Potencial bioherbicida pre-emergente de extractos de gobernadora y hojasén obtenidos por microondas/ultrasonidos sobre calabacita loca

Autores/as

  • Lluvia de Abril Alexandra Soriano Melgar Universidad Autónoma de Coahuila image/svg+xml , Programa de Investigadoras e Investigadores por México
    • Grecia Estefanía Martínez Sosa Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila. Blvd. Venustiano Carranza 935, República, 25280. Saltillo, Coahuila de Zaragoza, México.
      • Martha Monzerrath Orozco-Sifuentes Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila. Blvd. Venustiano Carranza 935, República, 25280. Saltillo, Coahuila de Zaragoza, México.
        • Juan Alberto Ascacio‐Valdés Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila. Blvd. Venustiano Carranza 935, República, 25280. Saltillo, Coahuila de Zaragoza, México.
          • Lissethe Palomo‐Ligas Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila. Blvd. Venustiano Carranza 935, República, 25280. Saltillo, Coahuila de Zaragoza, México.
            • Lizeth Guadalupe Campos-Muzquiz Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila. Blvd. Venustiano Carranza 935, República, 25280. Saltillo, Coahuila de Zaragoza, México.

              DOI:

              https://doi.org/10.19136/era.a13n1.4427

              Palabras clave:

              compuestos alelopáticos, extractos naturales, mecanismos de acción, estrés oxidativo, control de malezas

              Resumen

              Los métodos de control de malezas seguros y efectivos son esenciales para una producción sostenible. Los bioherbicidas de extractos de plantas, como gobernadora (Larrea tridentata) y hojasén (Flourensia cernua), ofrecen una alternativa prometedora, ya que contienen compuestos alelopáticos que interrumpen la germinación y el crecimiento de malezas. Este estudio evaluó el efecto de los extractos de L. tridentata y F. cernua en el control pre-emergente de la calabaza loca (Cucurbita foetidissima). Se prepararon los extractos usando microondas y ultrasonido con solventes "verdes" en distintas dosis [3 (baja), 6 (media) y 12 (alta) L de extractos en 200 L por hectárea] sobre semillas de C. foetidissima. Se evaluaron sus efectos en germinación, crecimiento de plántulas, biomasa seca y mecanismos de acción [pigmentos fotosintéticos, proteínas, enzimas antioxidantes (catalasa y peroxidasa), compuestos fenólicos, capacidad antioxidante y estrés oxidativo]. Se identificaron fitoquímicos como quercetina y (+)-galocatequina en los extractos. La dosis alta redujo la germinación y el crecimiento de las plántulas de C. foetidissima en comparación con el control. Aunque la biomasa seca no mostró un cambio significativo, se observó una tendencia a la reducción en las plántulas tratadas. Los niveles de clorofila y carotenoides disminuyeron en todos los tratamientos, mientras que las proteínas no se vieron afectadas. La dosis baja redujo la actividad de la catalasa, y la dosis alta aumentó la peroxidación lipídica. El estudio demuestra que los extractos de plantas alelopáticas inhiben el crecimiento de C. foetidissima, siendo la concentración y el contenido de los compuestos esenciales para su eficacia.

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              Referencias

              Anupama, Deepika, Singh AK, Khare P (2023) An insight into herbicidal properties of Ocimum leaf and oil-loaded biochar formulations. Industrial Crops and Products 205: 117440. https://doi.org/10.1016/j.indcrop.2023.117440

              Aranda-Ledesma NE, González-Hernández MD, Rojas R, Paz-González AD, Rivera G, Luna-Sosa B, Martínez-Ávila GCG (2022) Essential oil and polyphenolic compounds of Flourensia cernua leaves: chemical profiling and functional properties. Agronomy 12(10): 1-9. https://doi.org/103390/agronomy12102274

              Arora S, Husain T, Prasad SM (2024) Allelochemicals as biocontrol agents: Promising aspects, challenges and opportunities. South African Journal of Botany 166: 503-511. https://doi.org/101016/jsajb202401029

              Ascacio‐Valdés JA, Aguilera‐Carbó AF, Buenrostro JJ, Prado‐Barragán A, Rodríguez‐Herrera R, Aguilar CN (2016) The complete biodegradation pathway of ellagitannins by Aspergillus niger in solid‐state fermentation. Journal of Basic Microbiology 56(4): 329-336. https://doi.org/10.1002/jobm.201500557

              Bordin ER, Frumi Camargo A, Stefanski FS, Scapini T, Bonatto C, Zanivan J, Treichel H (2021) Current production of bioherbicides: mechanisms of action and technical and scientific challenges to improve food and environmental security. Biocatalysis and Biotransformation 39(5): 346-359. https://doi.org/101080/1024242220201833864

