The Effect of Different Crop Production Systems on Seed Germination and Longevity in Winter Wheat (Triticum aestivum L.)
Abstract
1. Introduction
2. Materials and Methods
2.1. Seed Samples and Crop Production Systems
2.2. Germination Assay and Germination Speed
2.3. Assessment of the Relative Storability
2.4. Statistical Analysis
3. Results
3.1. The Effect of Tested Parameters on the Germination Traits of Wheat Seed
3.2. Effect of Production System, Cultivar and Year on Germination on Wheat
3.3. The Effect of Tested Parameters on the Germination Traits of Wheat Seed Subjected to Controlled Deterioration
3.4. Effect of Production System, Cultivar and Year on Germination on Wheat Seeds Subjected to Controlled Deterioration
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- FAOSTAT. 2025. Available online: https://www.fao.org/worldfoodsituation/csdb/en (accessed on 27 September 2025).
- King, J.; Dreisigacker, S.; Reynolds, M.; Bandyopadhyay, A.; Braun, H.; Crespo-Herrera, L.; Crossa, J.; Govindan, V.; Huerta, J.; Ibba, M.I.; et al. Wheat genetic resources have avoided disease pandemics, improved food security, and reduced environmental footprints: A review of historical impacts and future opportunities. Glob. Change Biol. 2024, 30, e17440. [Google Scholar] [CrossRef]
- Schrama, M.; De Haan, J.; Kroonen, M.; Verstegen, H.; Van der Putten, W. Crop yield gap and stability in organic and conventional farming systems. Agric. Ecosyst. Environ. 2018, 256, 123–130. [Google Scholar] [CrossRef]
- Salgotra, R.K.; Chauhan, B.S. Genetic diversity, conservation, and utilization of plant genetic resources. Genes 2023, 14, 174. [Google Scholar] [CrossRef] [PubMed]
- Finch-Savage, W.E. Influence of seed quality on crop establishment, growth, and yield. In Seed Quality; CRC Press: Boca Raton, FL, USA, 2020; pp. 361–384. [Google Scholar]
- Solberg, S.Ø.; Yndgaard, F.; Andreasen, C.; Von Bothmer, R.; Loskutov, I.G.; Asdal, Å. Long-term storage and longevity of orthodox seeds: A systematic review. Front. Plant Sci. 2020, 11, 1007. [Google Scholar] [CrossRef] [PubMed]
- ISTA. International Rules for Seed Testing; International Seed Testing Association: Bassersdorf, Switzerland, 2024. [Google Scholar]
- Finch-Savage, W.E.; Bassel, G.W. Seed vigour and crop establishment: Extending performance beyond adaptation. J. Exp. Bot. 2016, 67, 567–591. [Google Scholar] [CrossRef]
- Powell, A.A.; Matthews, S. Towards the validation of the controlled deterioration vigour test for small seeded vegetables. Seed Test. Int. 2005, 129, 21–24. [Google Scholar]
- Marcos Filho, J. Seed vigor testing: An overview of the past, present and future perspective. Sci. Agric. 2015, 72, 363–374. [Google Scholar] [CrossRef]
- Sumberg, J.; Giller, K.E. What is ‘conventional’ agriculture? Glob. Food Secur. 2022, 32, 100617. [Google Scholar] [CrossRef]
- Woźniak, A.; Haliniarz, M. Response of winter wheat to 35-year cereal monoculture. Agriculture 2025, 15, 489. [Google Scholar] [CrossRef]
- Sieling, K.; Stahl, C.; Winkelmann, C.; Christen, O. Growth and yield of winter wheat in the first 3 years of a monoculture under varying N fertilization in NW Germany. Eur. J. Agron. 2005, 22, 71–84. [Google Scholar] [CrossRef]
- FAO. Crop and Grassland Service. Integrated Crop Management. 2025. Available online: https://policycommons.net/artifacts/18271419/integrated-crop-management/19171545/ (accessed on 20 October 2025).
