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Evaluation of the budbreak timing in walnut cultivars and breeding forms among the Kuban germplasm, and validation of the trait-related SSR-markers

https://doi.org/10.30901/2227-8834-2025-1-158-169

Abstract

Background. Walnut (Juglans regia L.) is the most widespread species within the genus Juglans. Late spring frosts can significantly reduce its yield. Development of cultivars that enter the growing season later helps to avoid the death of young buds. Earlier, during genetic studies, the SSR markers JRHR209732 and CUJRBO12 linked to the QTL of the “bud bursting time” character were identified. The objective of this study was to assess the budbreak timing in domestic cultivars and elite forms from the Krasnodar gene pool, as well as to test and validate the markers JRHR209732 and CUJRB012 linked to the locus controlling late bud bursting in walnut genotypes with relatively small differences in budbreak timing.

Materials and methods. The material of the study included 32 elite breeding forms from the local gene pool, 3 domestic cultivars, and 2 cultivars of foreign origin. Phenological assessment of the budbreak time was carried out for three years (2022–2024). Genotyping of 35 accessions was performed using the SSR markers JRHR209732 and CUJRBO12. The sizes of PCR products of target marker alleles were assessed on a NANOPHOR 05 genetic analyzer.

Results. Phenological assessment helped to identify accessions 17-5-5 and ‘Oven’ with the latest start of the growing season in three years of observations. Eight genotypes were classified as late in two seasons – they are also valuable for breeding. In 2023 and 2024, the budbreak was observed to occur earlier than in 2022. The effect of the mean monthly temperature in March played a decisive role in entering the phase when the budbreak started. Comparison of the SSR genotyping data with the results of the phenological assessment made it possible to reliably validate the allelic variants of the JRHR20973 and CUJRBO12 markers, characteristic of the accessions with early and late budbreaks among the walnut gene pool maintained in southern Russia.

About the Authors

I. I. Suprun
North Caucasian Federal Scientific Center of Horticulture, Viticulture, Wine-making
Russian Federation

Ivan I. Suprun, Cand. Sci. (Biology), Head of a Functional Scientific Center

39 40 let Pobedy St., Krasnodar 350901



E. A. Al-Nakib
North Caucasian Federal Scientific Center of Horticulture, Viticulture, Wine-making
Russian Federation

Ekaterina A. Al-Nakib, Associate Researcher

39 40 let Pobedy St., Krasnodar 350901



I. V. Stepanov
North Caucasian Federal Scientific Center of Horticulture, Viticulture, Wine-making
Russian Federation

Ilya V. Stepanov, Associate Researcher

39 40 let Pobedy St., Krasnodar 350901



E. V. Lobodina
North Caucasian Federal Scientific Center of Horticulture, Viticulture, Wine-making
Russian Federation

Elena V. Lobodina, Researcher

39 40 let Pobedy St., Krasnodar 350901



S. N. Shcheglov
Kuban State University
Russian Federation

Sergey N. Shcheglov, Dr. Sci. (Biology), Professor, Associate Professor

149 Stavropolskaya St., Krasnodar 350040



References

1. Akca Y., Ozongun S. Selection of late leafing, late flowering, laterally fruitful walnut (Juglans regia) types in Turkey. New Zealand Journal of Crop and Horticultural Science. 2004;32(4):337-342. DOI: 10.1080/01140671.2004.9514313

2. Aradhya M.K., Velasco D., Wang J.R., Ramasamy R., You F.M., Leslie C. et al. A fine-scale genetic linkage map reveals genomic regions associated with economic traits in walnut (Juglans regia). Plant Breeding. 2019;138(5):635-646. DOI: 10.1111/pbr.12703

3. Baby J., Thomas T., Thomas D. Molecular markers for harnessing heterosis. In: N. Kumar (ed.). Molecular Marker Techniques: A Potential Approach of Crop Improvement. Singapore: Springer Nature; 2023. p.1-24. DOI: 10.1007/978-98199-1612-2_1

4. Bernard A., Lheureux F., Dirlewanger E. Walnut: past and future of genetic improvement. Tree Genetics and Genomes. 2018;14(1):1-28. DOI: 10.1007/s11295-017-1214-0

5. Bernard A., Marrano A., Donkpegan A., Brown P.J., Leslie C.A., Neale D.B. et al. Association and linkage mapping to unravel genetic architecture of phenological traits and lateral bearing in Persian walnut (Juglans regia L.). BMC Genomics. 2020;21(1):203. DOI: 10.1186/s12864-020-6616-y

6. Bozhuyuk M.R., Ercisli S., Orhan E., Koc A. Determination of the genetic diversity of walnut (Juglans regia L.) cultivar candidates from Northeastern Turkey using SSR markers. Mitteilungen Klosterneuburg. 2020;70:269-277.