              Bradford MM (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry 72(1-2): 248-254. https://doi.org/10.1016/0003-2697(76)90527-3

              Brand-Williams W, Cuvelier ME, Berset C (1995) Use of a free radical method to evaluate antioxidant activity. LWT - Food Science and Technology 28(1): 25-30. https://doi.org/10.1016/S0023-6438(95)80008-5

              Castillo-Reyes F, León-Juárez ED, Nery-Flores SD, Flores-Gallegos AC, Campos-Muzquiz LG, Ascacio-Valdés JA, Rodríguez-Herrera R (2022) Polyphenols extraction from creosote bush, tarbush, and soursop using ultrasound-microwave and their effect against Alternaria alternata and Fusarium solani. Revista Mexicana de Fitopatología 40(3): 349-376. https://doi.org/10.18781/r.mex.fit.2206-7

              Choudhary CS, Behera B, Raza MB, Mrunalini K, Bhoi TK, Lal MK, Das TK (2023) Mechanisms of allelopathic interactions for sustainable weed management. Rhizosphere 25: 100667. https://doi.org/101016/jrhisph2023100667

              Da Silva-Carvalho RDS, Silva MAD, Borges MTMR, Forti VA (2023) Compounds identified in plant extracts applied to agriculture and seed treatment. Ciência Rural 54: e20220424. https://doi.org/101590/0103-8478cr20220424

              De León-Zapata MPC, Lorenzo BPL, Rua-Rodríguez ML, Ventura J, Rodríguez-Herrera R, Aguilar CN (2021) Effect of Flourensia cernua bioactive compounds on stability of an oil-in-water (O/W) emulsion. Biointerface Research in Applied Chemistry 11(6): 13997-14006. https://doi.org/1033263/BRIAC1161399714006

              DeLoach CJ, Boldt PE, Cordo HA, Johnson HB, Cuda JP (1986) Weeds common to Mexican and US rangelands: proposals for biological control and ecological studies In Management and utilization of arid land plants: Symposium proceedings. Gen Tech Rep RM-135 United States Department of Agriculture Forest Service. Saltillo, Mexico. pp. 49-68.

              Duarte D, Galhano C, Dias MC, Castro P, Lorenzo P (2023) Invasive plants and agri-food waste extracts as sustainable alternatives for the preemergence urban weed control in Portugal Central Region. International Journal of Sustainable Development World Ecology 30(6): 605-619. https://doi.org/101080/1350450920232175737

              Erida G, Saidi N, Hasanuddin S (2019) Allelopathic screening of several weed species as potential bioherbicides. IOP Conference Series: Earth and Environmental Science 334: 1-14. https://doi.org/101088/1755-1315/334/1/012034

              Estell RE, Fredrickson EL, James DK (2016) Effect of light intensity and wavelength on concentration of plant secondary metabolites in the leaves of Flourensia cernua. Biochemical Systematics and Ecology 65: 108-114. https://doi.org/101016/jbse201602019

              Estrada-Castillón E, Garza-López M, Villarreal-Quintanilla JÁ, Salinas-Rodríguez MM, Soto-Mata BE, González-Rodríguez H, Cantú-Ayala C (2014) Ethnobotany in Rayones, Nuevo León, México. Journal of Ethnobiology and Ethnomedicine 10: 1-13. https://doi.org/101186/1746-4269-10-62

              FAO. (2009). Global agriculture towards 2050. How to Feed the World in 2050. Agricultural Development Economics Division, Economic and Social Development Department, Rome, Italy. http://www.fao.org/fi leadmin/templates/wsfs/docs/Issues_papers/HLEF2050_Global_Agriculture. pdf

              Gao WT, Su WH (2024) Weed management methods for herbaceous field crops: a review. Agronomy 14(3): 1-23. https://doi.org/103390/agronomy14030486

              Gniazdowska A, Bogatek R (2005) Allelopathic interactions between plants. Multi site action of allelochemicals. Acta Physiologiae Plantarum 27: 395-407. https://doi.org/10.1007/s11738-005-0017-3

              Gulzar A, Siddiqui MB, Bi S. (2014). Assessment of allelopathic potential of Cassia sophera L on seedling growth and physiological basis of weed plants. African Journal of Biotechnology 13(9): 1037-1046. https://doi.org/105897/AJB201313512

              Hasan M, Ahmad-Hamdani MS, Rosli AM, Hamdan H (2021) Bioherbicides: An eco-friendly tool for sustainable weed management. Plants 10(6): 1212. https://doi.org/103390/plants10061212