- Hussain, M.; Ul-Allah, S.; Farooq, S. Integrated crop management in sustainable agriculture. Agriculture 2023, 13, 954. [Google Scholar] [CrossRef]
- Kociszewski, K. Perspectives of Polish organic farming development in the aspect of the European Green Deal. Ekon. Sr. 2022, 81, 154–167. [Google Scholar] [CrossRef]
- Bilsborrow, P.; Cooper, J.; Tétard-Jones, C.; Średnicka-Tober, D.; Barański, M.; Eyre, M.; Schmidt, C.; Shotton, P.; Volakakis, N.; Cakmak, I.; et al. The effect of organic and conventional management on the yield and quality of wheat grown in a long-term field trial. Eur. J. Agron. 2013, 51, 71–80. [Google Scholar] [CrossRef]
- Feledyn-Szewczyk, B.; Kopiński, J. Productive, environmental and economic effects of organic and Conventional Farms—Case Study from poland. Agronomy 2024, 14, 793. [Google Scholar] [CrossRef]
- Harasim, E.; Feledyn-Szewczyk, B. Biodiversity assessment of segetal flora, earthworms and terrestrial invertebrates in various agricultural production systems and crops. Agron. Sci. 2023, 78, 63–75. [Google Scholar] [CrossRef]
- Boschiero, M.; De Laurentiis, V.; Caldeira, C.; Sala, S. Comparison of organic and conventional cropping systems: A systematic review of life cycle assessment studies. Environ. Impact Assess. Rev. 2023, 102, 107187. [Google Scholar] [CrossRef]
- Kowalska, I.; Soluch, A.; Mołdoch, J.; Jończyk, K. The effect of farming systems and cultivars on the qualitative and quantitative composition of bioactive compounds in winter wheat (Triticum aestivum L.). Molecules 2025, 30, 902. [Google Scholar] [CrossRef]
- Knuth, D.; Gai, L.; Silva, V.; Harkes, P.; Hofman, J.; Šudoma, M.; Bílková, Z.; Alaoui, A.; Mandrioli, D.; Pasković, I.; et al. Pesticide residues in organic and conventional agricultural soils across Europe: Measured and predicted concentrations. Environ. Sci. Technol. 2024, 58, 6744–6752. [Google Scholar] [CrossRef]
- Mitura, K.; Cacak-Pietrzak, G.; Feledyn-Szewczyk, B.; Szablewski, T.; Studnicki, M. Yield and grain quality of common wheat (Triticum aestivum L.) depending on the different farming systems (organic vs. integrated vs. conventional). Plants 2023, 12, 1022. [Google Scholar] [CrossRef]
- Probert, R.; Adams, J.; Coneybeer, J.; Crawford, A.; Hay, F. Seed quality for conservation is critically affected by pre-storage factors. Aust. J. Bot. 2007, 55, 326–335. [Google Scholar] [CrossRef]
- Winkler, J.; Kopta, T.; Ferby, V.; Neudert, L.; Vaverková, M.D. Effect of tillage technology systems for seed germination rate in a laboratory tests. Environments 2022, 9, 13. [Google Scholar] [CrossRef]
- Shahzaman, M.; Ishtiaq, M.; Azam, A. Effect of different fertilizers on seed germination and seedling growth of sunflower (Helianthus annuus L.) from district Bhimber of Azad Jammu and Kashmir, Pakistan. Int. J. Bot. Stud. 2017, 2, 10–15. [Google Scholar]
- Kristó, I.; Vályi-Nagy, M.; Rácz, A.; Irmes, K.; Szentpéteri, L.; Jolánkai, M.; Kovács, G.P.; Fodor, M.Á.; Ujj, A.; Valentinyi, K.V.; et al. Effects of nutrient supply and seed size on germination parameters and yield in the next crop year of winter wheat (Triticum aestivum L.). Agriculture 2023, 13, 419. [Google Scholar] [CrossRef]
- Ambika, S.; Manonmani, V.; Somasundar, G. Review on effect of seed size on seedling vigour and seed yield. Res. J. Seed Sci. 2014, 7, 31–38. [Google Scholar] [CrossRef]
- Panasiewicz, K.; Koziara, W.; Krawczyk, R. Comparison of grain sowing quality and vigor of spring barley. J. Res. Appl. Agric. Eng. 2010, 55, 42–45. [Google Scholar]
- Panasiewicz, K.; Koziara, W.; Sulewska, H.; Krawczyk, R. Sowing quality and vigor of winter wheat grain, growing in accordance with the organic and conventional system. J. Res. Appl. Agric. Eng. 2011, 56, 58–61. [Google Scholar]
