Actividad herbicida preemergente de extractos de Agave lechuguilla Torr., Larrea tridentata (DC.) Coville y Syzygium aromaticum (L.) Merr. & L.M. Perry sobre semillas de frijol y avena como plantas modelo

Authors

  • Marco Antonio Tucuch-Pérez Universidad Autonoma Agraria Antonio Narro
  • Victor Navarro-Macías Universidad Autonoma de Coahuila
  • Alexis Candido del Toro Universidad Autonoma de Coahuila
  • Mayela Govea-Salas Universidad Autonoma de Coahuila
  • Elan Iñaky Laredo-Alcala Universidad Autónoma de Coahuila
  • Cynthia Lizeth Barrera-Martínez Universidad Autónoma de Coahuila
  • Roberto Arredondo-Valdés Universidad Autonoma de Coahuila

Keywords:

Bioherbicidas, compuestos fitoquímicos, malezas, agricultura orgánica

Abstract

Currently, agriculture faces crop losses caused by pests, diseases, and weeds, accounting for approximately 34% of these losses. A weed is any plant that can grow and reproduce outside its normal habitat. The most common approach to addressing this issue is using chemical herbicides. However, these products are harmful to the health of living organisms, negatively impact the environment, and contribute to the emergence of herbicide-resistant weeds. Some plants, such as Agave lechuguilla, Larrea tridentata, and Syzygium aromaticum, have been shown to contain compounds with herbicidal activity. Therefore, an alternative solution to this problem is using plant extracts. This study aimed to evaluate the pre-emergence herbicidal activity of extracts from A. lechuguilla, L. tridentata, and S. aromaticum on the model plants Avena sativa and Phaseolus vulgaris. The results indicated that these species exhibit herbicidal activity. However, this activity depends on the extraction method, as phytochemical characterization revealed that the extraction of active compounds is influenced by the type of solvent used

References

Arredondo-Valdés R, Hernández-Castillo FD, Rocandio-Rodríguez M, Anguiano-Cabello JC, Rosas-Mejía M, Vanoye-Eligio V, Chacón-Hernández JC. 2021. In vitro antibacterial activity of Moringa oleifera ethanolic extract against tomato phytopathogenic bacteria. Phyton 90(3): 895. https://doi.org/10.32604/phyton.2021.014301

Baylis, A. D. 2000. Why glyphosate is a global herbicide: Strengths, weaknesses and prospects. Pest Management Science 56(4): 299–308. https://doi.org/10.1002/(SICI)1526-4998(200004)56:4<299::AID-PS144>3.0.CO;2-K

Birasuren B, Kim NY, Jeon HL, Kim MR. 2013. Evaluation of the antioxidant capacity and phenolic content of Agriophyllum pungens seed extracts from Mongolia. Preventive nutrition and food science, 18(3), 188. https://doi.org/10.3746/pnf.2013.18.3.188

Böcker T, Möhring N, Finger R. 2019. Herbicide free agriculture? A bio-economic modelling application to Swiss wheat production. Agricultural Systems 173: 378–392. https://doi.org/10.1016/j.agsy.2019.03.001

Bustamante S, Morales M. 2012. Té verde, Fitomedicamento contra la Influenza A: Rol de las Catequinas. Boletín Latinoamericano y del Caribe de Plantas Medicinales y Aromáticas 11(2): 106 – 110. http://158.170.64.117:443/deprecated/blacpma_old/images/docs/011-002/004_editorial.pdf

Camacho-Campos C, Pérez-Hernández Y, Valdivia-Ávila A, Rubio-Fontanills Y, Fuentes-Alfonso L. 2020. Evaluación fitoquímica, antibacteriana y molusquicida de extractos de hojas de Agave spp. Revista Cubana de Química 32(3): 390-405. http://scielo.sld.cu/scielo.php?pid=S2224-54212020000300390&script=sci_arttext&tlng=en

Castillo-Quiroz D, Martinez-Burciaga OU, Ríos-González LJ, Rodríguez-de la Garza JA, Morales-Martínez TK, Castillo-Reyes F, Avila-Flores DY. 2014. Determinación de áreas potenciales para plantaciones de Agave lechuguilla Torr. para la producción de etanol. Revista Científica de la Universidad Autónoma de Coahuila 6(12): 5-12.

Cerda-Cejudo ND, Buenrostro-Figueroa JJ, Sepúlveda L, Torres-Leon C, Chávez-González ML, Ascacio-Valdés JA, Aguilar CN. 2022. Recovery of ellagic acid from Mexican rambutan peel by solid-state fermentation-assisted extraction. Food and Bioproducts Processing 134: 86-94. https://doi.org/10.1016/j.fbp.2022.05.001

De la Cruz, R., & Gómez, J. F. (1971). Caña de azúcar. Instituto Colombiano Agropecuario (ICA), 261.

