Effect of Warm-Dry Storage and Supplemental Application of Gibberellins on the Lipid Profile of Chincuya Seeds (Annona purpurea Moc. & Sessé ex Dunal)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Materials
2.2. Viability Test
2.3. Treatments
2.4. Extraction of Lipids
2.5. Statistical Analysis
3. Results and Discussion
3.1. Viability
3.2. Germination
3.3. Fatty Acids Content
Fatty Acid | Soursop (%) (A. muricata) Z | Cherimola (%) (A. cherimola) Y | Ilama (%) (A. macroprophyllata) X | Sugar Apple (%) (A. squamosa) W |
---|---|---|---|---|
Palmitic | 25.5 | 19.99 | 16.4 | 17.79 |
Palmitoleic | 1.5 | ND | ND | ND |
Stearic | 6.0 | 4.16 | 5.22 | 4.29 |
Oleic | 39.5 | 38.58 | 70.42 | 39.72 |
Linoleic | 27.0 | 36.97 | 7.97 | 29.13 |
Arachidic | ND | ND | ND | 1.06 |
Relationship U/S U | 2.44 | 2.21 | 3.62 | 2.97 |
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
- Cabrera, C.E.F.; Hernández, M.E.H.; Salvador, F.J.; Salazar, G.C. Annonaceae de la Península de Yucatán. Taxonomía, Florística y Etnobotánica. In Etnoflora Yucatenense; Flores, J.S., Ed.; Universidad Autónoma de Yucatán, Facultad de Medicina Veterinaria y Zootecnia: Mérida, México, 2004; Fascículo 21; p. 64. [Google Scholar]
- Vidal-Lezama, E.; Villegas-Monter, Á.; Vaquera-Huerta, H.; Robledo-Paz, A.; Martínez-Palacios, A. Annona purpurea Moc. & Sessé ex Dunal especie nativa de México, subutilizada. AgroProductividad 2019, 12, 9–15. [Google Scholar]
- Li, Z.; Gao, Y.; Zhang, Y.; Lin, C.; Gong, D.; Guan, Y.; Hu, J. Reactive oxygen species and gibberellin acid mutual induction to regulate tobacco seed Germination. Front. Plant Sci. 2018, 9, 1279. [Google Scholar] [CrossRef] [PubMed]
- Matilla, A. Germinación y Dormición de las Semillas. In Fundamentos de Fisiología Vegetal; Azcón-Bieto, J., Talón, M., Eds.; McGraw-Hill Interamericana: Madrid, Spain, 2000; pp. 435–450. [Google Scholar]
- Sano, N.; Rajjou, L.; North, H.M.; Debeaujon, I.; Marion-Poll, A.; Seo, M. Staying alive: Molecular aspects of seed longevity. Plant Cell Physiol. 2015, 57, 660–674. [Google Scholar] [CrossRef] [PubMed]
- Costa, M.C.D.; Cooper, K.; Hilhorst, H.W.; Farrant, J.M. Orthodox seeds and resurrection plants: Two of a kind. Plant Physiol. 2017, 175, 589–599. [Google Scholar] [CrossRef] [PubMed]
- Baskin, C.C.; Baskin, J.M. Seeds: Ecology, Biogeography, and Evolution of Dormancy and Germination, 2nd ed.; Academic Press: San Diego, CA, USA, 2014; pp. 1–586. [Google Scholar]
- Vidal-Lezama, E.; Villegas-Monter, A.; Vaquera-Huerta, H.; Robledo-Paz, A.; Martínez-Palacios, A.; Ferreira, G. Morphometry of chincuya seeds (Annona purpurea Moc. & Sessé ex Dunal) and embryonic growth under dry warm storage. Rev. Bras. Frutic. 2023, 45, e-042. [Google Scholar] [CrossRef]
- Holdsworth, M.J.; Bentsink, L.; Soppe, W.J. Molecular networks regulating Arabidopsis seed maturation, after-ripening, dormancy, and germination. New Phytol. 2008, 179, 33–54. [Google Scholar] [CrossRef]
