Harvest Season and Morphological Variation of Canistel (Pouteria campechiana) Fruit and Leaves Collected in Different Zones of Mexico
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Zones
2.2. Plant Material: Growing Conditions and Selection
2.3. Characterization of Fruit
2.4. Characterization of Leaf Morphology
- -
- Area: the number of pixels within the shape bounded by the perimeter.
- -
- Perimeter: the number of pixels forming the boundary of the leaf.
- -
- Major diameter: length of the leaf.
- -
- Minor diameter: width of the leaf.
- -
- Circularity: the ratio 4πA/p2, excluding local irregularities (equal to 1 for a circular object and less than 1 for non-circular object).
- -
- Solidity: pixel density, or the number of pixels joined without gaps; an object with greater solidity has fewer gaps, and an object with less solidity has more gaps.
- -
- Leaf angle: evaluated by manually segmenting and marking the main and secondary veins of each leaf on the abaxial face, using Freehand line > Draw > Measure.
2.5. Statistical Analysis
3. Results
3.1. Study Zones
3.2. Characterization of Fruits
3.3. Characterization of Leaf Morphology
3.4. Correlation Analysis
3.5. Principal Component Analysis
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Azurdia, C. Tres Especies de Zapote en América Tropical: Pouteria campechiana (Canistel), P. sapota (Zapote Mamey) y P. viridis (Zapote Verde); International Centre for Under Utilised Crops: Southampton, UK, 2005; ISBN 085432836X. [Google Scholar]
- Colunga-GarciaMarin, P.; Zizumbo-Villarreal, D. Domestication of plants in maya lowlands. Econ. Bot. 2004, 58, S101–S110. [Google Scholar]
- Chiamolera, F.M.; Silva, A.C.C.; Sabião, R.R.; Cunha, T.P.L.; Martins, A.B.G. Clonagem de canistel por esta-quia. Rev. Bras. Frutic. 2014, 36, 649–654. [Google Scholar] [CrossRef]
- Awang-Kanak, F.; Bakar, M.F.A. Canistel-Pouteria campechiana (Kunth) Baehni. In Exotic Fruits; Rodríguez, S., de Oliveira, E., Sousa, E., Eds.; Academic Press: London, UK, 2018; pp. 107–111. ISBN 978-0-12-803138-4. [Google Scholar] [CrossRef]
- González, G.C. Algunas Ideas Sobre la Presencia del Zapote en el Culto a Xipe Totee. Estud. Mesoam. 2004, 6, 38–47. Available online: https://www.iifilologicas.unam.mx/estmesoam/uploads/Volúmenes/Volumen%206/zapote_xipe_carlos_gnzlz2.pdf (accessed on 17 December 2020).
- Aseervatham, S.B.; Manthra, V.; Ireen, S.; Thilagameena, S. Free radical scavenging potential and antihaemolytic activity of methanolic extract of Pouteria campechiana (Kunth) Baehni. and Tricosanthes tricuspidata Linn. Biocatal. Agric. Biotechnol. 2019, 18, 101031. [Google Scholar] [CrossRef]
- Kahkeshani, N.; Farzaei, F.; Fotouhi, M.; Alavi, S.S.; Bahramsoltani, R.; Naseri, R.; Momtaz, S.; Abbasabadi, Z.; Rahimi, R.; Farzaei, M.H.; et al. Pharmacological effects of gallic acid in health and diseases: A mechanistic review. Iran J. Basic Med. Sci. 2019, 22, 225–237. [Google Scholar] [CrossRef]
- Fitriansyah, S.N.; Fidrianny, I.; Hartati, R. Pharmacological Activities and Phytochemical Compounds: Overview of Pouteria Genus. Pharmacogn. J. 2021, 13, 577–584. [Google Scholar] [CrossRef]
- Moreira Brito, J.C.; Lima, W.G.; da Cruz Nizer, W.S. Quercetin as a potential nutraceutic against coronavirus disease 2019 (COVID-19). Ars Pharm. 2021, 62, 85–89. [Google Scholar]
- Ma, J.; Yang, H.; Basile, M.J.; Kennelly, E.J. Analysis of Polyphenolic Antioxidants from the Fruits of Three Pouteria Species by Selected Ion Monitoring Liquid Chromatography-Mass Spectrometry. J. Agric. Food Chem. 2004, 52, 5873–5878. [Google Scholar] [CrossRef] [PubMed]
- Kong, K.W.; Khoo, H.E.; Prasad, N.K.; Chew, L.Y.; Amin, I. Total Phenolics and Antioxidant Activities of Pouteria Campechiana Fruit Parts. Sains Malays. 2013, 42, 123–127. [Google Scholar]
- Manach, C.; Scalbert, A.; Morand, C.; Rémésy, C.; Jiménez, L. Polyphenols: Food Sources and Bioavailability. Am. J. Clin. Nutr. 2004, 79, 727–747. [Google Scholar] [CrossRef]
- Evangelista-Lozano, S.; Granados-Vega, K.M.; Pérez-Cortes, A.T.; Escobar-Arellano, S.L.; Rodríguez-López, A.; Pérez-Bárcena, J.F. Características de fruto de selecciones de canistel del estado de Morelos. Acta Fitogenética 2021, 7, 73. [Google Scholar]
- INEGI, Instituto Nacional de Estadística, Geografía e Informática. Anuario Estadístico y Geográfico por Entidad Federativa 202; INEGI: Morelos, México, 2021.