- Joosen, R.V.L.; Kodde, J.; Willems, L.A.J.; Ligterink, W.; Van Der Plas, L.H.W.; Hilhorst, H.W. GERMINATOR: A software package for high-throughput scoring and curve fitting of Arabidopsis seed germination. Plant J. 2010, 62, 148–159. [Google Scholar] [CrossRef]
- Hay, F.; Adams, J.; Manger, K.; Probert, R. The use of non-saturated lithium chloride solutions for experimental control of seed water content. Seed Sci. Technol. 2008, 36, 737–746. [Google Scholar] [CrossRef]
- Shapiro, S.S.; Wilk, M.B. An analysis of variance test for normality (complete samples). Biometrika 1965, 52, 591–611. [Google Scholar] [CrossRef]
- VSN International. VSN International Genstat for Windows, 23rd ed.; VSN International: Hemel Hempstead, UK, 2023. [Google Scholar]
- Nagel, M.; Börner, A. The longevity of crop seeds stored under ambient conditions. Seed Sci. Res. 2010, 20, 1–12. [Google Scholar] [CrossRef]
- Zuo, J.H.; Chen, F.Y.; Li, X.Y.; Xia, X.C.; Cao, H.; Liu, J.D.; Liu, Y.X. Genome-wide association study reveals loci associated with seed longevity in common wheat (Triticum aestivum L.). Plant Breed. 2020, 139, 295–303. [Google Scholar] [CrossRef]
- Arif, M.A.R.; Agacka-Mołdoch, M.; Qualset, C.O.; Börner, A. Mapping of additive and epistatic QTLs linked to seed longevity in bread wheat (Triticum aestivum L.). Cereal Res. Commun. 2022, 50, 709–715. [Google Scholar] [CrossRef]
- Yang, Z.; Wu, J.; Wang, Q.; Chen, W.; Shi, H.; Shi, Y.; Yang, J.; Li, N.; Sun, D.; Jing, R. QTL mapping for seed vigor-related traits under artificial aging in common wheat in two introgression line (IL) populations. PeerJ 2024, 12, e17778. [Google Scholar] [CrossRef] [PubMed]
- Groot, S.P.; Van der Wolf, J.M.; Jalink, H.; Langerak, C.J.; van den Bulk, R.W. Challenges for the production of high quality organic seeds. Seed Test. Int. 2004, 127, 12–15. [Google Scholar]
- Yang, Z.; Chen, W.; Jia, T.; Shi, H.; Sun, D. Integrated transcriptomic and metabolomic analyses identify critical genes and metabolites associated with seed Vigor of common wheat. Int. J. Mol. Sci. 2023, 25, 526. [Google Scholar] [CrossRef]
- Nagel, M.; Seal, C.E.; Colville, L.; Rodenstein, A.; Un, S.; Richter, J.; Pritchard, H.W.; Börner, A.; Kranner, I. Wheat seed ageing viewed through the cellular redox environment and changes in pH. Free. Radic. Res. 2019, 53, 641–654. [Google Scholar] [CrossRef]
- Góral, T.; Łukanowski, A.; Małuszyńska, E.; Stuper-Szablewska, K.; Buśko, M.; Perkowski, J. Performance of winter wheat cultivars grown organically and conventionally with focus on Fusarium head blight and Fusarium trichothecene toxins. Microorganisms 2019, 7, 439. [Google Scholar] [CrossRef]
- Capouchova, I.; Konvalina, P.; Stehno, Z.; Prokinova, E.; Janovska, D.; Honsova, H.; Blaha, L.; Kas, M. Organic cereal seed quality and production. In Organic Farming and Food Production; IntechOpen: London, UK, 2012; pp. 25–45. Available online: https://www.intechopen.com/chapters/40285 (accessed on 20 October 2025).
- Woźniak, A. Effect of crop rotation and cereal monoculture on the yield and quality of winter wheat grain and on crop infestation with weeds and soil properties. Int. J. Plant Prod. 2019, 13, 177–182. [Google Scholar] [CrossRef]
- Jankowski, K.J.; Kijewski, L.; Dubis, B. Milling quality and flour strength of the grain of winter wheat grown in monoculture. Rom. Agric. Res. 2015, 32, 191–200. [Google Scholar]
- Feledyn-Szewczyk, B.; Jończyk, K.; Stalenga, J. The Effect of Crop Production Systems and Cultivars on Spring Wheat (Triticum aestivum L.) Yield in a Long-Term Experiment. Agriculture 2024, 14, 625. [Google Scholar] [CrossRef]
- ADMS—Agricultural Drought Monitoring System. Available online: https://susza.iung.pulawy.pl/en/index/ (accessed on 20 October 2025).