- Fogliani, B.; Gateblé, G.; Villegente, M.; Fabre, L.; Klein, N.; Anger, N.; Baskin, C.C.; Seutt, C.P. The morphophysiological dormancy in Amborella trichopoda seeds is a pleisiomorphic trait in angiosperms. Ann. Bot. 2017, 119, 581–590. [Google Scholar]
- Cruz, E.; Barros, H. Germinação de Sementes de Espécies Amazônicas: Ucuúba [Virola surinamensis (Rol. ex Rottb.) Warb]; Embrapa: Amazônia Oriental, Brasil, 2016; p. 4. [Google Scholar]
- Da Silva, E.A.; De Melo, D.L.; Davide, A.C.; De Bode, N.; Abreu, G.B.; Faria, J.M.; Hilhorst, H.W. Germination ecophysiology of Annona Crassiflora Seeds. Ann. Bot. 2007, 99, 823–830. [Google Scholar] [CrossRef]
- Vidal-Lezama, E.; Marroquín-Andrade, L.; Gómez, R.S. Efecto del almacenamiento y tratamientos pregerminativos en semillas de Annona muricata L., Annona diversifolia Saff. y Annona spp. Proc. Int. Soc. Trop. Hort. 2008, 52, 203–209. [Google Scholar]
- González-Esquinca, A.R.; De-La-Cruz-Chacón, I.; Domínguez-Gutú, L.M. Dormancy and germination of Annona macroprophyllata (Annonaceae): The importance of the micropylar plug and seed position in the fruits. Bot. Sci. 2015, 93, 509–515. [Google Scholar] [CrossRef]
- Ferreira, G.; De-La-Cruz-Chacón, I.; González-Esquinca, A.R. Overcoming seed dormancy in Annona macroprophyllata and Annona purpurea using plant growth regulator. Rev. Bras. Frutic. 2016, 38, e-234. [Google Scholar] [CrossRef]
- Fenner, M.; Thompson, K. The Ecology of Seeds; Cambridge University Press: Cambridge, UK, 2005. [Google Scholar]
- Finch-Savage, W.E.; Leubner-Metzger, G. Seed dormancy and the control of germination. New Phytol. 2006, 171, 501–523. [Google Scholar] [CrossRef]
- Yano, R.; Kanno, Y.; Jikumaru, Y.; Nakabayashi, K.; Kamiya, Y.; Nambara, E. CHOTTO1, a putative double APETALA2 repeat transcription factor, is involved in ABA-mediated repression of gibberellin biosynthesis during seed germination in Arabidopsis. Plant Physiol. 2009, 151, 641–654. [Google Scholar] [CrossRef]
- Taiz, L.; Zeiger, E. Plant Physiology, 5th ed.; Sinauer Associates Inc.: Sunderland, UK, 2010. [Google Scholar]
- Bewley, J.; Black, M. Seeds: Physiology of Development and Germination; Plenum Press: New York, NY, USA; London, UK, 1994. [Google Scholar]
- Gómez-Castañeda, J.A.; Ramírez, H.; Benavides-Mendoza, A.; Encina-Rodríguez, I. Germination and seedling development of soncoya (Annona purpurea Moc & Sessé) in relation to gibberellins and abscisic levels. Rev. Chapingo Ser. Hortic. 2003, 9, 243–253. [Google Scholar]
- Ferreira, G. Reguladores Vegetais na Superação da Dormência, Balanço Hormonal e Degradação de Reservas em Sementes de Annona diversifolia Saff. e A. purpurea Moc. & Sessé ex Dunal (Annonaceae); Tese (Livre-Docência); Universidade Estadual Paulista, Instituto De Biociências, Campus de Botucatu: Sao Paulo, Brasil, 2011. [Google Scholar]