- Evangelista-Lozano, S.; Robles-Jímarez, H.R.; Pérez-Barcena, J.F.; Agama-Acevedo, E.; Briones-Martínez, R.; Cruz-Castillo, J.G. Fruit Characterization of Pouteria Campechiana ([Kunth] Baehni) in Three Different Stages of Maturity. Fruits 2021, 76, 116–122. [Google Scholar] [CrossRef]
- FAO, Food and Agriculture Organization. Manual de capacitación: Prevención de pérdidas de alimentos postcosecha: Frutas, hortalizas, raíces y tubérculos. In Manual de Capacitación; Barden, J., Wills, R.B.H., Toet, A., Shepherd, A., Eds.; Capacitación 17/2; Colección FAO: Roma, Italy, 1993; Available online: http://www.fao.org/3/t0073s/T0073S00.htm#Contents (accessed on 11 November 2022).
- Domene, M.; Rodríguez, M. Parámetros de Calidad Interna en Hortalizas y Frutas en la Industria Agroalimentaria [en línea]. 2014, Volume 1, pp. 1–18. Available online: http://www.fundacioncajamar.es/pdf/bd/comun/transferencia/005-calidadinterna-1410512030.pdf (accessed on 11 March 2022).
- Kim, H.Y. Analysis of variance (ANOVA) comparing means of more than two groups. Restor. Dent. Endod. 2014, 39, 74–77. [Google Scholar] [CrossRef]
- Pennington, T.D.; Sarukhán, J. Árboles Tropicales de México. Manual Para la Identificación de las Principales Especies; Dirección General de Publicaciones y Fomento Editorial, Universidad Autónoma de México: Mexico City, México, 2016; p. 438. ISBN 9789703216437. [Google Scholar]
- Dussi, M.C. Intercepción y distribución lumínica en agroecosistemas frutícolas. In Arboles Frutales: Ecofisiología, Cultivo y Aprovechamiento; Sozzi, G.O., Ed.; Universidad de Buenos Aires: Buenos Aires, Argentina, 2007; pp. 200–241. [Google Scholar]
- Climate Data: Clima Morelos. Available online: https://es.climate-data.org/america-del-norte/mexico/morelos-28/ (accessed on 4 May 2023).
- Atapattu, N.S.B.M.; Sanjeewani, K.G.S.; Senaratna, D. Effects of dietary canistel (Pouteria campechiana) fruit meal on growth performance and carcass parameters of broiler chicken. Trop. Agric. Res. Ext. 2014, 16, 34–39. [Google Scholar] [CrossRef]
- Cota-Sánchez, J.H.; Abreu, D.D. Vivipary and Offspring Survival in the Epiphytic Cactus Epiphyllum Phyllanthus (Cactaceae). J. Exp. Bot. 2007, 58, 3865–3873. [Google Scholar] [CrossRef] [PubMed]
- Fenner, M.; Thompson, K. The Ecology of Seeds; Cambridge University Press: Cambridge, UK, 2005. [Google Scholar]
- Penfild, S.; MacGregor, D.R. Effects of environmental variation during seed production on seed dormancy and germination. J. Exp. Bot. 2016, 68, 819–825. [Google Scholar] [CrossRef]
- Park, K.; Lee, H.; Jang, B.-K.; Cho, J.S. Dormancy Characteristics of Euphorbia maculata L. Seeds and Strategies for Their Effective Germination. Horticulturae 2023, 9, 990. [Google Scholar] [CrossRef]
- Borisjuk, L.; Weber, H.; Panitz, R.; Manteuffel, R.; Wobus, U. Embryogenesis of Vicia faba L.: Histodifferentiation in Relation to Starch and Storage Protein Synthesis. J. Plant Physiol. 1995, 147, 203–218. [Google Scholar] [CrossRef]
- Farnsworth, E. The ecology and physiology of viviparous and recalcitrant seeds. Annu. Rev. 2000, 31, 107–138. Available online: https://www.jstor.org/stable/pdf/221727.pdf (accessed on 2 March 2023). [CrossRef]
