Intersectional Hybrids between Darrow’s Blueberry (V. darrowii Camp) and Lingonberry (V. vitis-idaea L.)
Abstract
:1. Introduction
2. Results
2.1. Initial Crosses
2.2. Morphology
2.3. Ploidy Determinations
2.4. Paternity Analysis with SSR of F1s and Backcrosses
2.5. Male Fertility
2.6. Female Fertility
2.7. F1 Cross Analogs
3. Discussion
4. Materials and Methods
4.1. Plant Materials
4.2. Crossing
4.3. Stylar Examinations
4.4. Ploidy Determination
4.5. DNA Analysis
4.6. Female Fertility
4.7. Male Fertility
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Hancock, J.; Lyrene, P.; Finn, C.; Vorsa, N.; Lobos, G. Blueberries and Cranberries. In Temperate Fruit Crop Breeding; Hancock, J.F., Ed.; Springer: Dordrecht, Germany, 2008; pp. 115–150. [Google Scholar] [CrossRef]
- Draper, A.; Hancock, J. Fla 4B: Native blueberry with exceptional breeding value. J. Amer. Pom. Soc. 2003, 57, 138–141. Available online: https://www.pubhort.org/aps/57/v57_n4_a22.htm (accessed on 20 May 2024).
- Bassil, N.; Bidani, A.; Hummer, K.; Rowland, L.J.; Olmstead, J.; Lyrene, P.; Richards, C. Assessing genetic diversity of wild southeastern North American Vaccinium species using microsatellite markers. Genet. Resour. Crop Evol. 2018, 65, 939–950. [Google Scholar] [CrossRef]
- Vander Kloet, S.P. The Genus Vaccinium in North America (No. 1828); Agriculture Canada, Research Branch: Ottawa, ON, Canada, 1988; p. 201. ISBN 9780660130378.
- Ritchie, J.C. A natural hybrid in Vaccinium. I. the structure, performance and chorology of the cross Vaccinium intermedium Ruthe. New Phytol. 1955, 54, 49–67. Available online: https://www.jstor.org/stable/2429449 (accessed on 20 May 2024).
- Ritchie, J.C. A natural hybrid in Vaccinium II. Genetic studies in Vaccinium intermedium Ruthe. New Phytol. 1955, 54, 320–335. Available online: https://www.jstor.org/stable/2429315 (accessed on 20 May 2024).
- Christ, E. Crossbreedings between cranberries (Vaccinium macrocarpon Ait.) and cowberries (Vaccinium vitis-idaea L.). Acta Hort. 1977, 61, 285–294. [Google Scholar] [CrossRef]
- Morozov, O.V. Biologomorpological characteristic of F1 hybrids between Vaccinium vitis-idaea L. × Oxycoccus macrocarpus Pursch. Vesti ANB. Ser. Biol. Nauk. 1993, 2, 18–24. (In Belarusian) [Google Scholar]
- Morozov, O.V. Hybridization of lingonberry (Vaccinium vitis-idaea L.) and European cranberry (Vaccinium palustris Pers.). In Results and Prospects of Berry Growing; Minsk, Belarus, 1999; pp. 10–13. [Google Scholar]
- Zeldin, E.L.; McCown, B.H. Intersectional hybrids of lingonberry (Vaccinium vitis-idaea, section Vitis-idaea) and cranberry (V. macrocarpon, section Oxycoccus) to Vaccinium reticulatum (section Macropelma). Acta Hort. 1997, 446, 235–238. [Google Scholar] [CrossRef]
- Morozov, O.V. The prospects for using Vaccinium uliginosum L. × Vaccinium vitis-idaea L. hybrid in breeding. Int. J. Fruit Sci. 2007, 6, 43–56. [Google Scholar] [CrossRef]
- Marozau, A.; Baranov, O.Y. Hybridity of a plant created in a combination of crossing of (Vaccinium uliginosum L. × V. vitis-idaea L.) × Oxycoccus macrocarpus (Aiton) Pursh at the tetraploid level. Folia Forestalia Polonica 2018, 60, 281–291. [Google Scholar] [CrossRef]
- Ehlenfeldt, M.K.; Polashock, J.J.; Rowland, L.J.; Ogden, E.; Luteyn, J.L. Fertile intersectional hybrids of 4x Andean blueberry (Vaccinium meridionale) and 2x lingonberry (V. vitis-idaea). HortScience 2022, 57, 525–531. [Google Scholar] [CrossRef]
- Rodriguez-Bonilla, L.; Rohde, J.; Matusinec, D.; Zalapa, J. Cross-transferability analysis of SSR markers developed from the American cranberry (Vaccinium macrocarpon Ait.) to other Vaccinium species of agricultural importance. Genet. Resour. Crop Evol. 2019, 66, 1713–1725. [Google Scholar] [CrossRef]
- Cooper, D.C.; Brink, R.A. Seed collapse following matings between diploid and tetraploid races of Lycopersicon pimpinellifolium. Genetics 1945, 30, 376–401. [Google Scholar] [CrossRef]
- Haig, D.; Westoby, M. Genomic imprinting in endosperm: Its effect on seed development in crosses between species, and between different ploidies of the same species, and its implications for the evolution of apomixis. Philos. Trans. R. Soc. B Biol. Sci. 1991, 333, 1–13. Available online: https://www.jstor.org/stable/55515 (accessed on 20 May 2024).
- Dewoody, J.; Nason, J.D.; Hipkins, V.D. Mitigating scoring errors in microsatellite data from wild populations. Mol. Ecol. Notes 2006, 6, 951–957. [Google Scholar] [CrossRef]
- Ehlenfeldt, M.K.; Hanneman, R.E. Genetic control of Endosperm Balance Number (EBN): Three additive loci in a threshold-like system. Theor. Appl. Genet. 1988, 75, 825–832. [Google Scholar] [CrossRef]
- Michurin, L.V. Selected Works; English Edit.; State Publishing House of Agricultural Literature: Moscow, Russia, 1950. [Google Scholar]
- Tsitsin, N.V. (Ed.) Wide Hybridization of Plants. In Proceedings of the Conference on Wide Hybridization of Plants and Animals; Collection of Reports; Akademiya Nauk SSSR: Moscow, Russia, 1960; (Translated from Russian and published for the National Science Foundation and the U.S. Department of Agriculture by the Israel Program for Scientific Translation, Jerusalem in 1962). [Google Scholar]
- Wenslaff, T.F.; Lyrene, P.M. The use of mentor pollination to facilitate wide hybridization in blueberry. HortScience 2000, 35, 114–115. [Google Scholar] [CrossRef]
- Lyrene, P.M. First report of Vaccinium arboretum hybrids with cultivated highbush blueberry. HortScience 2011, 46, 563–566. [Google Scholar] [CrossRef]
- Lyrene, P.M. Phenotype and fertility of intersectional hybrids between tetraploid highbush blueberry and colchicine-treated V. stamineum. HortScience 2016, 51, 15–22. [Google Scholar] [CrossRef]
- North Carolina Agricultural Research Station; U.S. Department of Agriculture. Notice to Nurserymen and Horticulturalists Relative to the Naming and Release of the New Ornamental Blueberry Cultivars Everblue and Johnblue; Cultivar Release Notice; North Carolina Agricultural Research Station: Raleigh, NC, USA; U.S. Department of Agriculture: Washington, DC, USA, 1980.
- U.S. Department of Agriculture. Notice to Nurserymen of the Naming and Release for Propagation of Native Blue, a New Evergreen Ornamental Blueberry; Cultivar Release Notice; U.S. Department of Agriculture: Washington, DC, USA, 2004.
- Zillmer, A. Account of my three types of Vaccinium vitis-idaea ‘Erntedank’-‘Erntekrone’-‘Erntesegen’. Acta Hort. 1985, 165, 295–297. [Google Scholar] [CrossRef]
- GRIN Global (V. vitis-idaea ‘Sanna’ PI 618093). Available online: https://npgsweb.ars-grin.gov/gringlobal/accessiondetail?id=1011367 (accessed on 4 October 2022).
- Doyle, J.J.; Doyle, J.L. A Rapid DNA Isolation Procedure for Small Quantities of Fresh Leaf Tissue. Phytochem. Bull. 1987, 19, 11–15. Available online: https://webpages.charlotte.edu/~jweller2/pages/BINF8350f2011/BINF8350_Readings/Doyle_plantDNAextractCTAB_1987.pdf (accessed on 20 May 2024).
- Schlautman, B.; Fajardo, D.; Bougie, T.; Wiesman, E.; Polashock, J.; Vorsa, N.; Steffan, S.; Zalapa, J. Development and validation of 697 novel polymorphic genomic and EST-SSR markers in the American cranberry (Vaccinium macrocarpon Ait.). Molecules 2015, 20, 2001–2013. [Google Scholar] [CrossRef] [PubMed]
- Schuelke, M. An economic method for the fluorescent labeling of PCR fragments. Nat. Biotechnol. 2000, 18, 233–234. [Google Scholar] [CrossRef] [PubMed]
- Brownstein, M.J.; Carpten, J.D.; Smith, J.R. Modulation of non-templated nucleotide addition by Taq DNA polymerase: Primer modifications that facilitate genotyping. BioTechniques 1996, 20, 1004–1010. [Google Scholar] [CrossRef] [PubMed]
- Jensen, W.A. Botanical Histochemistry; W.H. Freeman and Company: San Francisco, CA, USA, 1962; 408p. [Google Scholar]
Genotypes | DNA Content (pg) |
---|---|
Ploidy standards | |
2x V. darrowii ‘Fla 4B’ | 1.15 |
4x V. corymbosum ‘Duke’ | 2.08 |
6x V. virgatum ‘Powderblue’ | 3.51 |
F1 hybrids and parents | |
2x V. darrowii ‘Johnblue’ | 1.10 |
2x V. vitis-idaea ‘Red Sunset’ | 1.05 |
F1 ‘Johnblue’ × ‘Red Sunset’ hybrids | |
mean (n = 31) | 1.09 |
std. dev. | 0.037 |
range | 0.99–1.17 |
Genotype | SCF275d | SCF804 | SCF9815 | SCF37628 | SCF132922 | 172672K70 |
---|---|---|---|---|---|---|
V. darrowii ‘Johnblue’ (JB) | 137, 151 | 222, 226 | 179 | 255, 268 | 186, 188 | 335, 361 |
V. vitis-idaea ‘Red Sunset’ (RS) | 151, 169 | 244 | 187, 189 | 253 | 169, 171 | 331, 333 |
V. darrowii ‘Native Blue’ (NB) | 133, 151 | 224, 230 | 179 | 263 | 174, 186 | 335, 381 |
V. vitis-idaea ‘Sanna’ (SAN) | 171, 173 | 223, 225 | 187, 195 | 253 | 176 | 331, 333 |
US 2535-A (JB × RS clone A) | 137, 151 | 222, 244 | 179, 187 | 253, 268 | 169, 186 | 333, 335 |
Johnblue × Red Sunset (F1) hybrids | ||||||
US 2535-A | 137, 151 | 222, 244 | 179, 187 | 253, 268 | 169, 186 | 333, 335 |
#1 | 137, 151 | 222, 244 | 179, 187 | 253, 268 | 169, 186 | 333, 335 |
#2 | 137, 151 | 226, 244 | 179, 189 | 253, 255 | 171, 186 | 333, 335 |
#3 | 151 | 226, 244 | 179, 189 | 253, 255 | 169, 186 | 333, 335 |
#4 | 137, 151 | 226, 244 | 179, 189 | 253, 268 | 169, 186 | 331, 335 |
#5 | 137, 151 | 226, 244 | 179, 189 | 253, 255 | 169, 188 | 333, 361 |
#6 | 151 | 226, 244 | 179, 187 | 253, 255 | 169, 188 | 333, 361 |
#7 | 151, 169 | 226, 244 | 179, 187 | 253, 268 | 171, 188 | 333, 361 |
#8 | 151 | 222, 244 | 179, 189 | 253, 255 | 171, 186 | 331, 335 |
#11 | 137, 151 | 222, 244 | 179, 187 | 253, 268 | 169, 186 | 333, 335 |
#12 | 151, 169 | 222, 244 | 179, 189 | 253, 268 | 169, 188 | 331, 361 |
#13 | 137, 151 | 226, 244 | 179, 187 | 253, 268 | 171, 186 | 331, 361 |
#14 | 137, 151 | 226, 244 | 179, 189 | 253, 268 | 169 * | 331, 335 |
#15 | 137, 169 | 222, 244 | 179, 187 | 253, 255 | 171, 188 | 331, 361 |
#17 | 137, 151 | 226, 244 | 179, 187 | 253, 255 | 171 * | 333, 335 |
#19 | 151 | 226, 244 | 179, 189 | 253, 268 | 171, 186 | 331, 335 |
#21 | 151 | 222, 244 | 179, 189 | 253, 255 | 169, 188 | 331, 335 |
#22 | 151 | 226, 244 | 179, 189 | 253, 268 | 171, 186 | 331, 361 |
#24 | 151, 169 | 226, 244 | 179, 189 | 253, 268 | 169, 188 | 331, 335 |
#25 | 151 | 226, 244 | 179, 189 | 253, 268 | 169, 188 | 331, 335 |
#26 | 137, 151 | 226, 244 | 179, 189 | 253, 255 | 169 * | 331, 361 |
#27 | 137, 151 | 222, 244 | 179, 187 | 253, 268 | 169, 188 | 331, 335 |
#28 | 151, 169 | 226, 244 | 179, 187 | 253, 268 | 169, 186 | 331, 335 |
#29 | 151, 169 | 226, 244 | 179, 187 | 253, 255 | 171, 188 | 331, 361 |
#30 | 137, 151 | 226, 244 | 179, 187 | 253, 268 | 171, 188 | 331, 335 |
#31 | 137, 169 | 226, 244 | 179, 187 | 253, 255 | 171, 188 | 333, 361 |
#33 | 151 | 222, 244 | 179, 187 | 253, 255 | 169 * | F |
Fruit | |||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Diameter | Seed Quality | ||||||||||||
Pedigree | Pollinations. | # Fruit | (mm) | G | G-F | F | F-P | P | Seed/Pollination z | ||||
US 2535-A | × | US 2535-A | 97 | 5 | 7–8 | 0 | 0 | 0 | 0 | 0 | 0.0 | ||
US 2535-A | × | 2x | V. darrowii | ‘Johnblue’ | 24 | 5 | 6–6.5 | 0 | 0 | 0 | 0 | 1 | 0.0 |
” | × | ” | ” | ‘Native Blue’ | 24 | 3 | 7.5–8.5 | 0 | 1 | 0 | 2 | 0 | 0.04 |
” | × | 2x | V. vitis-idaea | ‘Red Sunset’ | 53 | 12 | 5–8.5 | 1 | 0 | 0 | 0 | 0 | 0.02 |
” | × | ” | ” | ‘Erntedank’ | 51 | 5 | 7–8 | 0 | 0 | 0 | 0 | 1 | 0.0 |
” | × | ” | ” | ‘Sanna’ | 12 | 1 | 8.5 | 0 | 0 | 1 | 0 | 0 | 0.08 |
Total | 261 | 31 | 1 | 1 | 1 | 2 | 2 | Avg. = 0.01 |
Fruit | |||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Diameter | Seed Quality | Seed/ | F1 | F1/ | |||||||||||||
Pedigree | Pollinations | Fruit | (mm) | G | G-F | F | F-P | P | Pollination z | Hybrids | Seed | ||||||
2x | V. darrowii | ‘Fla 4B’ | × | 2x | V. vitis-idaea | ‘Red Sunset’ | 25 | 13 | 5–8.5 | 0 | 5 | 12 | 0 | 0 | 0.7 | 1 | 0.06 |
2x | V. darrowii | ‘Johnblue’ | × | 2x | V. vitis-idaea | ‘Red Sunset’ | 21 | 13 | 6–8 | 1 | 48 | 4 | 0 | 0 | 2.5 | 3 | |
