Weeds in oil palm plantations and their antifungal activity against Ganoderma boninense

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GRACE FLAVYELIZ SINONG
MUHD ARIF SHAFFIQ SAHRIR
NORNASUHA YUSOFF
MUH ADIWENA
NUSAIBAH SYD ALI
MOHAMAD HILMI IBRAHIM
AZWAN AWANG
MOHD. RASHID MOHD. RAKIB

Abstract

Abstract. Sinong GF, Sahrir MAS, Yusoff N, Adiwena M, Ali NS, Ibrahim MH, Awang A, Rakib MRM. 2026. Weeds in oil palm plantations and their antifungal activity against Ganoderma boninense. Asian J Agric 10: g100102. https://doi.org/10.13057/asianjagric/g100102. Basal Stem Rot (BSR) caused by Ganoderma boninense remains the most destructive disease of oil palm, threatening global palm oil production. Current management strategies have proven largely ineffective in providing long-term disease control, highlighting the urgent need for sustainable approaches based on natural bioactive compounds. Plant-derived metabolites represent a promising alternative due to their natural antifungal properties, environmental safety, and potential compatibility with integrated disease management systems. Weeds, in particular, are often resilient to pathogens and may serve as unexplored reservoirs of bioactive compounds with antifungal potential. The present study aimed to identify weed species associated with healthy oil palm trees and evaluate their extracts’ in vitro antifungal properties against G. boninense. Three weed species, namely Hoya carnosa (W16), Ischaemum muticum (W18), and Polygala paniculata (W19), were found exclusively in association with healthy oil palm trees. Their crude extracts were evaluated in vitro against G. boninense using solvents of varying polarity. Among them, P. paniculata exhibited the strongest antifungal activity, with both aerial and below-ground parts showing pronounced inhibition. Below-ground part extracts consistently outperformed aerial parts, particularly when extracted with methanol, which yielded the highest inhibition and lowest EC50 values, suggesting a higher concentration of bioactive metabolites in root tissues. The observed antifungal efficacy correlated with solvent polarity, emphasizing the importance of targeted extraction in isolating effective phytochemicals. These findings indicate that P. paniculata, especially its methanolic root extract, represents a promising source of natural antifungal compounds. The study highlights the potential of weed plants as unconventional reservoirs of bioactive metabolites and provides a foundation for developing eco-friendly, broad-spectrum fungicides to combat G. boninense, thereby advancing sustainable disease management in oil palm plantations.

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SINONG, G. F., SAHRIR, M. A. S., YUSOFF, N., ADIWENA, M., ALI, N. S., IBRAHIM, M. H., AWANG, A., & RAKIB, M. R. M. (2026). Weeds in oil palm plantations and their antifungal activity against Ganoderma boninense. Asian Journal of Agriculture, 10(1). https://doi.org/10.13057/asianjagric/g100102

References

Akhter M, Kundu P, Paul N. 2019. Field study on weeds incidence in rapeseed (Brassica campestris L.). J Biol-Sci 26: 1-6. https://doi.org/10.3329/jbs.v26i0.44658.

Ashraf M, Zulkifli R, Sanusi R, Tohiran KA, Terhem R, Moslim R, Norhisham AR, Ashton-Butt A, Azhar B. 2018. Alley-cropping system can boost arthropod biodiversity and ecosystem functions in oil palm plantations. Agric Ecosyst Environ 260: 19-26. https://doi.org/10.1016/j.agee.2018.03.017.

Aziz MHA, Bejo SK, Wayayok A, Hashim F, Kondo N, Azmi ANN. 2021. Temporal changes analysis of soil properties associated with Ganoderma boninense Pat. infection in oil palm seedlings in a controlled environment. Agronomy 11 (11): 2279. https://doi.org/10.3390/agronomy11112279.