| Parameter | Description/Value |
|---|---|
| Complex of agricultural suitability | Very good rye |
| Soil type | Lessive/grey brown podsolic |
| Soil textural group | Heavy loamy sand on a clay |
| Soil richness: | |
| —Humus | 1.4% |
| —Phosphorus (P2O5) | 8.6 mg–100 g−1 |
| —Potassium (K2O) | 10.0 mg–100 g−1 |
| —Magnesium (Mg) | 9.1 mg–100 g−1 |
| —pH (in KCl) | 5.9 |
| Forecrop | Clover with grasses |
| Average annual temperature | 7.6 °C |
| Annual rainfall | 587 mm |
| Parameter | Conventional | Conventional- Monoculture | Integrated | Ecological |
|---|---|---|---|---|
| Crop Rotation | Winter rape→Winter wheat→Spring wheat | Winter wheat (continuous cultivation) | Potato→Spring wheat→Faba bean→Winter wheat | Potato→Spring wheat→Red clover→Winter wheat→Oats |
| NPK Fertilization (kg of pure ingredient per ha) | High N: 170 P: 70 K: 98 | High N: 160 P: 70 K: 98 | Reduced N: 120 P: 60 K: 80 | Natural N: 0 P: 36 K: 75 |
| Type of Fertilizers | Mineral (Ammonium nitrate, Polifoska) + Straw | Mineral + Straw | Mineral + Compost + Catch crops | Ground rock phosphate, Potassium sulphate + Compost |
| Chemical Protection (Number of treatments) | Intensive (4–5 treatments total) | Very Intensive (5 treatments total) | Limited (3 treatments total) | None (only natural methods) |
| Source of Variation | d.f. | NS (%) | TG (%) | t50 (h) | AUC |
|---|---|---|---|---|---|
| Year | 1 | 277.5 | 209.77 ** | 1062 ** | 169.5 |
| System | 3 | 136.79 | 37.7 | 1851.2 *** | 919.6 *** |
| Cultivar | 3 | 2635.14 *** | 424.86 *** | 3264.1 *** | 2509.6 *** |
| Year × System | 3 | 23.78 | 59.8 | 517.8 ** | 246.3 |
| Year × Cultivar | 3 | 512.81 *** | 86.84 * | 389.1 * | 230.5 |
| System × Cultivar | 9 | 170.99 * | 40.58 | 851.7 *** | 572.3 *** |
| Year × System × Cultivar | 9 | 253.03 ** | 61.24 * | 241.6 | 242.5 * |
| Residual | 221 | 82.19 | 29.32 | 130.1 | 102.4 |
| Cultivar | Arkadia | Bamberka | Jantarka | Sailor | |
|---|---|---|---|---|---|
| Year | System | NS (%) | |||
| 2014 | CONV | 72 ± 12.543 efg | 76.5 ± 7.55 defg | 87.95 ± 5.392 abcd | 87.78 ± 5.245 abcd |
| ECO | 77.5 ± 5.508 cdefg | 77.5 ± 12.477 cdefg | 91.52 ± 3.039 abc | 93.5 ± 1 ab | |
| INTGR | 84 ± 8.165 abcde | 82.37 ± 7.029 abcdef | 78 ± 12.166 cdefg | 80.16 ± 10.087 abcdefg | |
| MONO | 79.73 ± 14.952 abcdefg | 77.5 ± 3.786 cdefg | 94.12 ± 3.924 a | 87 ± 4.761 abcd | |
| 2016 | CONV | 89.33 ± 8.414 abcd | 69.25 ± 15.697 fg | 89 ± 7.261 abcd | 93.5 ± 4.101 ab |