7. Chen L.N., Ma Q.G., Chen Y.K., Wang B.Q., Pei D. Identification of major walnut cultivars grown in China based on nut phenotypes and SSR markers. Scientia Horticulturae. 2014;168:240-248. DOI: 10.1016/j.scienta.2014.02.004

8. Chmielewski F.M., Rötzer T. Response of Tree Phenology to Climate Change across Europe. Agricultural and Forest Meteorology. 2001;108(2):101-112. DOI: 10.1016/S0168-1923(01)00233-7

9. Črepinšek Z., Solar M., Štampar F., Solar A. Shifts in walnut (Juglans regia L.) phenology due to increasing temperatures in Slovenia. The Journal of Horticultural Science and Biotechnology. 2009;84(1):59-64. DOI: 10.1080/14620316.2009.11512480

10. Dangl G.S., Woeste K., Aradhya M.K., Koehmstedt A., Simon C., Potter D. et al. Characterization of 14 microsatellite markers for genetic analysis and cultivar identification of walnut. Journal of the American Society for Horticultural Science. 2005;130(3):348-354. DOI: 10.21273/JASHS.130.3.348

11. Doğan Y., Kafkas S., Sütyemez M., Akça Y., Türemiş N. Assessment and characterization of genetic relationships of walnut (Juglans regia L.) genotypes by three types of molecular markers. Scientia Horticulturae. 2014;168:81-87. DOI: 10.1016/j.scienta.2014.01.024

12. Dwivedi S.L., Crouch J.H., Mackill D.J., Xu Y., Blair M.W., Ragot M. et al. The molecularization of public sector crop breeding: progress, problems, and prospects. Advances in Agronomy. 2007;95:163-318. DOI: 10.1016/S0065-2113(07)95003-8

13. Emilia M., Spada M., Beritognolo I., Cannata F. Differentiation of walnut hybrids (Juglans nigra L. × Juglans regia L.) through RAPD markers. Acta Horticulturae. 1997;442:4352. DOI: 10.17660/ActaHortic.1997.442.4

14. Eremin G.V. (ed.). Contemporary methodological aspects of the organization of the breeding process in horticulture and viticulture (Sovremennye metodologicheskiye aspekty organizatsii selektsionnogo protsessa v sadovodstve i vinogradarstve). Krasnodar; 2012. [in Russian.

15. Fallah M., Paizila A., Karcı H., Arab M.M., Sarikhani S., Suprun I. et al. Validation and implementation of marker-assisted selection (MAS) for the leafing date trait in Persian walnut populations from Iran. Euphytica. 2024;220(2):25. DOI: 10.1007/s10681-023-03281-3

16. Fallah M., Vahdati K., Hasani D., Rasouli M., Sarikhani S. Breeding of Persian walnut: Aiming to introduce late-leafing and early-harvesting varieties by targeted hybridization. Scientia Horticulturae. 2022;295:110885. DOI: 10.1016/j.scienta.2022.110885

17. Itoo H., Shah R.A., Qurat S., Jeelani A., Khursheed S., Bhat Z.A. et al. Genome-wide characterization and development of SSR markers for genetic diversity analysis in northwestern Himalayas Walnut (Juglans regia L.). 3 Biotech. 2023;13(5):136. DOI: 10.1007/s13205-023-03563-6

18. Karimi R., Ershadi A., Vahdati K., Woeste K. Molecular characterization of Persian walnut populations in Iran with microsatellite markers. HortScience. 2010;45(9):1403-1406. DOI: 10.21273/HORTSCI.45.9.1403

19. Kavosi H., Khadivi A. The selection of superior late-leafing genotypes of Persian walnut (Juglans regia L.) among seedling originated trees based on pomological characterizations. Scientia Horticulturae. 2021;288:110299. DOI: 10.1016/j.scienta.2021.110299

20. Kefayati S., Ikhsan A.S., Sutyemez M., Paizila A., Topçu H., Bükücü Ş.B. et al. First simple sequence repeat-based genetic linkage map reveals a major QTL for leafing time in walnut (Juglans regia L.). Tree Genetics and Genomes. 2019;15(1):13. DOI: 10.1007/s11295-019-1318-9

21. Khadivi A., Montazeran A., Yadegari P. Superior spring frost resistant walnut (Juglans regia L.) genotypes identified among mature seedling origin trees. Scientia Horticulturae. 2019;253:147-153. DOI: 10.1016/j.scienta.2019.04.041

22. Khalafyan A.A. Statistica 6. Statistical data analysis (Statistica 6. Statisticheskiy analiz dannykh). Moscow: Binom; 2008. [in Russian].