Aziz NAA, Hasham R, Sarmidi MR, Suhaimi SH, Idris MKH. 2021. A review on extraction techniques and therapeutic value of polar bioactives from Asian medicinal herbs: Case study on Orthosiphon aristatus, Eurycoma longifolia and Andrographis paniculata. Saudi Pharm J 29 (2): 143-165. https://doi.org/10.1016/j.jsps.2020.12.016.

Aziz SDA, Jafarah NF, Sabri S, Wahab MAA, Yusof ZNB. 2019. Antifungal activities against oil palm pathogen Ganoderma boninense from seaweed sources. Asia-Pac J Mol Biol Biotechnol 27 (1): 75-83. https://doi.org/10.35118/apjmbb.2019.027.1.08.

Bayat M, Kavhiza N, Orujov E, Zargar M, Akhrarov M, Temewei AG. 2019. Integrated weed control methods utilizing planting pattern in sugar beet. Res Crops 20 (2): 413-418. https://doi.org/10.31830/2348-7542.2019.060.

Bitwell C, Indra SS, Luke C, Kakom MK. 2023. A review of modern and conventional extraction techniques and their applications for extracting phytochemicals from plants. Sci Afr 19: e01585. https://doi.org/10.1016/j.sciaf.2023.e01585.

Câmara JS, Perestrelo R, Ferreira R, Berenguer CV, Pereira JAM, Castilho PC. 2024. Plant-derived terpenoids: A plethora of bioactive compounds with several health functions and industrial applications-a comprehensive overview. Molecules 29 (16): 3861. https://doi.org/10.3390/molecules29163861.

Chatepa LEC, Mwamatope B, Chikowe I, Masamba KG. 2024. Effects of solvent extraction on the phytoconstituents and in vitro antioxidant activity properties of leaf extracts of the two selected medicinal plants from Malawi. BMC Complement Med Ther 24: 317. https://doi.org/10.1186/s12906-024-04619-7.

Cruz FPN, Paula AF, Nogueira CT, Andrade PHM, Borges LM, Lacava PT, Camargo ILBC, Aníbal FF, Sousa CP. 2021. Discovery of a novel lineage Burkholderia cepacia ST 1870 endophytically isolated from medicinal Polygala paniculata which shows potent in vitro antileishmanial and antimicrobial effects. Intl J Microbiol 2021 (1): 6618559. https://doi.org/10.1155/2021/6618559.

Darwana D, Jalloh MB, Chin CFS, Basri NKM, Besar NA, Ahmad K, Rakib MRM. 2023. Exploring the potential of Bornean polypore fungi as biological control agents against pathogenic Ganoderma boninense causing basal stem rot in oil palm. Sci Rep 13: 10316. https://doi.org/10.1038/s41598-023-37507-0.

Dhawan D, Gupta J. 2017. Comparison of different solvents for phytochemical extraction potential from Datura metel plant leaves. Intl J Biol Chem 11: 17-22. https://doi.org/10.3923/ijbc.2017.17.22.

Dubois MAL, Delaude C, Offer ACM. 2020. A review on the phytopharmacological studies of the genus Polygala. J Ethnopharmacol 249: 112417. https://doi.org/10.1016/j.jep.2019.112417.

Eloff JN, Angeh I, McGaw LJ. 2018. Solvent-solvent fractionation can increase the antifungal activity of a Melianthus comosus (Melianthaceae) acetone extract to yield a potentially useful commercial antifungal product. Ind Crops Prod 111: 69-77. https://doi.org/10.1016/j.indcrop.2017.11.014.

Franzoni G, Trivellini A, Bulgari R, Cocetta G, Ferrante A. 2019. Bioactive molecules as regulatory signals in plant responses to abiotic stresses. In: Khan MIR, Reddy PS, Ferrante A, Khan NA (eds). Plant Signaling Molecules: Role and Regulation under Stressful Environments. Elsevier Woodhead Publishing, Cambridge. https://doi.org/10.1016/B978-0-12-816451-8.00010-1.

Freiesleben SH, Jäger AK. 2014. Correlation between plant secondary metabolites and their antifungal mechanisms-A review. Med Aromat Plants 3 (2): 1000154. https://doi.org/10.4172/2167-0412.1000154.

