. Dynamics of ascorbic acid content in apple (Malus x domestica ) during fruit development and storage. Plant Physiology and Biochemistry. 2020:151. DOI: 10.1016/j.plaphy.2020.03.006

12. Nikitin A. L., Makarkina M. A. Recommendations for longterm storage of fruits immune and highly resistant to scab of apples varieties of breeding VNIISPK in fruit storage-refrigerators (for Central Russia). Orel: VNIISPK, 2018:48. (In Russ).

13. Khanin V. F., Khanina N. P. Dependence of the content of Pactive substances and vitamin C in black currant berries on the hydrothermal vegetation regime, Bulletin of scientific information of the I. V. Michurin TSGL. 1990;49:42-47. (In Russ)

14. Sedova Z. A., Gudkovsky V. A. Study of pome fruit keeping capacity. Program and methods of variety study of fruit, berry and nut-bearing crops. Eds Е. N. Sedov, T. P. Ogol’cova. VNIISPK, Orel. 1999:177-183. (In Russ)

15. Lakin G. F. Biometrics. Textbook for universities and pedagogical institutes. Moscow: Vysshaya shkola. 1973:343. (In Russ)]

16. Plokhinsky N. A. Mathematical methods in biology. Educational and methodological guide. Moscow: Izdatel’stvo Moskovskogo universiteta. 1978:267. (In Russ)


Review

For citations:


Nikitin A.L., Makarkina M.A. Dependence of the content of ascorbic acid in apples at the beginning and at the end of storage on the hydrothermal conditions of the growing season. Horticulture and viticulture. 2020;(5):24-31. (In Russ.) https://doi.org/10.31676/0235-2591-2020-5-24-31

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ISSN 0235-2591 (Print)
ISSN 2618-9003 (Online)