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Banana Fusarium Wilt (BFW), caused by Fusarium oxysporum f. sp. cubense (Foc), threatens banana crops globally, with the pathogen's virulence partially regulated by the Sge1 transcription factor, which enhances disease severity. Certain Musa species display resistance to Foc, suggesting inherent genetic traits that confer immunity against Sge1Foc. This study utilized bioinformatics tools to investigate the mechanisms underlying this resistance in Musa accuminata subsp. aalaccensis. Through in silico analyses, we explored interactions between Musa spp. and Foc, focusing on the Sge1 protein. Tools such as Anti-SMASH, AutoDockVina 4.0, STRING, and Phoenix facilitated the profiling of secondary metabolites in Musa spp. and the identification of biosynthetic gene clusters involved in defense. Our results indicate that secondary metabolites, including saccharides, terpenes, and polyketides, are crucial to the plant's immune response. Molecular docking studies of selected Musa metabolites, such as 3-Phenylphenol, Catechin, and Epicatechin, revealed 3-Phenylphenol as having the highest binding affinity to the Sge1Foc protein (-6.7 kcal/mol).Further analysis of gene clusters associated with secondary metabolite biosynthesis in Musa spp. identified key domains like Chalcone synthase, Phenylalanine ammonia-lyase, Aminotran 1-2, and CoA-ligase, which are integral to phenylpropanoid production-a critical pathway for secondary metabolites. The study highlights that the phenylpropanoid pathway and secondary metabolite biosynthesis are vital for Musa spp. resistance to Foc. Flavonoids and lignin may inhibit Sge1 protein formation, potentially disrupting Foc's cellular processes. These findings emphasize the role of phenylpropanoid pathways and secondary metabolites in combating BFW and suggest that targeting these pathways could offer innovative strategies for enhancing resistance and controlling BFW in banana crops. This research lays the groundwork for developing sustainable methods to protect banana cultivation and ensure food security.
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http://dx.doi.org/10.1016/j.compbiolchem.2024.108230 | DOI Listing |
Chem Biodivers
September 2025
Institute of Chemistry, Federal University of Catalão, Catalão, Brazil.
Strategies have been employed to address antimalarial drug resistance, including the exploration of new therapeutic targets. In this study, the stem bark of Dalbergia miscolobium was investigated using in vitro assays against Plasmodium falciparum and pyruvate kinase II (PyrKII), an essential enzyme for parasite development. Compounds were dereplicated from ethanolic extract (IC = 9 µg/mL) using LC-HRMS, revealing active constituents: procyanidin A1 (2), biochanin (5) and formononetin (7).
View Article and Find Full Text PDFChem Biodivers
September 2025
Research Management Unit, Centre for Research and Enterprise, University of Cyberjaya, Persiaran Bestari, Cyber 11, Cyberjaya, Selangor, Malaysia.
Seaweeds are marine macroalgae that are rich in various secondary metabolites known to exhibit different biological activities such as anti-diabetic, anti-inflammatory, antioxidant, etc. This study aimed to determine the bioactive metabolites, as well as the antioxidant and anti-inflammatory activities of two red algae (Ceramium virgatum and Gracilaria corticata) and two green algae (Enteromorpha flexuosa and Ulva fasciata), which are prevalent in the coastal region of the Bay of Bengal. The total phenolic and flavonoid contents were determined using the Folin-Ciocalteu and aluminium chloride methods.
View Article and Find Full Text PDFChem Biodivers
September 2025
Department of Chemistry, Govt. Raza P.G. College, Rampur, India.
Parasitic diseases continue to be a major public health burden, particularly in low- and middle-income countries. With the emergence of drug-resistant strains and limitations of current therapies, there is a growing interest in natural products as alternative treatment options. Coumarins, a diverse class of plant-derived secondary metabolites, have shown significant potential as antiparasitic agents.
View Article and Find Full Text PDFMicrobiol Spectr
September 2025
Faculty of Medicine and Medical Sciences, University of Balamand, Tripoli, Lebanon.
In Gram-negative bacteria, resistance-nodulation-division (RND)-type efflux pumps, particularly AcrAB-TolC, play a critical role in mediating resistance to antimicrobial agents and toxic metabolites, contributing to multidrug resistance. is an entomopathogenic bacterium that has garnered significant interest due to its production of bioactive specialized metabolites with anti-inflammatory, antimicrobial, and scavenger deterrent properties. In previous work, we demonstrated that AcrAB confers self-resistance to stilbenes in TT01.
View Article and Find Full Text PDFFront Plant Sci
August 2025
Plant Protection and Biomolecular Diagnosis Department, Arid Lands Cultivation Research Institute, City of Scientific Research and Technological Applications, Alexandria, Egypt.
The utilization of arbuscular mycorrhizal fungi (AMF) and spp. correlates with improved plant nutrition and the stimulation of systemic plant defenses in response to pathogen challenges. Nonetheless, studies examining the effects of AMF colonization and the foliar application of the isolate Tvd44 on viral infection are limited.
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