Shiitake, Hua Gu · 2026 · Journal Article
Medium relevanceFluorescence profiling of cultivated mushroom extracts.
Lentinula edodes
Key points
- This study presents a standardised fluorescence spectroscopy method for analysing extracts from four cultivated mushrooms (Pleurotus eryngii, Hypsizygus tessulatus, Hericium coralloides, and Lentinula edodes), with the aim of identifying interspecific differences and developmental stage-related variations
- Significant differences in fluorescence intensity and spectral distribution among the different species were observed
- Comparison of different growth stages of P. eryngii indicated that fluorescence intensity increased during developmental progression
- However, the responsible fluorophores and their exact tissue source were not identified in this study
- In contrast, ethanol extracts showed stronger fluorescence with emission peaks generally situated in the blue range at around 450 nm
- These observations demonstrate that fluorescence spectroscopy provides a rapid and reproducible analytical method for characterizing fungal tissues with potential applications in fungal taxonomy, metabolite screening, and quality control in mushroom cultivation
Metadata-grounded summary
Citation abstract
Fluorescence phenomena in fungi have been investigated only sparingly, despite long-standing evidence that many fungal metabolites exhibit autofluorescence. This study presents a standardised fluorescence spectroscopy method for analysing extracts from four cultivated mushrooms (Pleurotus eryngii, Hypsizygus tessulatus, Hericium coralloides, and Lentinula edodes), with the aim of identifying interspecific differences and developmental stage-related variations. Fruiting body samples were extracted with ethanol and n-hexane and analysed by fluorescence emission spectroscopy. Significant differences in fluorescence intensity and spectral distribution among the different species were observed. H. coralloides and P. eryngii displayed the strongest fluorescence signals, primarily localised in spines and gills, respectively. Comparison of different growth stages of P. eryngii indicated that fluorescence intensity increased during developmental progression. However, the responsible fluorophores and their exact tissue source were not identified in this study. In all experiments, n-hexane was less efficient than ethanol in extracting fluorophores. A notable exception concerned the gills of P. eryngii for which the emission band was observed at lower wavelengths (420 nm). In contrast, ethanol extracts showed stronger fluorescence with emission peaks generally situated in the blue range at around 450 nm. These observations demonstrate that fluorescence spectroscopy provides a rapid and reproducible analytical method for characterizing fungal tissues with potential applications in fungal taxonomy, metabolite screening, and quality control in mushroom cultivation.
Citation
Oehler S, Nguyen QTT, