[1]

Callipo P, Schmidt M, Strack T, Robinson H, Vasudevan A, et al. 2025. Harnessing clonal diversity in grapevine: from genomic insights to modern breeding applications. Theoretical and Applied Genetics 138:196

doi: 10.1007/s00122-025-04986-w
[2]

Xi XJ, Gutierrez B, Zha Q, Yin XJ, Sun PP, et al. 2023. Optimization of in vitro embryo rescue and development of a Kompetitive Allele-Specific PCR (KASP) marker related to stenospermocarpic seedlessness in grape (Vitis vinifera L.). International Journal of Molecular Sciences 24:17350

doi: 10.3390/ijms242417350
[3]

Liu BY, Sun YL, Li XY, Guo DH, Zhao LP, et al. 2023. β-ketoacyl-CoA synthase improves the drought tolerance of root restricted grown grapevines by regulating the cuticular wax biosynthesis. Scientia Horticulturae 307:111494

doi: 10.1016/j.scienta.2022.111494
[4]

Wang ZL, Xue TT, Gao FF, Zhang L, Han X, et al. 2021. Intraspecific recurrent selection in V. vinifera: an effective method for breeding of high quality, disease-, cold-, and drought-resistant grapes. Euphytica 217:111

doi: 10.1007/s10681-021-02851-7
[5]

Koyama K, Kono A, Ban Y, Bahena-Garrido SM, Ohama T, et al. 2022. Genetic architecture of berry aroma compounds in a QTL (quantitative trait loci) mapping population of interspecific hybrid grapes (Vitis labruscana × Vitis vinifera). BMC Plant Biology 22:458

doi: 10.1186/s12870-022-03842-z
[6]

Margaryan K, Töpfer R, Gasparyan B, Arakelyan A, Trapp O, et al. 2023. Wild grapes of Armenia: unexplored source of genetic diversity and disease resistance. Frontiers in Plant Science 14:1276764

doi: 10.3389/fpls.2023.1276764
[7]

Carratore C, Amato A, Pezzotti M, Bellon O, Zenoni S. 2026. Genome editing and integrative breeding strategies for climate-resilient grapevines and sustainable viticulture. Horticulturae 12(1):117

doi: 10.3390/horticulturae12010117
[8]

Amato A, Cardone MF, Ocarez N, Alagna F, Ruperti B, et al. 2022. VviAGL11 self-regulates and targets hormone- and secondary metabolism-related genes during seed development. Horticulture Research 9:uhac133

doi: 10.1093/hr/uhac133
[9]

Martín-Gómez JJ, Rodríguez-Lorenzo JL, del Pozo DG, de Santamaría FCS, Muñoz-Organero G, et al. 2024. Seed morphological analysis in species of Vitis and relatives. Horticulturae 10(3):285

doi: 10.3390/horticulturae10030285
[10]

Lallai A, Cuena-Lombraña A, Sarigu M, Meloni F, Saifan SM, et al. 2024. Domestic grape germination behaviour: the 'Chardonnay' and 'Syrah' international cultivars’s study case. Revista Ciência Agronômica 55:e20228629

doi: 10.5935/1806-6690.20240003
[11]

Wang ZL, Hui M, Shi XQ, Wu D, Wang Y, et al. 2022. Characteristics of the seed germination and seedlings of six grape varieties (V. vinifera). Plants 11(4):497

doi: 10.3390/plants11040479
[12]

Liu ZH, Song J, Wang Y, Yan AL, Wang XY, et al. 2025. Advancing grape breeding through an in vitro embryo germination technique without cold stratification. Horticultural Plant Journal 11(4):1483−1492

doi: 10.1016/j.hpj.2024.04.012
[13]

Alzohairy SA, Londo JP, Heinitz C, Naegele RP. 2023. Cultivar and maternal plant environment influence cold stratification requirements and germination rates of Vitis Species. HortScience 58(5):515−524

doi: 10.21273/hortsci17002-22
[14]

Peng WJ, Liang FC, Chen ZYF, Gong ZH, Zhang MY, et al. 2024. Genomic signals of divergence and hybridization between a wild grape (Vitis adenoclada) and domesticated grape ('Shine Muscat'). Fruit Research 4:e028

doi: 10.48130/frures-0024-0022
[15]

Puglisi D, Casas GL, Ferlito F, Nicolosi E, Guardo MD, et al. 2022. Parents' selection affects embryo rescue, seed regeneration and the heredity of seedless trait in table grape breeding programs. Agriculture 12:1096

doi: 10.3390/agriculture12081096
[16]

Magon G, Rosa VD, Martina M, Falchi R, Acquador A, et al. 2023. Boosting grapevine breeding for climate-smart viticulture: from genetic resources to predictive genomics. Frontiers in Plant Science 14:1293186

doi: 10.3389/fpls.2023.1293186
[17]

Kowalczyk BA, Bieniasz M, Kostecka-Gugała A. 2022. Flowering biology of selected hybrid grape cultivars under temperate climate conditions. Agriculture 12(5):655

doi: 10.3390/agriculture12050655
[18]

Zhao J, He YQ, Zhang HS, Wang ZF. 2024. Advances in the molecular regulation of seed germination in plants. Seed Biology 3:e006

doi: 10.48130/seedbio-0024-0005
[19]

Kara Z, Yazar K, Doğan O, Vergili E. 2020. Sodium nitroprusside and gibberellin effects on seed germination and seedling development of grapevine (Vitis vinifera L. ) cvs. Ekşi Kara and Gök Üzüm. Erwerbs-Obstbau 62:61−68

doi: 10.1007/s10341-020-00497-8
[20]

Sabagh AE, Mbarki S, Hossain A, Iqbal MA, Islam MS, et al. 2021. Potential role of plant growth regulators in administering crucial processes against abiotic stresses. Frontiers in Agronomy 3:648694

doi: 10.3389/fagro.2021.648694
[21]

Xu T, Zhang M, Chen TC, Gong LL, Hu LL, et al. 2023. Identification of ABA signaling pathway genes and their differential regulation in response to suboptimal light stress in grape (Vitis vinifera L.). Horticulturae 9(7):789

doi: 10.3390/horticulturae9070789
[22]

Li ZL, Luo XF, Wang L, Shu K. 2022. ABSCISIC ACID INSENSITIVE 5 mediates light-ABA/gibberellin crosstalk networks during seed germination. Journal of Experimental Botany 73(14):4674−4682

doi: 10.1093/jxb/erac200
[23]

Ge ZCM, Yao MW, Chen T, Yao Y, Lin JH, et al. 2026. A novel bZIP transcription factor VvbZIP026 induces anthocyanin biosynthesis and acylation modification in response to abscisic acid in 'Summer Black' grape. Plant Science 364:113008

doi: 10.1016/j.plantsci.2026.113008
[24]

Sano N, Marion-Poll A. 2021. ABA metabolism and homeostasis in seed dormancy and germination. International Journal of Molecular Sciences 22(10):5069

doi: 10.3390/ijms22105069
[25]

Farooq MA, Ma W, Shen S, Gu A. 2022. Underlying biochemical and molecular mechanisms for seed germination. International Journal of Molecular Sciences 23:8502

doi: 10.3390/ijms23158502
[26]

Kesen Ö, Yagci A, Hatterman-Valenti H, Kaya O. 2025. Enhancing grape seed germination and seedling development through varietal responses to sodium nitroprusside and gibberellic acid applications. Horticulturae 11:754

doi: 10.3390/horticulturae11070754
[27]

Bolt B, Baloh A, Magnani R, Nosarzewski M, López CR, et al. 2023. Clipping and gibberellin treatments promote germination in dormant grape seeds. HortTechnology 33(2):157−160

doi: 10.21273/horttech05155-22
[28]

Zhao HY, Zhang YM, Zheng Y. 2022. Integration of ABA, GA, and light signaling in seed germination through the regulation of ABI5. Frontiers in Plant Science 13:1000803

doi: 10.3389/fpls.2022.1000803
[29]

Wang WR, Bai YH, Koilkonda P, Guan L, Zhuge YX, et al. 2020. Genome-wide identification and characterization of gibberellin metabolic and signal transduction (GA MST) pathway mediating seed and berry development (SBD) in grape (Vitis vinifera L.). BMC Plant Biology 20:384

doi: 10.1186/s12870-020-02591-1
[30]

Zhang CC, Lu X, Yan HK, Gong MS, Wang WH, et al. 2023. Nitrogen application improves salt tolerance of grape seedlings via regulating hormone metabolism. Physiologia Plantarum 175(2):e13896

doi: 10.1111/ppl.13896
[31]

Zhou RJ, Gai RX, Liao WY, Wu QJ, Cheng JH, et al. 2025. Optimization of grape artificial hybrid pollination technology process and the effect of different male parents on the fruit setting rate. Frontiers in Plant Science 16:1660290

doi: 10.3389/fpls.2025.1660290
[32]

Kontaxakis E, Papadimitriou D, Daliakopoulos I, Sabathianakis I, Stavropoulou A, et al. 2023. Water availability in pumice, coir, and perlite substrates regulates grapevine growth and grape physicochemical characteristics in soilless cultivation of sugraone and prime cultivars (Vitis vinifera L.). Agriculture 13(9):1690

doi: 10.3390/agriculture13091690
[33]

Wang ZL, Yao F, Hui M, Wu D, Wang Y, et al. 2022. Fertility analysis of intraspecific hybrids in Vitis vinifera and screening of superior hybrid combinations. Frontiers in Plant Science 13:940540

doi: 10.3389/fpls.2022.940540
[34]

Zhang C, Yuan T, Guo SQ, Dang JB, Liang GL, et al. 2025. Parent-of-origin effects orchestrate transcriptional reprogramming and epigenetic regulation of seedling vigor heterosis in triploid loquat. Frontiers in Plant Science 16:1698577

doi: 10.3389/fpls.2025.1698577
[35]

Chen X, Ayesha K, Wen X, Zhang YN, Dou MR, et al. 2026. An integrate methods to improve the high efficiency of embryo rescue breeding in seedless grapes. Journal of Integrative Agriculture 25(2):721−733

doi: 10.1016/j.jia.2025.02.042
[36]

Wang ZM, Chai FM, Zhu ZF, Elias GK, Xin HP, et al. 2020. The inheritance of cold tolerance in seven interspecific grape populations. Scientia Horticulturae 266:109260

doi: 10.1016/j.scienta.2020.109260