Ghaffar N, Perveen A. 2025. Solvent polarity effects on extraction yield, phenolic content, and antioxidant properties of Malvaceae family seeds: A comparative study. N Z J Bot 63 (4): 627-637. https://doi.org/10.1080/0028825x.2024.2392705.

Go WZ, Khoronnasarudin MKI, Ariff SNHM, Shahrulnizam PSN, Balasubramaniam R, Wong MY. 2025. The antifungal potential of seven plant species against selected plant pathogen. Pertanika J Trop Agric Sci 48 (4): 1185-1203. https://doi.org/10.47836/pjtas.48.4.08.

Javaid A, Munir R, Khan IH, Shoaib A. 2020. Control of the chickpea blight, Ascochyta rabiei, with the weed plant, Withania somnifera. Egypt J Biol Pest Control 30: 114. https://doi.org/10.1186/s41938-020-00315-z.

Jibhkate YJ, Awachat AP, Lohiya RT, Umekar MJ, Hemke AT, Gupta KR. 2023. Extraction: An important tool in the pharmaceutical field. Intl J Sci Res Arch 10 (1): 555-568. https://doi.org/10.30574/ijsra.2023.10.1.0768.

Johann S, Mendes BG, Missau FC, Resende MA, Pizzolatti MG. 2011. Antifungal activity of five species of Polygala. Braz J Microbiol 42: 1065-1075. https://doi.org/10.1590/S1517-83822011000300027.

Jomova K, Alomar SY, Valko R, Liska J, Nepovimova E, Kuca K, Valko M. 2025. Flavonoids and their role in oxidative stress, inflammation, and human diseases. Chem Biol Interact 413: 111489. https://doi.org/10.1016/j.cbi.2025.111489.

Kamu A, Phin CK, Seman IA, Gabda D, Mun HC. 2021. Estimating the yield loss of oil palm due to Ganoderma basal stem rot disease by using Bayesian Model Averaging. J Oil Palm Res 33 (1): 46-55. https://doi.org/10.21894/jopr.2020.0061.

Kanwal F. 2024. Farmers’ perception and the state of weeds in agricultural fields of Pakistan: A comprehensive study of prevalence and density. Sarhad J Agric 40 (3): 841-847. https://doi.org/10.17582/journal.sja/2024/40.3.841.847.

Khoo YW, Chong KP. 2023. Ganoderma boninense: General characteristics of pathogenicity and methods of control. Front Plant Sci 14: 1156869. https://doi.org/10.3389/fpls.2023.1156869.

Kiran BL, Nayana KN, Raveesha KA. 2023. Evaluation of antifungal effect of medicinal plants against Panama wilt of Banana caused by Fusarium oxysporum f. sp. cubense. J Appl Biol Biotechnol 11 (1): 73-79. https://doi.org/10.7324/jabb.2023.110110.

Kong CH, Xuan TD, Khanh TD, Tran HD, Trung NT. 2019. Allelochemicals and Signaling Chemicals in Plants. Molecules 24 (5): 2737. https://doi.org/10.3390/molecules24152737.

Lisnawita L, Safni I, Lubis K, Nurliana N, Fadly F. 2019. Abundance and diversity of bacteria associated with healthy and infected oil palm rhizosphere of Ganoderma boninense in Bahilang, North Sumatra. IOP Conf Ser Earth Environ Sci 454: 012181. Https://doi.org/10.1088/1755-1315/454/1/012181.

Lv J, Yang S, Zhou W, Liu Z, Tan J, Wei M. 2024. Microbial regulation of plant secondary metabolites: Impact, mechanisms and prospects. Microbiol Res 283: 127688. https://doi.org/10.1016/j.micres.2024.127688.

Maznah Z, Halimah M, Ismail S, Idris AS. 2015. Dissipation of the fungicide hexaconazole in oil palm plantation. Environ Sci Pollut Res 22: 19648-19657. https://doi.org/10.1007/s11356-015-5178-z.