| ECO | 93.64 ± 3.443 ab | 82.55 ± 9.125 abcdef | 87.33 ± 8.752 abcd | 85.83 ± 6.74 abcde | |
| INTGR | 87.53 ± 7.646 abcd | 66.08 ± 15.448 g | 90.83 ± 12.518 abcd | 91.17 ± 5.686 abc | |
| MONO | 88.17 ± 5.289 abcd | 79.17 ± 13.469 bcdefg | 88.33 ± 6.14 abcd | 85.86 ± 5.814 abcde | |
| Average | 86.72 ± 9.293 A | 75.2 ± 13.591 B | 88.8 ± 8.607 A | 88.59 ± 6.684 A | |
| LSD0.05 for interaction: 14.6 | |||||
| TG (%) | |||||
| 2014 | CONV | 93 ± 3.464 ab | 94.5 ± 1.915 ab | 95.98 ± 3.266 ab | 93.89 ± 4.189 ab |
| ECO | 96 ± 3.651 ab | 97 ± 1.155 ab | 98 ± 1.633 a | 98.5 ± 1 a | |
| INTGR | 96.5 ± 2.517 ab | 94.47 ± 3.792 ab | 98 ± 2 a | 90.08 ± 4.176 bc | |
| MONO | 99.3 ± 0.879 a | 89.5 ± 3.416 bc | 98 ± 2.828 a | 93.5 ± 1.915 ab | |
| 2016 | CONV | 96.33 ± 3.393 ab | 90.64 ± 7.487 abc | 95.83 ± 2.329 ab | 96.67 ± 3.339 ab |
| ECO | 97.64 ± 3.075 ab | 89.27 ± 4.756 bc | 92.33 ± 4.499 abc | 90.83 ± 5.006 abc | |
| INTGR | 94.52 ± 4.832 ab | 83.81 ± 13.635 c | 94.5 ± 9.308 ab | 96.33 ± 2.535 ab | |
| MONO | 95.83 ± 2.758 ab | 91.33 ± 7.353 abc | 92.17 ± 4.783 abc | 93.86 ± 2.989 ab | |
| Average | 96.09 ± 3.584 A | 90.05 ± 8.449 B | 94.6 ± 5.455 A | 94.31 ± 4.168 A | |
| LSD0.05 for interaction: 8.7 | |||||
| t50 (h) | |||||
| 2014 | CONV | 71.12 ± 1.755 bcdef | 77 ± 3.918 bcd | 63.74 ± 2.114 defgh | 75.53 ± 2.609 bcd |
| ECO | 59.55 ± 3.982 efgh | 68.79 ± 5.146 bcdefgh | 56.14 ± 2.326 gh | 57.86 ± 2.359 fgh | |
| INTGR | 72.43 ± 14.124 bcde | 74.69 ± 3.963 bcd | 54.73 ± 4.617 h | 69.28 ± 2.699 bcdefg | |
| MONO | 64.44 ± 2.79 cdefgh | 65.25 ± 1.989 cdefgh | 57.88 ± 2.668 fgh | 63.93 ± 1.85 defgh | |
| 2016 | CONV | 70.7 ± 8.419 bcdef | 81.76 ± 13.95 b | 59.99 ± 7.242 efgh | 58.75 ± 5.832 efgh |
| ECO | 67.08 ± 7.879 cdefgh | 70.3 ± 12.745 bcdefg | 67.03 ± 13.38 cdefgh | 64.03 ± 10.614 defgh | |
| INTGR | 78.93 ± 6.117 | 109 ± 30.204 a | 66.94 ± 6.455 cdefgh | 65.7 ± 4.785 cdefgh | |
| MONO | 70.5 ± 6.951 bcdefg | 66 ± 20.67 cdefgh | 67.75 ± 10.636 bcdefgh | 66.19 ± 8.326 cdefgh | |
| Average | 70.63± 8.66 B | 79.32 ± 23.31 A | 63.74 ± 9.48 C | 64.41± 7.87 C | |
| LSD0.05 for interaction: 14.508 | |||||
| AUC | |||||
| 2014 | CONV | 71.44 ± 4.983 efghijk | 68.63 ± 5.444 ghijk | 81.91 ± 3.59 abcdef | 70.03 ± 3.714 fghijk |
| ECO | 81.8 ± 5.894 abcdef | 67.22 ± 10.791 hijk | 91.35 ± 4.318a | 84.47 ± 3.167 abcd | |
| INTGR | 68.73 ± 15.363 ghijk | 65.87 ± 9.508 ijk | 86.99 ± 4.149 ab | 72.9 ± 2.336 defghijk | |