- Bayuelo-Jiménez, J.S.; Rivera-Alcántar, N.; Ochoa, I. Evaluation of promising Sapotaceae species for fruit production in Michoacan, México. Acta Hortic. 2010, 864, 53–60. [Google Scholar] [CrossRef]
- SSander, N.L.; da Silva, C.J.; Duarte, A.V.M.; Zago, B.W.; Galbiati, C.; Viana, I.G.; de Arruda, J.C.; Dardengo, J.E.; Poletine, J.P.; Leite, M.H.S.; et al. The Influence of Environmental Features on the Morphometric Variation in Mauritia flexuosa L.f. Fruits and Seeds. Plants 2020, 9, 1304. [Google Scholar] [CrossRef] [PubMed]
- Atkin, O.K.; Loveys, B.R.; Atkinson, L.J.; Pons, T.L. Phenotypic plasticity and growth temperature: Understanding interspecific variability. J. Bot. 2006, 57, 267–281. [Google Scholar] [CrossRef] [PubMed]
Study Zones | |||
---|---|---|---|
Descriptive Characteristics | Zone 1 | Zone 2 | Zone 3 |
Geo location | 18.87595 LN-99.077464 LW | 18.884546 LN-99.17745 LW | 18.824988 LN-99.096042 LW |
Locality | Yautepec de Zaragoza | Jiutepec | Yautepec de Zaragoza |
Neighborhood | Otilio Montaño | Jiutepec Downtown | San Isidro |
m.a.s.l. 1 | 1210 | 1350 | 1059 |
Weather | Semi-/sub-humid (66% of the year), the warmest of the temperate climates. Warm sub-humid (34%), with summer rains, the driest of the sub-humid climates, little fluctuation. | Semi-warm and sub-humid (28%), the coolest of the warm climates. Warm sub-humid with summer rainfall (72%), the greater part of the year. | Warm sub-humid (100%), dry (low deciduous forest). |
Precipitation | Medium sub-humid in summer, with rainfall concentrated in that season. Dry from November to April. | Average annual rainfall is 1021 mm; 890 mm from June to October, the rainy season. | Summer rainfall; winter rainfall less than 5%. |
Temperature | Hot summer (34 ± 4 °C), extreme nighttime temperature drops (18 ± 3 °C); Ganges-type temperature regime (highest temperature in May, before summer solstice and rainy season. | Isothermal (the average thermal variation of the year does not exceed 3 °C), Ganges-type temperature regime, ranging from 11 °C to 32 °C, with an average of 21.2 °C a maximum average variation of 31.4 °C, and an absolute maximum of 39.8 °C. Hottest months are April and May; coolest months are December and January. | Extreme hot summer days (35 ± 3 °C); evening temperature drops (20 ± 3 °C); rest of the year cooler but with similar drop in evening. |
Harvest season (Months) | November–December | May–July | March–April |
Early seed germination (%) | 0.2 | 30 | 0.1 |
Zone 1 | Zone 2 | Zone 3 | |
---|---|---|---|
Parameters | Mean | Mean | Mean |
Fruit weight (g) | 146.24 ± 25.11 a | 261.94 ± 76.78 b | 160.18 ± 51.64 a |
Fruit polar diameter (cm) | 9.49 ± 1.16 a | 11.03 ± 0.84 b | 9.07 ± 0.97 a |
Fruit equatorial diameter (cm) | 5.49 ± 0.46 a | 7.29 ± 0.96 b | 6.03 ± 0.93 a |
Pulp weight (g) | 122.76 ± 27.62 a | 198.88 ± 54.39 b | 101.26 ± 35.87 a |
Number of seeds | 1.12 ± 0.33 a | 2.59 ± 0.87 b | 1.29 ± 0.47 a |
Seed weight (g) | 10.12 ± 2.26 a | 19.71 ± 5.68 b | 19.78 ± 3.29 b |
Seed polar diameter (cm) | 4.29 ± 0.45 b | 4.49 ± 0.26 b | 5.50 ± 0.57 a |
Seed equatorial diameter (cm) | 2.08 ± 0.28 b | 2.24 ± 0.17 a,b | 2.40 ± 0.22 a |