” | ” | ” | × | ” | ” | ‘Magenta’ | 13 | 13 | 5–8 | 5 | 39 | 0 | 2 | 0 | 3.4 | 7 | 0.07 |
” | ” | ” | × | ” | ” | ‘Sanna’ | 11 | 11 | 5–8 | 6 | 32 | 1 | 0 | 0 | 3.5 | 0 | |
2x | V. darrowii | ‘Native Blue’ | × | 2x | V. vitis-idaea | ‘Red Sunset’ | 11 | 10 | 6–11.5 | 16 | 0 | 2 | 0 | 0 | 1.6 | 3 | |
” | ” | ” | × | ” | ” | ‘Magenta’ | 13 | 13 | 6–8 | 2 | 1 | 0 | 0 | 1 | 0.2 | 2 | 0.32 |
” | ” | ” | × | ” | ” | ‘Sanna’ | 12 | 11 | 6–8.5 | 16 | 3 | 0 | 0 | 0 | 1.6 | 8 | |
Total | 106 | 84 | 46 | 128 | 19 | 2 | 1 | Avg. = 1.8 |
Genotype | SCF275d | SCF804 | SCF9815 | SCF37628 | SCF132922 | 172672K70 |
---|---|---|---|---|---|---|
V. darrowii ‘Fla 4B’ | 141, 151 | 222, 224 | 179 | 255, 263 | 174, 186 | 361, 381 |
V. darrowii ‘Johnblue’ | 137, 151 | 222, 226 | 179 | 255, 268 | 186, 188 | 335, 361 |
V. darrowii ‘Native Blue’ | 133, 151 | 224, 230 | 179 | 263 | 174, 186 | 335, 381 |
V. vitis-idaea ‘Red Sunset’ | 151, 169 | 244 | 187, 189 | 253 | 169, 171 | 331, 333 |
V. vitis-idaea ‘Magenta’ | 171, 173 | 223, 225 | 187, 195 | 253 | 176 | 331, 333 |
V. vitis-idaea ‘Sanna’ | 171, 173 | 223, 225 | 187, 195 | 253 | 176 | 331, 333 |
US 2535-A × Native Blue (BC1) | 151 | 222, 230 | 179 | 263, 268 | 174, 186 | 333, 335 |
US 2535-A × Sanna (BC1) | 137, 171 | 222, 225 | 179, 195 | 253, 268 | 186 * | 333, 335 |
Fla 4B × Red Sunset (F1) | ||||||
US 2649 | 151, 169 | 224, 244 | 179, 189 | 253, 263 | 171, 186 | 333, 361 |
Johnblue × Red Sunset (F1) | ||||||
US 2650-1 | 151, 169 | 226, 244 | 179, 187 | 253, 268 | 169, 188 | 331, 361 |
(self) ** | 137, 151 | 222 | 179 | 255 | 186, 188 | F |
US 2650-2 | 137, 169 | 226, 244 | 179, 187 | 253, 255 | 186 * | 333, 335 |
Johnblue × Magenta (F1) | ||||||
US 2651-1 | 137, 173 | 223, 226 | 179, 195 | 253, 268 | 188 * | 331, 335 |
(self) ** | 137 | 222, 226 | 179 | 255, 268 | 186 | 335 |
US 2651-2 | 151, 173 | 226 * | 179, 195 | 253, 268 | 176, 188 | 331, 361 |
US 2651-3 | 137, 171 | 222 * | 179, 195 | F | F | F |
US 2651-4 | 137, 171 | 222, 223 | 179, 187 | 253, 268 | 176, 188 | 333, 335 |
US 2651-5 | 151, 171 | 223, 226 | 179, 187 | 253, 255 | 176, 188 | 331, 361 |
(self) ** | 137, 151 | 222, 226 | 179 | 255 | 186, 188 | 361 |
US 2651-6 | 137, 171 | 226 * | 179, 187 | 253, 268 | 188 * | 331, 361 |
US 2651-7 | 151, 171 | 222, 225 | 179, 187 | 253, 268 | 176, 186 | 333, 361 |
(self) ** | F | 226 | 179 | F | F | F |
(self) ** | 137 | 226 | 179 | 255, 268 | 186, 188 | 335 |
Johnblue × Sanna (F1) | ||||||
(self) ** | 151 | 222 | 179 | 255, 268 | 188 | 335 |
(self) ** | 137, 151 | 226 | 179 | 255, 268 | 186 | 335 |
Native Blue × Red Sunset (F1) | ||||||