23. Khalafyan A.A. Statistica 6.0. Statistical data analysis (Statistica 6. Statisticheskiy analiz dannykh). Krasnodar; 2005. [in Russian].

24. Kramer K., Ducousso A., Gömöry D., Hansen J.K., Ionita L., Liesebach M. et al. Chilling and forcing requirements for foliage bud burst of European beech (Fagus sylvatica L.) differ between provenances and are phenotypically plastic. Agricultural and Forest Meteorology. 2017;234-245:172181. DOI: 10.1016/j.agrformet.2016.12.002

25. Lakin G.F. Biometrics: a manual for biological university specialties (Biometriya: uchebnoye posobiye dlya biologicheskikh spetsialnostey vuzov). 4th ed. Moscow: Vysshaya Shkola; 1990. [in Russian].

26. Magige E.A., Fan P.Z., Wambulwa M.C., Milne R., Wu Z.Y., Luo Y.H. et al. Genetic diversity and structure of Persian walnut (Juglans regia L.) in Pakistan: implications for conservation. Plants. 2022;11(13):1652. DOI: 10.3390/plants11131652

27. Marrano A., Sideli G.M., Leslie C.A., Cheng H., Neale D.B. Deciphering of the genetic control of phenology, yield and pellicle color in Persian walnut (Juglans regia L.). Frontiers in Plant Science. 2019;10:1140. DOI: 10.3389/fpls.2019.01140

28. Najafi F., Mardi M., Fakheri B., Pirseyedi S.M., Mehdinejad N., Farsi M. Isolation and characterization of novel microsatellite markers in walnut (Juglans regia L.). American Journal of Plant Sciences. 2014;5(3):409-415. DOI: 10.4236/ajps.2014.53054

29. Peakall R., Smouse P.E. GenALEx 6.5: Genetic analysis in Excel. Population genetic software for teaching and research – an update. Bioinformatics. 2012;28(19):25372539. DOI: 10.1093/bioinformatics/bts460

30. Rogers S.O., Bendich A.J. Extraction of DNA from milligram amounts of fresh, herbarium and mummified plant tissues. Plant Molecular Biology. 1985;5(2):69-76. DOI: 10.1007/ BF00020088

31. Sedov E.N., Ogoltsova T.P. (eds). Program and methodology of variety studies for fruit, berry and nut crops (Programma i metodika sortoizucheniya plodovykh, yagodnykh i orekhoplodnykh kultur). Orel: VNIISPK; 1999. [in Russian].

32. Soleimani A., Rabiei V., Hassani D., Mozaffari M.R. Phenological characteristics of walnut (Juglans regia L.) genotypes under environmental conditions of Karaj in Iran. Crop Breeding Journal. 2019;9(2):11-22. DOI: 10.22092/CBJ.2020.128539.1045

33. Soveili S., Khadivi A. Selecting the superior late-leafing genotypes of Persian walnut (Juglans regia L.) using morphological and pomological evaluations. BMC Plant Biology. 2023;23(1):379. DOI: 10.1186/s12870-023-04386-6

34. Tenche-Constantinescu A.M., Lalescu D.V., Popescu S., Sarac I., Petolescu C., Camen D. et al. Juglans regia as urban trees: genetic diversity and walnut kernel quality assessment. Horticulturae. 2024;10(10):1027. DOI: 10.3390/horticulturae10101027

35. UPOV Guidelines for the conduct of tests for distinctness, uniformity and stability. Walnut (Juglans regia L.). Geneva: UPOV; 1989.

36. Wani A.W., Hassan G.I., Bhat K.M., Ahmad M., Siddiqui M.H., Kumar S. et al. Utilizing SSR markers to examine the population structure and molecular genetic diversity of walnut (Juglans regia L.) genotypes in the Northwestern Himalayan region of Jammu and Kashmir. BioResources. 2024;19(3):4213-4237. DOI: 10.15376/biores.19.3.4213-4237

37. Zaitsev G.N. Mathematics in experimental botany (Matematika v eksperimentalnoy botanike). Moscow: Nauka; 1990. [in Russian].


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For citations:


Suprun I.I., Al-Nakib E.A., Stepanov I.V., Lobodina E.V., Shcheglov S.N. Evaluation of the budbreak timing in walnut cultivars and breeding forms among the Kuban germplasm, and validation of the trait-related SSR-markers. Proceedings on applied botany, genetics and breeding. 2025;186(1):158-169. (In Russ.) https://doi.org/10.30901/2227-8834-2025-1-158-169

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ISSN 2227-8834 (Print)
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