Falleh H, Ksouri R, Chaieb K, Karray-Bouraoui N, Trabelsi N, Boulaaba M, Abdelly C. 2008. Phenolic composition of Cynara cardunculus L. organs, and their biological activities. Comptes Rendus - Biologies 331(5): 372–379. https://doi.org/10.1016/j.crvi.2008.02.008

Cassalett-Davila C, Torres-Aguas J, Isaacs-Echeverri C. 1995. El cultivo de la caña en la zona azucarera de Colombia. [citado 2024 Dic 18]. Disponible en: https://www.cenicana.org/pdf_privado/documentos_no_seriados/libro_el_cultivo_cana/libro_p3-394.pdf

Kaab SB, Rebey IB, Hanafi M, Hammi KM, Smaoui A, Fauconnier ML, Ksouri R. 2020. Screening of Tunisian plant extracts for herbicidal activity and formulation of a bioherbicide based on Cynara cardunculus. South African Journal of Botany 128: 67-76.

Khan N., Mukhtar H. 2007. Tea polyphenols for health promotion. Life sciences 81(7): 519-533. https://doi.org/10.1016/j.lfs.2007.06.011

Martins S, Amorim ELC, Sobrinho TJSP, Saraiva AM, Pisciottano MNC, Aguilar CN, Teixeira JA, Mussatto SI. 2013. Antibacterial activity of crude methanolic extract and fractions obtained from Larrea tridentata leaves. Industrial Crops and Products 41(1): 306– 311. https://doi.org/10.1016/j.indcrop.2012.04.037

Mittal M, Gupta N, Parashar P, Mehra V, Khatri M. 2016. Phytochemical evaluation and pharmacological activity of Syzygium aromaticum: a comprehensive review. International Journal oh Pharmacy and Pharmaceutical Sciences 6(8): 67-72. https://journals.innovareacademics.in/index.php/ijpps/article/view/2055/10326

Ni X, Bai H, Han J, Zhou Y, Bai Z, Luo S, Li Z. 2024. Inhibitory activities of essential oils from Syzygium aromaticum inhibition of Echinochloa crus-galli. PLOS ONE 19(6): e0304863. https://doi.org/10.1371/journal.pone.0304863

Nur Suraya Abdullah NSA, Noorshilawati Abdul Aziz NAA, Rosminah Mailon RM 2017. Molluscicidal activity of Entada rheedii stem bark methanolic extract against paddy pest Pomacea canaliculata (golden apple snail). http://dx.doi.org/10.17576/mjas-2017-2101-06

Omezzine F, Ladhari A, Rinez A, Haouala R. 2011. Potent herbicidal activity of Inula crithmoïdes L. Scientia Horticulturae 130(4): 853–861. https://doi.org/10.1016/j.scienta.2011.08.013

Paguaga-González YG. 2007. Evaluación de Clomazone (Command) aplicado como pre emergente y post emergente en el cultivo de camote (Ipomoea batatas). Zamorano, Escuela Agrícola. https://bdigital.zamorano.edu/handle/11036/740

Peña-Torres EF, González-Ríos H, Avendaño-Reyes L, Valenzuela-Grijalva NV, Pinelli-Saavedra A, Muhlia-Almazán A, Peña-Ramos EA. 2019. Ácidos hidroxicinámicos en producción animal: farmacocinética, farmacodinamia y sus efectos como promotor de crecimiento Revista mexicana de ciencias agropecuarias 10(2): 391-415. https://doi.org/10.22319/rmcp.v10i2.4526

Perdomo F, Vibrans H, Romero A, Domínguez JA, Medina JL. 2004. Análisis de SHE, una herramienta para estudiar la diversidad de maleza. Revista Fitotecnia Mexicana 27(Especial_1): 57-57. https://doi.org/10.35196/rfm.2004.Especial_1.57

Reyes-Agüero JA, Aguirre-Rivera JR, Peña-Valdivia CB. 2017. Biología y aprovechamiento de Agave lechuguilla Torrey. Botanical Sciences 88(67): 75. https://doi.org/10.17129/botsci.1626

Solis-De la Cerda D, Arreola-Chapa C, Iglesias-Galvan JA, Garza-Ordaz CS, Sanchez-Galvan H, Saenz-Esqueda MA. 2016. Analisis fitoquimico y efectos de extracto de Larrea tridentata y Nicotiana glauca en artropofauna asociada a plantas de pepino (Cucumis sativus L.). Diversidad Biologica de la Comarca Lagunera: 18-24.

Tambe BD, Pedhekar P, Harshali P. 2021. Phytochemical Screening and Antibacterial Activity of Syzygium cumini (L.) (Myrtaceae) Leaves Extracts. Asian Journal of Phermaceutical Research and Development 9(5): 50-54. https://dx.doi.org/10.22270/ajprd.v9i51023

Tucuch-Pérez MA, Mendo-González EI, Ledezma-Pérez A, Iliná A, Hernández-Castillo FD, Barrera-Martinez CL, Arredondo-Valdés R. 2023. The Herbicidal Activity of Nano-and MicroEncapsulated Plant Extracts on the Development of the Indicator Plants Sorghum bicolor and Phaseolus vulgaris and Their Potential for Weed Control. Agriculture 13(11): 2041. https://doi.org/10.3390/agriculture13112041

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Published

2026-02-16

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Artículos Científicos