Total soluble solids (SST) | 27.47 ± 2.79 a | 33.18 ± 0.39 b | 26.12 ± 1.22 a |
Parameters | LEAVES | ||
---|---|---|---|
Zone 1 | Zone 2 | Zone 3 | |
Mean | Mean | Mean | |
Area | 52.52 b | 48.95 a | 63.54 c |
Perimeter | 44.79 b | 46.73 a | 48.46 c |
Major diameter | 16.14 b | 16.52 a | 15.99 b |
Minor diameter | 4.10 b | 3.77 a | 5.07 c |
Circularity | 0.33 b | 0.28 a | 0.34 c |
Solidity | 0.92 a | 0.92 a | 0.90 b |
Angle | 48.46 a | 45.42 a | 56.67 b |
Area | Perimeter | Major Diameter | Minor Diameter | Circularity | Solidity | |
---|---|---|---|---|---|---|
Perimeter | 0.643 | |||||
0.000 ** | ||||||
Major diameter | 0.515 | 0.76 | ||||
0.000 ** | 0.000 ** | |||||
Minor diameter | 0.911 | 0.399 | 0.12 | |||
0.000 ** | 0.000 ** | 0.017 * | ||||
Circularity | 0.552 | −0.279 | −0.171 | 0.7 | ||
0.000 ** | 0.000 ** | 0.001 ** | 0.000 ** | |||
Solidity | −0.291 | −0.466 | −0.076 | −0.324 | 0.162 | |
0.000 ** | 0.000 ** | 0.129 NS | 0.000 ** | 0.001 ** | ||
Angle | 0.277 | 0.018 | −0.07 | 0.356 | 0.331 | −0.124 |
0.000 NS | 0.724 ** | 0.163 ** | 0.000 NS | 0.000 NS | 0.013 NS |
Principal Component | Eigenvalue | Variance (%) | Cumulative Variance (%) |
---|---|---|---|
1 | 3.0615 | 43.7 | 43.7 |
2 | 1.9676 | 28.1 | 71.8 |
3 | 1.0175 | 14.5 | 86.4 |
4 | 0.7358 | 10.5 | 96.9 |
5 | 0.2118 | 3 | 99.9 |
6 | 0.0045 | 0.1 | 100 |
7 | 0.0013 | 0 | 100 |
Variable | Principal Components | ||
---|---|---|---|
1 | 2 | 3 | |
Area | 0.559 | −0.056 | −0.174 |
Perimeter | 0.408 | 0.476 | 0.006 |
Major Diameter | 0.300 | 0.454 | −0.434 |
Minor Diameter | 0.507 | −0.270 | 0.029 |
Circularity | 0.256 | −0.588 | −0.243 |
Solidity | −0.254 | −0.216 | −0.765 |
Angle | 0.212 | −0.313 | 0.370 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Granados-Vega, K.M.; Evangelista-Lozano, S.; Escobar-Arellano, S.L.; Rodríguez-García, T.; Pérez-Bárcena, J.F.; Cruz-Castillo, J.G. Harvest Season and Morphological Variation of Canistel (Pouteria campechiana) Fruit and Leaves Collected in Different Zones of Mexico. Horticulturae 2023, 9, 1214. https://doi.org/10.3390/horticulturae9111214
Granados-Vega KM, Evangelista-Lozano S, Escobar-Arellano SL, Rodríguez-García T, Pérez-Bárcena JF, Cruz-Castillo JG. Harvest Season and Morphological Variation of Canistel (Pouteria campechiana) Fruit and Leaves Collected in Different Zones of Mexico. Horticulturae. 2023; 9(11):1214. https://doi.org/10.3390/horticulturae9111214
Chicago/Turabian StyleGranados-Vega, Karen M., Silvia Evangelista-Lozano, Sandra L. Escobar-Arellano, Tomás Rodríguez-García, José F. Pérez-Bárcena, and Juan G. Cruz-Castillo. 2023. "Harvest Season and Morphological Variation of Canistel (Pouteria campechiana) Fruit and Leaves Collected in Different Zones of Mexico" Horticulturae 9, no. 11: 1214. https://doi.org/10.3390/horticulturae9111214
APA StyleGranados-Vega, K. M., Evangelista-Lozano, S., Escobar-Arellano, S. L., Rodríguez-García, T., Pérez-Bárcena, J. F., & Cruz-Castillo, J. G. (2023). Harvest Season and Morphological Variation of Canistel (Pouteria campechiana) Fruit and Leaves Collected in Different Zones of Mexico. Horticulturae, 9(11), 1214. https://doi.org/10.3390/horticulturae9111214