| MONO | 72.07 ± 9.854 defghijk | 70.42 ± 2.768 fghijk | 84.22 ± 5.947 abcde | 78.79 ± 2.737 abcdefgh | |
| 2016 | CONV | 73.5 ± 8.859 cdefghijk | 62.6 ± 10.437 k | 84.42 ± 7.775 abcd | 86.15 ± 6.862 abc |
| ECO | 77.95bcdefghij ± 9.043 | 72.09 ± 12.291 defghijk | 75.22 ± 12.411 bcdefghijk | 77.25 ± 11.139 bcdefghij | |
| INTGR | 65.19± 6.846 jk | 47.76 ± 13.165 l | 78.69 ± 9.907 abcdefghi | 78.45 ± 4.737 bcdefghi | |
| MONO | 73.43 ± 7.1 cdefghijk | 80.6 ± 21.418 abcdefg | 74.22 ± 11.624 bcdefghijk | 76.43 ± 9.043 bcdefghij | |
| Average | 72.68 ± 9.27 B | 66.24 ± 16.85 C | 80.02 ± 10.5 A | 78.82 ± 8.41 A | |
| LSD0.05 for interaction: 12.871 | |||||
| System | NS (%) | TG (%) | t50 (h) | AUC |
|---|---|---|---|---|
| CONV | 84.22 ± 12.8 a | 94.74 ± 4.663 a | 68.81 ± 11.78 b | 75.75 ± 11.53 a |
| ECO | 86.71 ± 8.66 a | 93.74 ± 5.14 a | 65.38 ± 10.49 b | 77.09 ± 11.28 a |
| INTGR | 83.29 ± 13.69 b | 92.83 ± 8.813 b | 77.41 ± 21.54 a | 68.76 ± 14.83 b |
| MONO | 85.18 ± 9.15 a | 93.74 ± 4.913 a | 66.43 ± 11.17 b | 76.22 ± 12.14 a |
| LSD0.05 | 3.2 | 1.9 | 4.037 | 3.581 |
| Year | NS (%) | TG% | t50 | AUC |
|---|---|---|---|---|
| 2014 | 83.02 ± 9.7 a | 95.35 ± 3.764 a | 65.95 ± 8.06 b | 75.88 ± 9.85 a |
| 2016 | 85.45 ± 11.75 a | 93.24 ± 6.645 b | 70.69 ± 16.69 a | 73.99 ± 13.73 a |
| LSD0.05 | 2.6 | 1.6 | 3.268 | 2.899 |
| Source of Variation | d.f. | NS (%) | TG (%) | t50 (h) | AUC |
|---|---|---|---|---|---|
| Year | 1 | 3764.1 *** | 3966.1 *** | 60,909.9 *** | 2043.6 * |
| System | 3 | 6326.3 *** | 2672.1 *** | 1892.7 * | 10,285.4 *** |
| Cultivar | 3 | 10,637.6 *** | 21,861.6 *** | 36,129.5 *** | 28,798.4 *** |
| Year × System | 3 | 3747.2 *** | 4187.7 *** | 1481.8 | 12,571.6 *** |
| Year × Cultivar | 3 | 613.2 * | 740.2 * | 8391.1 *** | 2335.1 *** |
| System × Cultivar | 9 | 1716.2 *** | 1984.1 *** | 6280.3 *** | 2523 *** |
| Year × System × Cultivar | 9 | 396.5 * | 657.3 ** | 1368.7 * | 951 * |
| Residual | 186 | 200.6 | 235.6 | 565.2 | 403.9 |
| Cultivar | Arkadia | Bamberka | Jantarka | Sailor | |
|---|---|---|---|---|---|
| Year | System | NS (%) | |||
| 2014 | CONV | 70 ± 11.75 abc | 76.5 ± 7.55 ab | 87.95 ± 5.39 a | 87.78 ± 5.24 a |
| ECO | 49.5 ± 7.19 defg | 62.5 ± 11.24 bcde | 4± 2 l | 40.5 ± 17.31 ghi | |
| INTGR | 56.67 ± 5.03 cdefg | 62 ± 9.93 bcdef | 8 ± 7.21 kl | 43.5 ± 24.02 gh | |
| MONO | 39 ± 10.13 ghi | 43 ± 9.45 gh | 13 ± 2.58 kl | 40 ± 12.44 ghi | |
| 2016 | CONV | 48 ± 22.77 efgh | 47.45 ± 25.9 efgh 7 | 31.33 ± 8.91 hij | 56.73 ± 24.71 cdefg |