              Hyder PW, Fredrickson EL, Estell RE, Tellez M, Gibbens RP (2002) Distribution and concentration of total phenolics, condensed tannins, and nordihydroguaiaretic acid (NDGA) in creosotebush (Larrea tridentata). Biochemical Systematics and Ecology 30(10): 905-912. https://doi.org/101016/S0305-1978(02)00050-9

              Kanatas P (2020) Potential role of Eucalyptus spp. and Acacia spp. allelochemicals in weed management. Chilean Journal of Agricultural Research 80(3): 452-458. https://doi.org/10.4067/S0718-58392020000300452

              Kar M, Mishra D (1976) Catalase, peroxidase, and polyphenoloxidase activities during rice leaf senescence. Plant Physiology 57(2): 315-319. https://doi.org/10.1104/pp.57.2.315

              Khamare Y, Chen J, Marble SC (2022) Allelopathy and its application as a weed management tool: A review. Frontiers in Plant Science 13: 1034649. https://doi.org/103389/fpls20221034649

              Khan R, Khan MA, Waqas M, Haroon M, Hussain Z, Khan N, Bashir S (2012) Bioherbicidal activity of some winter weeds against some crops. Pakistan Journal of Weed Science Research 18(4): 561-569. https://doi.org/10.5555/20133131788

              Kostina-Bednarz M, Płonka J, Barchanska H (2023) Allelopathy as a source of bioherbicides: Challenges and prospects for sustainable agriculture. Reviews in Environmental Science and Bio/Technology 22(2): 471-504. https://doi.org/101007/s11157-023-09656-1

              Li J, Chen H, Guo C, Chen Q, Zhao T, Chen X, Du Y, Du H, Miao Y, Liu D (2023) Artemisia argyi essential oil exerts herbicidal activity by inhibiting photosynthesis and causing oxidative damage. Industrial Crops and Products 194: 116258. https://doi.org/10.1016/j.indcrop.2023.116258

              Linares-Braham A, Palomo-Ligas L, Nery-Flores SD (2023) Bioactive compounds and pharmacological potential of hojasén (Flourensia cernua): A mini review. Plant Science Today 10(sp2): 304-312. https://doi.org/1014719/jst2546

              Martinez C, Valenzuela JL, Jamilena M (2021) Genetic and pre- and postharvest factors influencing the content of antioxidants in cucurbit crops, Antioxidants 10(6): 894. https://doi.org/103390/antiox10060894

              Mata R, Bye R, Linares E, Macías M, Rivero-Cruz I, Pérez O, Timmermann BN (2003) Phytotoxic compounds from Flourensia cernua. Phytochemistry 64(1): 285-291. https://doi.org/101016/S0031-9422(03)00217-6

              Mehdizadeh M, Mushtaq W (2020) Biological control of weeds by allelopathic compounds from different plants: a bioherbicide approach. In: Natural Remedies for Pest, Disease and Weed Control. Academic Press. pp.107-117. https://doi.org/10.1016/B978-0-12-819304-4.00009-9

              Mejía-Morales C, Rodríguez-Macías R, Salcedo-Pérez E, Zamora-Natera JF, Rodríguez-Zaragoza FA, Molina-Torres J, Délano-Frier JP, Zañudo-Hernández J (2021) Contrasting metabolic fingerprints and seed protein profiles of Cucurbita foetidissima and C. radicans fruits from feral plants sampled in central Mexico. Plants 10: 2451. https://doi.org/103390/plants10112451

              Morales-Ubaldo AL, Rivero-Perez N, Valladares-Carranza B, Madariaga-Navarrete A, Higuera-Piedrahita RI, Delgadillo-Ruiz L, Bañuelos-Valenzuela R, Zaragoza-Bastida A (2022) Phytochemical compounds and pharmacological properties of Larrea tridentata. Molecules 27: 5393. https://doi.org/103390/molecules27175393

              Motmainna M, Juraimi AS, Ahmad-Hamdani MS, Hasan M, Yeasmin S, Anwar MP, Islam AM (2023) Allelopathic potential of tropical plants—a review. Agronomy 13(8): 2063. https://doi.org/103390/agronomy13082063

              Nadeem M, Safdar ME, Hayyat MS, Ibrahim M, Sandhu H, Shehzad M, Sarwar M (2023) Allelopathic effect of sugarcane intercrops on its emergence and growth. Journal of Agriculture and Food 4(2): 28-39. https://doi.org/1052587/JAF040203

              Nusrat AA, Kumar N, Kumar J (2018) Bio-herbicides for sustainable and eco-friendly weed control: A review. International Journal of Advanced Research 6: 550-561. http://dx.doi.org/10.21474/IJAR01/8173

              Parida PK, Deb A. (2023). Allelochemicals and allellopathic mechanism. In: Madhu B, Bhanukiran B (Editors). Integrated Publications TM, New Delhi. pp. 49-65. https://doi.org/10.22271/int.book.285

