Unverified paper record
Vibrational spectroscopic profiling of biomolecular interactions between oak powdery mildew and oak leaves.
Soft matter · 31 Jan 2024 · 10.1039/d3sm01392h
Abstract
Oak powdery mildew, caused by the biotrophic fungus Erysiphe alphitoides , is a prevalent disease affecting oak trees, such as English oak ( Quercus robur ). While mature oak populations are generally less susceptible to this disease, it can endanger young oak seedlings and new leaves on mature trees. Although disruptions of photosynthate and carbohydrate translocation have been observed, accurately detecting and understanding the specific biomolecular interactions between the fungus and the leaves of oak trees is currently lacking. Herein, via hybrid Raman spectroscopy combined with an advanced artificial neural network algorithm, the underpinning biomolecular interactions between biological soft matter, i.e. , Quercus robur leaves and Erysiphe alphitoides , are investigated and profiled, generating a spectral library and shedding light on the changes induced by fungal infection and the tree's defence response. The adaxial surfaces of oak leaves are categorised based on either the presence or absence of Erysiphe alphitoides mildew and further distinguishing between covered or not covered infected leaf tissues, yielding three disease classes including healthy controls, non-mildew covered and mildew-covered. By analysing spectral changes between each disease category per tissue type, we identified important biomolecular interactions including disruption of chlorophyll in the non-vein and venule tissues, pathogen-induced degradation of cellulose and pectin and tree-initiated lignification of cell walls in response, amongst others, in lateral vein and mid-vein tissues. Via our developed computational algorithm, the underlying biomolecular differences between classes were identified and allowed accurate and rapid classification of disease with high accuracy of 69.6% for non-vein, 73.5% for venule, 82.1% for lateral vein and 85.6% for mid-vein tissues. Interfacial wetting differences between non-mildew covered and mildew-covered tissue were further analysed on the surfaces of non-vein and venule tissue. The overall results demonstrated the ability of Raman spectroscopy, combined with advanced AI, to act as a powerful and specific tool to probe foliar interactions between forest pathogens and host trees with the simultaneous potential to probe and catalogue molecular interactions between biological soft matter, paving the way for exploring similar relations in broader forest tree-pathogen systems.
Plant phenotyping relevance
葉の感染状態をRaman分光とニューラルネットワークで分類・推定する手法を開発し、疾患クラス分類性能も評価しており、植物フェノタイピング手法が中心である。
abstractvia hybrid Raman spectroscopy combined with an advanced artificial neural network algorithm
abstractVia our developed computational algorithm, the underlying biomolecular differences between classes were identified and allowed accurate and rapid classification of disease
abstractThe overall results demonstrated the ability of Raman spectroscopy, combined with advanced AI, to act as a powerful and specific tool to probe foliar interactions between forest pathogens and host trees
Code and data availability
The article describes Raman spectral data collection, SKiNET classification, and an ESI supplement, but no public repository, dataset deposit, or authors' code URL is provided in the supplied blocks. The ESI is referenced only via the DOI without an explicit public asset URL, and no qualifying paper-specific public资产 (
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