| ECO | 62.67 ± 10.73 bcde | 64 ± 10.65 bcde | 20.55 ± 13.03 jkl | 24 ± 17.16 ijk | |
| INTGR | 66.33 ± 7.74 bcd | 54.4 ± 7.92 cdefg | 17 ± 4.86 jkl | 54.8 ± 11.54 cdefg | |
| MONO | 44 ± 7.43 fgh | 44 ± 12.88 fgh | 12.55 ± 6.07 kl | 22.67 ± 10.97 ijk | |
| Average | 53.93 ± 16.04 A | 54.75 ± 17.62 A | 22.79 ± 22.47 C | 41.16 ± 24.99 B | |
| LSD0.05 for interaction: 18.0 | |||||
| TG (%) | |||||
| 2014 | CONV | 92 ± 3.74 abc | 94.5 ± 1.91 ab | 95.98 ± 3.27 a | 93.89 ± 4.19 ab |
| ECO | 76 ± 11.78 bcdefg | 79.5 ± 5.26 abcdef | 4.67 ± 1.15 l | 64.5 ± 21.25 fg | |
| INTGR | 81.33 ± 2.31 abcdef | 77 ± 14.83 abcdefg | 12.67 ± 2.31 kl | 66.5 ± 9 fg | |
| MONO | 67.5 ± 8.06 fg | 74 ± 6.32 cdefg | 15 ± 2.58 jkl | 64.5 ± 15.18 fg | |
| 2016 | CONV | 64.5 ± 22.52 fg | 59.64 ± 30.14 gh | 38.67 ± 12.5 i | 67.82 ± 21.51 fg |
| ECO | 88.83 ± 9.67 abcd | 81.17 ± 7.6 abcdef | 34.18 ± 23.25 ij | 41.33 ± 24.75 hi | |
| INTGR | 87.33 ± 7.34 abcde | 70.4 ± 6.07 defg | 22 ± 5.22 ijkl | 71.2 ± 10.64 defg | |
| MONO | 68.67± 9.92 efg | 75.33 ± 8.19 bcdefg | 25.27 ± 8.4 ijk | 40.17 ± 14.95 hi | |
| Average | 77 ± 16.34 A | 74.75 ± 17.19 A | 31.54 ± 25.01 C | 57.81 ± 23.92 B | |
| LSD0.05 for interaction: 19.5 | |||||
| t50 (h) | |||||
| 2014 | CONV | 80.61 ± 21.26 b | 77 ± 3.92 b | 63.74 ± 2.11 bcd | 75.53 ± 2.61 b |
| ECO | 118.25 ± 5.94 a | 120.95 ± 2.11 a | 0 ± 0 f | 119.42 ± 1.75 a | |
| INTGR | 118.45 ± 0.47 a | 125.77 ± 9.28 a | 0 ± 0 f | 124.2 ± 6.62 a | |
| MONO | 122.85 ± 2.79 a | 119.2 ± 5.25 a | 0 ± 0 f | 124.7 ± 6.39 a | |
| 2016 | CONV | 55.08 ± 34.95 bcd | 40.39 ± 32.16 cde | 61.49 ± 30.26 bcd | 66.23 ± 34.94 bcd |
| ECO | 69.33 ± 8.39 bc | 71.78 ± 6.22 b | 37.17 ± 43.14 de | 41.34 ± 44.34 cde | |
| INTGR | 72.97 ± 3.51 b | 81.77 ± 9.65 b | 0 ± 0 f | 81.95 ± 8.15 b | |
| MONO | 62.01 ± 20.98 bcd | 76.36 ± 5.92 b | 0 ± 0 f | 21.37 ± 36.65 ef | |
| Average | 75.82 ± 29.81 AB | 78.62 ± 30.55 A | 21.52C ± 34.24 | 65.29 ± 46.48 B | |
| LSD0.05 for interaction: 30.28 | |||||
| AUC | |||||
| 2014 | CONV | 108.06 ± 21.63 abc | 116.3 ± 6.91 ab | 129.99 ± 5.03 a | 117.25 ± 5.23 ab |
| ECO | 64.13 ± 12.41 fgh | 64.17 ± 5.2 fgh | 1.57 ± 2.71 n | 52.87 ± 17.87 ghij | |
| INTGR | 67.36 ± 1.71 efgh | 59.72 ± 15.12 ghi | 9.87 ± 2 mn | 53.2 ± 9.43 ghij | |
| MONO | 54.45 ± 6.73 ghij | 61.22 ± 5.46 ghi | 12.21 ± 2.28 lmn | 52.59 ± 13.52 ghij | |
| 2016 | CONV | 89.87 ± 30.35 cde | 78.18 ± 37.28 defg | 45.44 ± 17.38 hijk | 89.97 ± 28.65 cde |
