CP32 is identified as a promising, targeted anti-oomycete agent with a unique mode of action, targeting the P. infestans cell wall, representing a valuable contribution to the development of sustainable strategies for the control of late blight.
Abstract
Phytophthora infestans, the causal agent of late blight in potato and tomato, is a historically devastating pathogen that continues to pose a major threat to global food security. Although conventional fungicides remain a cornerstone of crop protection, growing concerns over their environmental impact and long-term sustainability have driven the search for safer and more selective alternatives. In this context, next-generation fungicides with high specificity and minimal ecological footprint are urgently needed. This study introduces CP32, a small cyclic peptide, identified via yeast two-hybrid screening of a genetically encoded combinatorial peptide library, based on its specific interaction with the catalytic domain of the P. infestans enzyme Cellulose Synthase 2. CP32 exhibits anti-oomycete activity, effectively inhibits sporangial growth at low micromolar concentrations, and significantly reduces late blight symptoms on tomato leaves and entire plants. In silico docking analyses, supported by molecular and biochemical evidence, confirm that CP32 compromises cell-wall integrity by interfering with cellulose deposition and altering glucan composition. Furthermore, CP32 readily permeates the Phytophthora membrane and displays oomycete-static properties, while showing no detectable toxicity toward non-target organisms, such as bacteria, yeast, or plants. Collectively, these findings identify CP32 as a promising, targeted anti-oomycete agent with a unique mode of action, targeting the P. infestans cell wall, representing a valuable contribution to the development of sustainable strategies for the control of late blight.
Findings show that modular domain assembly combined with linker-mediated modular combinatorial optimization represents a powerful engineering strategy for achieving broad-spectrum disease resistance, offering a promising approach to simultaneously control oomycete, fungal, and bacterial pathogens of plants.
Kun Yang, Rong-Bo Wang, Li-Guang Liu et al.· Journal of Fungi· 0 citations
Wheat blast, caused by Magnaporthe oryzae Triticum (MoT), is a devastating fungal disease threatening global food security. Emergence of fungicide-resistant MoT populations necessitates safe, eco-friendly alternatives. This study evaluates the biorational potential of 3-methylpentanoic acid (3-MP), a volatile organic c...
Md. Shahrear Parvaj Sujon, Soharth Hasnat, R. B. Azad et al.· Molecular Plant-Microbe Inte...· 0 citations
The 1988 papers by Mauch, Mauch-Mani, Hadwiger and Boller on pea antifungal hydrolases captured a simple but powerful idea: plants can attack pathogens by directly targeting the structural polymers that hold their cell walls together. At that time, chitinases and β-1,3-glucanases were known to accumulate after infectio...
Ritu Singh, A. Laxalt· Plant Physiology· 0 citations
Potato late blight, caused by
Phytophthora infestans
, remains the most economically destructive disease of potato worldwide, yet the durability of chemical control is increasingly eroded by fungicide resistance and regulatory restriction. This study demonstrates that a rationally designed
Bacillus
–
Pseud...
S. A. Ntyam Mendo, Roland Tchuenguem Tchuenteu, Lyzette Womuh Dong et al.· Plant Pathology· 0 citations
Findings suggest that B. subtilis NJ01 possesses promising biocontrol potential and that its reported metabolites warrant further experimental isolation and validation as potential inhibitors of the CRN8 effector protein for the sustainable management of late blight disease.
Verticillium dahliae is a destructive soil-borne fungus with a broad host range, and its persistence in soil complicates control. Current measures, mainly resistant cultivars and chemicals, are limited and environmentally risky, promoting biocontrol as a green alternative. Here, we investigated the biocontrol mechanism...
W. Jian, Yuan-Yuan Li, Yu Chen et al.· Microbiology Research· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.