              Pinto M, Sousa B, Martins M, Pereira C, Soares C, Fidalgo F (2023) Unveiling the efficacy of pre-emergent application of young Eucalyptus globulus leaves as a weed control strategy: Bridging macroscopic effects and cellular responses. Plant Physiology and Biochemistry 203: 108010. https://doi.org/10.1016/j.plaphy.2023.108010

              Radhakrishnan R, Alqarawi AA, Abdallah EF (2018) Bioherbicides: Current knowledge on weed control mechanism. Ecotoxicology and Environmental Safety 158: 131-138. https://doi.org/10.1016/j.ecoenv.2018.04.018

              Roberts J, Florentine S, Fernando WGD, Tennakoon KU (2022) Achievements, developments and future challenges in the field of bioherbicides for weed control: a global review. Plants 11: 2242. https://doi.org/103390/plants11172242

              Rodríguez D, Casagrande G, Carmona-Galindo VD (2016) Preliminary Report: Effects of black mustard allelopathy on the fitness and life history strategies of buffalo gourd in southern California. Bios 87(3): 98-103. http://wwwbiooneorg/doi/full/101893/BIOS-D-14-000071

              Rosemeyer ME, Brown JK, Nelson MR (1986) Five viruses isolated from field-grown buffalo gourd (Cucurbita foetidissima). Plant Disease 1: 405-409. https://doi.org/101094/PD-70-405

              Salehi B, Quispe C, Sharifi-Rad J, Giri L, Suyal R, Jugran AK, Zam W (2021) Antioxidant potential of family Cucurbitaceae with special emphasis on Cucurbita genus: a key to alleviate oxidative stress‐mediated disorders. Phytotherapy Research 35(7): 3533-3557. https://doi.org/101002/ptr7045

              Shadab MO, Parveen U, Ain Q, Akhtar N, Khan M, Siddiqui MB (2024) Allelopathic effects of stem aqueous extract of Lepidium didymum L. against Lens culinaris and Melilotus alba. Research Square 1-15. https://doi.org/1021203/rs3rs-3954673/v1

              Sidhu HK, Malik IA, Varun M, D’souza RJ (2023) Allelopathic effect of leaf extracts of some common weeds on seed germination characteristics and growth of Oryza sativa L. Biological Forum – An International Journal 15: 475-481.

              Singleton VL, Rossi JA (1965) Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents. American Journal of Enology and Viticulture 16(3): 144-158. https://doi.org/10.5344/ajev.1965.16.3.144

              Siyar S, Majeed A, Muhammad Z, Ali H, Inayat N (2019) Allelopathic effect of aqueous extracts of three weed species on the growth and leaf chlorophyll content of bread wheat. Acta Ecologica Sinica 39(1): 63-68. https://doi.org/101016/jchnaes201805007

              Soto-Maldonado C, Caballero-Valdés E, Santis-Bernal J, Jara-Quezada J, Fuentes-Viveros L, Zúñiga-Hansen ME (2022) Potential of solid wastes from the walnut industry: Extraction conditions to evaluate the antioxidant and bioherbicidal activities. Electronic Journal of Biotechnology 58: 25-36. https://doi.org/10.1016/j.ejbt.2022.04.005

              Sumanta N, Haque CI, Nishika J, Suprakash R (2014) Spectrophotometric analysis of chlorophylls and carotenoids from commonly grown fern species by using various extracting solvents. Research Journal of Chemical Sciences 4(9): 63-69. https://doi.org/10.5555/20153044304

              Villaseñor RJL, Espinoza FJ (1998) Invasive plants: changing the landscape of America. Federal Interagency Committee for the Management of Noxious and Exotic Weeds, University of Minnesota Washington, DC USA.109p.

              Wazir I, Sadiq M, Baloch MS, Awan IU, Khan EA, Shah IH, Bakhsh I (2011) Application of bio-herbicide alternatives for chemical weed control in rice. Pakistan Journal of Weed Science Research 17(3): 245-252. https://doi.org/10.5555/20123164877

              Publicado

              2026-01-29

              Número

              Sección

              ARTÍCULOS CIENTÍFICOS

              Cómo citar

              Soriano Melgar, L. de A. A., Martínez Sosa, G. E. ., Orozco-Sifuentes, M. M. ., Ascacio‐Valdés, J. A. ., Palomo‐Ligas, L. ., & Campos-Muzquiz, L. G. . (2026). Potencial bioherbicida pre-emergente de extractos de gobernadora y hojasén obtenidos por microondas/ultrasonidos sobre calabacita loca. Ecosistemas Y Recursos Agropecuarios, 13(1). https://doi.org/10.19136/era.a13n1.4427

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