- Baskin, C.C.; Baskin, J.M. Seeds: Ecology, Biogeography, and Evolution of Dormancy and Germination; Academic Press: San Diego, CA, USA, 1998; 666p. [Google Scholar]
- Zienkiewicz, A.; Zienkiewicz, K.; Rejón, J.D.; De Dios Alché, J.; Castro, A.J.; Rodríguez-García, M.I. Olive seed protein bodies store degrading enzymes involved in mobilization of oil bodies. J. Exp. Bot. 2013, 65, 103–115. [Google Scholar] [CrossRef]
- Murphy, D.J. The dynamic roles of intracellular lipid droplets: From archaea to mammals. Protoplasma 2012, 249, 541–585. [Google Scholar] [CrossRef]
- Poxleitner, M.; Rogers, S.W.; Samuels, A.L.; Browse, J.; Rogers, J.C. A role of caleosin in degradation of oil-body storage lipids during seed germination. Plant J. 2006, 47, 917–933. [Google Scholar] [CrossRef] [PubMed]
- Bewley, J.D.; Black, M. Physiology and Biochemistry of Seeds in Relation to Germination: Volume 2: Viability, Dormancy, and Environmental Control; Springer Science & Business Media: Berlin/Heidelberg, Germany, 1982. [Google Scholar]
- Azcón-Bieto, J.; Talón, M. Fundamentos de Fisiología Vegetal; McGraw-Hill Interamericana: Madrid, Spain, 2000. [Google Scholar]
- Zhao, M.; Zhang, H.; Yan, H.; Qiu, L.; Baskin, C.C. Mobilization and role of starch, protein, and fat reserves during seed germination of six wild grassland species. Front. Plant Sci. 2018, 9, 234. [Google Scholar] [CrossRef] [PubMed]
- International Seed Testing Association. International Rules for Seed Testing; ISTA: Zurich, Switzerland, 2013. [Google Scholar]
- Reyes-Trejo, B.; Guerra-Ramírez, D.; Zuleta-Prada, H.; Cuevas-Sánchez, J.A.; Reyes, L.; Reyes-Chumacero, A.; Rodríguez-Salazar, J.A. Annona diversifolia seed oil as a promising non-edible feedstock for biodiesel production. Ind. Crops Prod. 2014, 52, 400–404. [Google Scholar] [CrossRef]
- Marroquín-Andrade, L.; Cuevas-Sánchez, J.A.; Guerra-Ramírez, D.; Reyes, L.; Reyes Chumacero, A.; Reyes-Trejo, B. Proximate composition, mineral nutrient, and fatty acids of the seed of ilama, Annona diversifolia Saff. Sci. Res. Essays 2011, 6, 3089–3093. [Google Scholar]
- SAS Institute Inc. SYSTEM 2000® Software: Product Support Manual, Version 1, 1st ed.; SAS Institute Inc.: Cary, NC, USA, 2000; p. 293. [Google Scholar]
- Ferreira, G.; De-La-Cruz-Chacón, I.; Boaro, C.S.F.; Baron, D.; Lemos, E.E.P.D. Propagation of Annonaceous plants. Rev. Bras. Frutic. 2019, 41, e-500. [Google Scholar] [CrossRef]
- Bazin, J.; Batlla, D.; Dussert, S.; El-Maarouf-Bouteau, H.; Bailly, C. Role of relative humidity, temperature, and water status in dormancy alleviation of sunflower seeds during dry after-ripening. J. Exp. Bot. 2010, 62, 627–640. [Google Scholar] [CrossRef]
- Bailly, C. Active oxygen species and antioxidants in seed biology. Seed Sci. Res. 2004, 14, 93–107. [Google Scholar] [CrossRef]