| ECO | 94.61 ± 27.2 bcd | 105.11 ± 10.81 abc | 36.69 ± 25.01 ijkl | 47.65 ± 32.19 hijk | |
| INTGR | 108.14 ± 8.98 abc | 87.89 ± 9.41 cdef | 25.41 ± 5.28 klm | 87.42 ± 10.58 cdef | |
| MONO | 91.98 ± 11.58 bcde | 95.34 ± 9.68 bcd | 29.7 ± 10.53 jklm | 51.88 ± 18.82 hij | |
| Average | 89.36 ± 25.06 A | 87.69 ± 24.98 A | 36.64 ± 33.89 C | 66.51 ± 31.16 B | |
| LSD0.05 for interaction: 25.59 | |||||
| System | NS (%) | TG (%) | t50 (h) | AUC |
|---|---|---|---|---|
| CONV | 57.35 ± 25.27 a | 70.27 ± 25.88 a | 60.89 ± 30.37 ab | 91.15 ± 33.56 a |
| ECO | 42.84 ± 23.95 b | 61.39 ± 29.81 ab | 64.15 ± 41.42 ab | 66.15 ± 36.98 b |
| INTGR | 46.17 ± 22.28 b | 61.67 ± 27.02 ab | 72.55 ± 47.1 a | 65.59 ± 32.8 b 7 |
| MONO | 31.84 ± 16.18 c | 53.52 ± 23.51 b | 54.23 ± 47.4 b | 62.21 ± 29.96 b |
| LSD0.05 | 10.3 | 9.3 | 14.66 | 13.79 |
| Year | NS (%) | TG (%) | t50 (h) | AUC |
|---|---|---|---|---|
| 2014 | 50.6 ± 26.21 a | 68.25 ± 28.57 a | 88.61 ± 45.21 a | 66.6 ± 37.9 a |
| 2016 | 41.38 ± 22.49 b | 58.79 ± 26.17 b | 51.31 ± 35.48 b | 73.38 ± 34.15 a |
| LSD0.05 | 7 | 8 | 11.38 | 10.43 |
| Trait | AUC | t50 (h) | NS (%) | TG (%) |
|---|---|---|---|---|
| AUC | 1 | −0.85 *** | 0.43 *** | 0.33 ** |
| t50 (h) | 0.47 *** | 1 | −0.28 * | −0.34 ** |
| NS (%) | 0.86 *** | 0.58 *** | 1 | 0.35 ** |
| TG (%) | 0.90 *** | 0.72 *** | 0.89 *** | 1 |
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Agacka-Mołdoch, M.; Jończyk, K.; Bocianowski, J.; Börner, A. The Effect of Different Crop Production Systems on Seed Germination and Longevity in Winter Wheat (Triticum aestivum L.). Agronomy 2026, 16, 260. https://doi.org/10.3390/agronomy16020260
Agacka-Mołdoch M, Jończyk K, Bocianowski J, Börner A. The Effect of Different Crop Production Systems on Seed Germination and Longevity in Winter Wheat (Triticum aestivum L.). Agronomy. 2026; 16(2):260. https://doi.org/10.3390/agronomy16020260
Chicago/Turabian StyleAgacka-Mołdoch, Monika, Krzysztof Jończyk, Jan Bocianowski, and Andreas Börner. 2026. "The Effect of Different Crop Production Systems on Seed Germination and Longevity in Winter Wheat (Triticum aestivum L.)" Agronomy 16, no. 2: 260. https://doi.org/10.3390/agronomy16020260
APA StyleAgacka-Mołdoch, M., Jończyk, K., Bocianowski, J., & Börner, A. (2026). The Effect of Different Crop Production Systems on Seed Germination and Longevity in Winter Wheat (Triticum aestivum L.). Agronomy, 16(2), 260. https://doi.org/10.3390/agronomy16020260