US 2652-1 | 133, 151 | 224, 244 | 179, 189 | 253, 263 | 171, 174 | 331, 335 |
US 2652-2 | 133, 151 | 230, 244 | 179, 189 | 253, 263 | 171, 174 | 333, 381 |
US 2652-3 | 133, 169 | 224, 244 | 179, 189 | 253, 263 | 169, 186 | 331, 381 |
Native Blue × Magenta (F1) | ||||||
US 2653-1 | 133, 173 | 223, 230 | 179, 195 | 253, 263 | 176, 186 | 331, 335 |
US 2653-2 | 133, 171 | 225, 230 | 179, 187 | 253, 263 | 174, 176 | 331, 335 |
Native Blue × Sanna (F1) | ||||||
US 2654-1 | 133, 173 | 224 * | 179, 195 | F | 186 * | 333, 335 |
US 2654-2 | 151, 171 | 224 * | 179, 195 | 253, 263 | 174 * | 333, 381 |
US 2654-3 | 133, 171 | 223, 230 | 179, 195 | 253, 263 | 174 * | 331, 335 |
US 2654-4 | 133, 171 | 225, 230 | 179, 195 | 253, 263 | 186 * | 331, 381 |
US 2654-5 | 151, 173 | 225, 230 | 179, 195 | 253, 263 | 174 * | 331, 381 |
US 2654-6 | 151, 173 | 223, 230 | 179, 187 | 253, 263 | 186 * | 331, 381 |
US 2654-7 | 133, 173 | 223, 230 | 179, 195 | 253, 263 | 186 * | 333, 381 |
US 2654-8 | 151, 173 | 224 * | 179, 195 | 253, 263 | 174 * | 331, 381 |
Species and Genotype | Source [Reference] |
---|---|
V. darrowii (2n = 2x = 24) | |
‘Johnblue‘ | NC ARS and USDA [24] |
‘Everblue’ | NC-ARS and USDA [24] |
‘Native Blue’ | USDA [25] |
Fla 4B (Florida 4B) | Draper and Hancock [2] |
V. vitis-idaea (2n = 2x = 24) | |
‘Red Sunset’ | Hartmann’s Plant Co., Lakota, MI selection |
’Erntedank’ | Zillmer [26] |
‘Sanna’ | Sweden (GRIN Global) [27] |
‘Magenta’ | Swedish University of Agricultural Sciences |
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Ehlenfeldt, M.K.; Bassil, N.; King, R.; Zalapa, J.; de la Torre, F.; Luteyn, J.L. Intersectional Hybrids between Darrow’s Blueberry (V. darrowii Camp) and Lingonberry (V. vitis-idaea L.). Plants 2024, 13, 1572. https://doi.org/10.3390/plants13111572
Ehlenfeldt MK, Bassil N, King R, Zalapa J, de la Torre F, Luteyn JL. Intersectional Hybrids between Darrow’s Blueberry (V. darrowii Camp) and Lingonberry (V. vitis-idaea L.). Plants. 2024; 13(11):1572. https://doi.org/10.3390/plants13111572
Chicago/Turabian StyleEhlenfeldt, Mark K., Nahla Bassil, Ryan King, Juan Zalapa, Fernando de la Torre, and James L. Luteyn. 2024. "Intersectional Hybrids between Darrow’s Blueberry (V. darrowii Camp) and Lingonberry (V. vitis-idaea L.)" Plants 13, no. 11: 1572. https://doi.org/10.3390/plants13111572
APA StyleEhlenfeldt, M. K., Bassil, N., King, R., Zalapa, J., de la Torre, F., & Luteyn, J. L. (2024). Intersectional Hybrids between Darrow’s Blueberry (V. darrowii Camp) and Lingonberry (V. vitis-idaea L.). Plants, 13(11), 1572. https://doi.org/10.3390/plants13111572