- Hallett, B.P.; Bewley, J.D. Membranes and seed dormancy: Beyond the anaesthetic hypothesis. Seed Sci. Res. 2002, 12, 69–82. [Google Scholar] [CrossRef]
- Skoda, B.; Malek, L. Dry pea seed proteasome. Plant Physiol. 1992, 99, 1515–1519. [Google Scholar] [CrossRef]
- Chatrou, L.W. The Annonaceae and the Annonaceae project: A brief overview of the state of affairs. Acta Hortic. 1999, 497, 43–58. [Google Scholar] [CrossRef]
- Forbis, T.A.; Floyd, S.K.; De Queiroz, A. The evolution of embryo size in angiosperms and other seed plants: Implications for the evolution of seed dormancy. Evolution 2002, 56, 2112–2125. [Google Scholar]
- Sautu, A.; Baskin, J.M.; Baskin, C.C.; Deago, J.; Condit, R. Classification and ecological relationships of seed dormancy in a seasonal moist tropical forest, Panama, Central America. Seed Sci. Res. 2007, 17, 127–140. [Google Scholar] [CrossRef]
- Duke, J.A. On tropical tree seedlings I. Seeds, seedlings, systems, and systematics. Ann. Mo. Bot. Gard. 1969, 56, 125–161. [Google Scholar] [CrossRef]
- Rubio De Casas, R.; Willis, C.G.; Pearse, W.D.; Baskin, C.C.; Baskin, J.M.; Cavender-Bares, J. Global biogeography of seed dormancy is determined by seasonality and seed size: A case study in the legumes. New Phytol. 2017, 214, 1527–1536. [Google Scholar] [CrossRef] [PubMed]
- Pérez-Amador, M.C.; González-Esquinca, A.; García-Argaez, A.; Bratoeff, E.; Labastida, C. Oil composition and flavonoid profiles of the seeds of three Annona species. Phyton 1997, 61, 77–80. [Google Scholar]
- Abbade, L.C.; Takaki, M. Biochemical and physiological changes of Tabebuia roseoalba (Ridl.) Sandwith (Bignoniaceae) seeds under storage. J. Seed Sci. 2014, 36, 100–107. [Google Scholar] [CrossRef]
- Sun, W.Q. State and phase transition behaviors of Quercus rubra seed axes and cotyledonary tissues: Relevance to the desiccation sensitivity and cryopreservation of recalcitrant seeds. Cryobiology 1999, 38, 372–385. [Google Scholar] [CrossRef] [PubMed]
- Gómez, T.J.; Jasso-Mata, J.J.; Vargas-Hernández, J.J.; Soto-Hernández, R.M. Deterioro de semilla de dos procedencias de Swietenia macrophylla King., bajo distintos métodos de almacenamiento. Ra Ximhai 2006, 2, 223–239. [Google Scholar] [CrossRef]
- Solís-Fuentes, J.A.; Amador-Hernández, C.; Hernández-Medel, M.R.; Durán-De-Bazúa, M.C. Caracterización fisicoquímica y comportamiento térmico del aceite de “almendra” de guanábana (Annona muricata, L.). Grasas Aceites 2010, 61, 58–66. [Google Scholar] [CrossRef]
- Branco, P.C.; Castilho, P.C.; Rosa, M.F.; Ferreira, J. Characterization of Annona cherimola Mill. seed oil from Madeira Island: A possible biodiesel feedstock. J. Am. Oil Chem. Soc. 2010, 87, 429–436. [Google Scholar] [CrossRef]
- Yathish, K.V.; Omkaresh, B.R.; Suresh, R. Biodiesel production from custard apple seed (Annona squamosa) oil and its characteristics study. Int. J. Eng. Res. Technol. 2015, 2, 1938–1942. [Google Scholar]