Meela MM, Mdee LK, Masoko P, Eloff JN. 2019. Acetone leaf extracts of seven invasive weeds have promising activity against eight important plant fungal pathogens. S Afr J Bot 121: 442-446. https://doi.org/10.1016/j.sajb.2018.12.007.

Midot F, Lau SYL, Wong WC, Tung HJ, Yap ML, Lo ML, Jee MS, Dom SP, Melling L. 2019. Genetic diversity and demographic history of Ganoderma boninense in oil palm plantations of Sarawak, Malaysia inferred from ITS Regions. Microorganisms 7: 464. https://doi.org/10.3390/microorganisms7100464.

Nogueira FLP, Fernandes SBO, Reis GM, Matheus ME, Fernandes PD, Lage CLS, Menezes FS. 2005. Analgesic and antiedematogenic activities of wild and micropropagated Polygala paniculata L. (Polygalaceae). Rev Bras Farmacogn 15 (4): 310-315. https://doi.org/10.1590/S0102-695X2005000400009.

Olaniyi ON, Szulczyk KR. 2020. Estimating the economic damage and treatment cost of basal stem rot striking the Malaysian oil palms. For Policy Econ 116: 102163. https://doi.org/10.1016/j.forpol.2020.102163.

Pedroso MB, Scariot FJ, Rocha RKM, Echeverrigaray S, Delamare APL. 2024. Antifungal activity and mechanism of action of monoterpenes against Botrytis cinerea. Sci Agrotechnol 48: e018823. https://doi.org/10.1590/1413-7054202448018823.

Rakib MRM, Bong CFJ, Khairulmazmi A, Idris AS. 2015. Aggressiveness of Ganoderma boninense and G. zonatum isolated from upper- and basal stem rot of oil palm (Elaeis guineensis) in Malaysia. J Oil Palm Res 27 (3): 229-240.

Riseh RS, Vazvani MG, Ebrahimi ZM, Skorik YA. 2022. Alginate-induced disease resistance in plants. Polymers 14 (4): 661. https://doi.org/10.3390/polym14040661.

Saberi N, Halmi MIE, Ramle NA, Mahmud K. 2024. Metals accumulation of tropical shrub Melastoma malabathricum L. (Melastomataceae) populations and their relation to soil edaphic factor. Malays Appl Biol 53 (1): 113-125. https://doi.org/10.55230/mabjournal.v53i1.2793.

Saini A, Benjamin MAZ, Rusdi NA, Aziz AHA, Awang MA. 2025. Effect of natural deep eutectic solvents and conventional solvents on extraction yield, antioxidant activity, and toxicity of Peperomia pellucida (L.) Kunth. Malays J Sci 44 (1): 34-41. https://doi.org/10.22452/mjs.vol44no1.5.

Siddiqui Y, Surendran A, Paterson RRM, Ali A, Ahmad K. 2021. Current strategies and perspectives in detection and control of basal stem rot of oil palm. Saudi J Biol Sci 25 (5): 2840-2849. https://doi.org/10.1016/j.sjbs.2021.02.016.

Song L, Wang S, Zou H, Yi X, Jia S, Li R, Song J. 2025. Regulation of ergosterol biosynthesis in pathogenic fungi: Opportunities for therapeutic development. Microorganisms 13 (4): 862. https://doi.org/10.3390/microorganisms13040862.

Srivastava D, Singh P. 2011. Antifungal potential of two common weeds against plant pathogenic fungi- Alternaria sps. Asian J Exp Biol Sci 2 (3): 525-528.

Suwandi S, Rahmadhani TP, Suparman S, Irsan C, Muslim A. 2022. Allelopathic potential of root exudates from perennial herbaceous plants against Ganoderma boninense. IOP Conf Ser Earth Environ Sci 976: 012053. https://doi.org/10.1088/1755-1315/976/1/012053.

Tang HP, Zhu EL, Bai QX, Wang S, Wang ZB, Wang M, Kuang HX. 2024. Polygala japonica Houtt.: A comprehensive review on its botany, traditional uses, phytochemistry, pharmacology, and pharmacokinetics. Fitoterapia 179: 106233. https://doi.org/10.1016/j.fitote.2024.106233.

Tian F, Woo SY, Lee SY, Park SB, Zheng Y, Chun HS. 2022. Antifungal activity of essential oil and plant-derived natural compounds against Aspergillus flavus. Antibiotics 11 (12): 1727. https://doi.org/10.3390/antibiotics11121727.

Tran DX, La HA, Do T, Phung TT, Truong NM, Tran DK, Khuat HT. 2016. Weed allelochemicals and possibility for pest management. Intl Lett Nat Sci 56: 25-39. https://doi.org/10.56431/p-5t246m.

Ünlü A, Teralı K, Aydın ZU, Dönmez AA, Yusufoğlu HS, Çalış I. 2022. Isolation, characterization and in silico studies of secondary metabolites from the whole plant of Polygala inexpectata Peşmen and Erik. Molecules 27 (3): 684. https://doi.org/10.3390/molecules27030684.

Wong MY, Hamid S, Shah NAI, Rahim NM, Kasim ZZ, Razak NHA. 2020. Antifungal potential of six herbal plants against selected plant fungal pathogens. Pertanika J Trop Agric Sci 43 (2): 107-117. https://doi.org/10.47836/pjtas.43.4.03.

Wu SH, Huang BH, Huang CL, Li G, Liao PC. 2017. The aboveground vegetation type and underground soil property mediate the divergence of soil microbiomes and the biological interactions. Microb Ecol 75: 434-446. https://doi.org/10.1007/s00248-017-1050-7.

Yan H, Meng X, Lin X, Duan N, Wang Z, Wu S. 2023. Antifungal activity and inhibitory mechanisms of ferulic acid against the growth of Fusarium graminearum. Food Biosci 52: 102414. https://doi.org/10.1016/j.fbio.2023.102414.

Yeo FKS, Ling ST, Sathasivam SU, Asarudin MR, Hashim HF, Lai LS. 2022. Antifungal effect of nine selected medicinal plants against crop pathogenic fungi. Malays J Microbiol 18 (5): 533-546. https://doi.org/10.21161/mjm.221456.

Yurnaliza Y, Nurwahyuni I, Lenny S, Rizal E, Wirandi D, Harahap NF, Lutfia A, Hartanto A. 2019. Total phenolic content of oil palm roots (Elaeis guineensis Jacq.) as preliminary health indicators in oil palm plantation. J Phys Conf Ser 1351 (1): 012026. https://doi.org/10.1088/1742-6596/1351/1/012026.

Zahra M, Abrahamse H, George BP. 2024. Flavonoids: Antioxidant powerhouses and their role in nanomedicine. Antioxidants 13 (8): 922. https://doi.org/10.3390/antiox13080922.

Zanella PG, Carvalho CAB, Ribeiro ET, Madeiro AS, Gomes RDS. 2017. Optimal quadrat area and sample size to estimate the forage mass of stargrass. Semina Ciências Agrárias 38 (5): 3165-3172. https://doi.org/10.5433/1679-0359.2017v38n5p3165.

Zhang K, Jiang Y, Zhao H, Köllner TG, Chen S, Chen F, Chen F. 2020. Diverse terpenoids and their associated antifungal properties from roots of different cultivars of Chrysanthemum morifolium ramat. Molecules 25 (9): 2083. https://doi.org/10.3390/molecules25092083.

Zhao X, Cui Y, Wu P, Zhao P, Zhou Q, Zhang Z, Wang Y, Zhang X. 2020. Polygalae Radix: A review of its traditional uses, phytochemistry, pharmacology, toxicology, and pharmacokinetics. Fitoterapia 147: 104759. https://doi.org/10.1016/j.fitote.2020.104759.

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