Biotic and abiotic factors influence secondary metabolite accumulation and allelopathic potential of grapevine (Vitis vinifera) leaves against cosmopolitan weeds

Abstract Viticulture generates significant pruning wastes, which can be valorized as bioherbicides for sustainable weed management, and as a means to advance the circular economy. Allelopathy, an environmentally friendly approach in which plants release secondary metabolites that suppress the growth of other species, presents a means to managing weed growth in agricultural systems. Our study aimed to assess whether biotic factors (grapevine variety and mycorrhizal inoculation) and abiotic factors (atmospheric CO 2 level, air temperature or water availability) influence the accumulation of secondary metabolites in grapevine ( Vitis vinifera L.) leaves and their allelopathic effects on three cosmopolitan weeds ( Sisymbrium irio, Solanum nigrum and Sonchus oleraceus ). Two grapevine varieties, Tempranillo and Cabernet Sauvignon, inoculated (M) or not (NM) with mycorrhizal fungi, were grown under two environmental conditions: CATA (current CO 2 and temperature conditions i.e., 400 ppm CO 2 and ambient air temperature) and CETE (700 ppm CO 2 and ambient air temperature + 4 °C). Within each grapevine variety and environmental condition, half of the M and NM plants were subjected to either full irrigation (WW) (90–100% substrate field capacity, FC) or limited irrigation (D) (cycles from 90–100% to 20–30% FC). Characterization of the methanolic extracts of the grapevine wastes revealed significant variations in phenolics, flavonoids, flavonols, and anthocyanins across treatments, with higher accumulation and free radical scavenging activity under elevated CO₂ and temperature conditions. Within each variety, the accumulation of secondary compounds was also influenced by the level of irrigation and the inoculation with mycorrhizal fungi. Aqueous extracts of grapevine leaves used in germination bioassays strongly inhibited seed germination and seedling growth of the weeds, with the pronounced effects observed in S. irio . The presence of these secondary metabolites contributes to their allelopathic effect, highlighting the potential of grapevine leaves as bioherbicides and an alternative to synthetic herbicides. However, further studies are needed to determine optimal extract concentrations and assess their effects on crops under field conditions.

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Publication Details

Journal
Journal of Plant Diseases and Protection
Published
2026-08-27
DOI
https://doi.org/10.1007/s41348-026-01345-9
Primary Topic
Allelopathy and phytotoxic interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Biotic and abiotic factors influence secondary metabolite accumulation and allelopathic potential of grapevine (Vitis vinifera) leaves against cosmopolitan weeds

Nieves Goicoechea, Damilola Grace Olanipon
Journal of Plant Diseases and Protection
Allelopathy and phytotoxic interactions
article

Biotic and abiotic factors influence secondary metabolite accumulation and allelopathic potential of grapevine (Vitis vinifera) leaves against cosmopolitan weeds

Nieves Goicoechea, Damilola Grace Olanipon
article en

Abstract

Abstract Viticulture generates significant pruning wastes, which can be valorized as bioherbicides for sustainable weed management, and as a means to advance the circular economy. Allelopathy, an environmentally friendly approach in which plants release secondary metabolites that suppress the growth of other species, presents a means to managing weed growth in agricultural systems. Our study aimed to assess whether biotic factors (grapevine variety and mycorrhizal inoculation) and abiotic factors (atmospheric CO 2 level, air temperature or water availability) influence the accumulation of secondary metabolites in grapevine ( Vitis vinifera L.) leaves and their allelopathic effects on three cosmopolitan weeds ( Sisymbrium irio, Solanum nigrum and Sonchus oleraceus ). Two grapevine varieties, Tempranillo and Cabernet Sauvignon, inoculated (M) or not (NM) with mycorrhizal fungi, were grown under two environmental conditions: CATA (current CO 2 and temperature conditions i.e., 400 ppm CO 2 and ambient air temperature) and CETE (700 ppm CO 2 and ambient air temperature + 4 °C). Within each grapevine variety and environmental condition, half of the M and NM plants were subjected to either full irrigation (WW) (90–100% substrate field capacity, FC) or limited irrigation (D) (cycles from 90–100% to 20–30% FC). Characterization of the methanolic extracts of the grapevine wastes revealed significant variations in phenolics, flavonoids, flavonols, and anthocyanins across treatments, with higher accumulation and free radical scavenging activity under elevated CO₂ and temperature conditions. Within each variety, the accumulation of secondary compounds was also influenced by the level of irrigation and the inoculation with mycorrhizal fungi. Aqueous extracts of grapevine leaves used in germination bioassays strongly inhibited seed germination and seedling growth of the weeds, with the pronounced effects observed in S. irio . The presence of these secondary metabolites contributes to their allelopathic effect, highlighting the potential of grapevine leaves as bioherbicides and an alternative to synthetic herbicides. However, further studies are needed to determine optimal extract concentrations and assess their effects on crops under field conditions.

Journal of Plant Diseases and ProtectionVol. 133(5)
Centre National de la Recherche Scientifique (FR), École Pratique des Hautes Études (FR), Université de Montpellier (FR), Afe Babalola University (NG), Centre d'Écologie Fonctionnelle et Évolutive (FR), Institut des Sciences de l'Evolution de Montpellier (FR), Universidad de Navarra (ES)
Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria, Universidad Politécnica de Madrid, Universidad de Navarra
Responsible consumption and production
Openalex Percentile: Top 12%
Allelopathy and phytotoxic interactions
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