Storage Duration (Months) | Germinated Seeds (%) | Dormant Seeds (%) | Dead Seeds (%) |
---|---|---|---|
0 | 26.12 B | 59.13 A | 14.75 C |
3 | 52.16 A | 25.50 B | 22.33 BC |
6 | 65.62 A | 18.13 B | 16.25 C |
9 | 13.75 BC | 43.13 AB | 43.12 B |
12 | 2.00 C | 19.50 B | 78.50 A |
LSD | 14.48 | 28.91 | 21.52 |
Treatment | Germination (%) | Latent Seeds (%) | Dead Seeds (%) |
---|---|---|---|
Gibberellic acid | 40.25 A | 34.54 B | 25.19 A |
Control | 17.80 B | 52.25 A | 29.93 A |
LSD | 5.456 | 10.896 | 8.109 |
Fatty | Acid | Percent | ||||||
---|---|---|---|---|---|---|---|---|
Saturated | Unsaturated | |||||||
Palmitic Acid (C16:0) | Stearic Acid (C18:0) | Arachidic Acid (C20:0) | Total Saturated Fatty Acid (SFA) | Oleic Acid (C18:1) | Linoleic Acid (C18:2) | Palmitoleic Acid (C16:0) | Total Unsaturated Fatty Acids (UFA) | UFA/SFA ratio |
33.41 ± 6.02 | 7.72 ± 1.20 | 1.30 ± 0.57 | 42.44 | 43.37 ± 3.67 | 7.24 ± 7.18 | 1.52 ± 0.52 | 52.15 | 1.22 |
Percentage of Fatty Acids | |||||||
---|---|---|---|---|---|---|---|
Seed Condition | Palmitic | Palmitoleic | Stearic | Oleic | Arachidic | Linoleic | Total |
Recently extracted without incubating (intact) | 30.62 A z | 1.71 A | 7.81 A | 47.05 A | 1.69 A | 12.75 A | 98.15 A |
Recently extracted incubated (imbibed) latent | 29.61 A | 1.18 A | 6.03 B | 44.19 A | 0.98 A | 7.62 A | 91.60 B |
LSD | 9.00 | 0.82 | 1.60 | 6.17 | 0.77 | 11.51 | 5.92 |
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Vidal-Lezama, E.; Reyes-Trejo, B.; Villegas-Monter, Á.; Vaquera-Huerta, H.; Robledo-Paz, A.; Martínez-Palacios, A.; Ferreira, G. Effect of Warm-Dry Storage and Supplemental Application of Gibberellins on the Lipid Profile of Chincuya Seeds (Annona purpurea Moc. & Sessé ex Dunal). Agriculture 2024, 14, 385. https://doi.org/10.3390/agriculture14030385
Vidal-Lezama E, Reyes-Trejo B, Villegas-Monter Á, Vaquera-Huerta H, Robledo-Paz A, Martínez-Palacios A, Ferreira G. Effect of Warm-Dry Storage and Supplemental Application of Gibberellins on the Lipid Profile of Chincuya Seeds (Annona purpurea Moc. & Sessé ex Dunal). Agriculture. 2024; 14(3):385. https://doi.org/10.3390/agriculture14030385
Chicago/Turabian StyleVidal-Lezama, Eloísa, Benito Reyes-Trejo, Ángel Villegas-Monter, Humberto Vaquera-Huerta, Alejandrina Robledo-Paz, Alejandro Martínez-Palacios, and Gisela Ferreira. 2024. "Effect of Warm-Dry Storage and Supplemental Application of Gibberellins on the Lipid Profile of Chincuya Seeds (Annona purpurea Moc. & Sessé ex Dunal)" Agriculture 14, no. 3: 385. https://doi.org/10.3390/agriculture14030385
APA StyleVidal-Lezama, E., Reyes-Trejo, B., Villegas-Monter, Á., Vaquera-Huerta, H., Robledo-Paz, A., Martínez-Palacios, A., & Ferreira, G. (2024). Effect of Warm-Dry Storage and Supplemental Application of Gibberellins on the Lipid Profile of Chincuya Seeds (Annona purpurea Moc. & Sessé ex Dunal). Agriculture, 14(3), 385. https://doi.org/10.3390/agriculture14030385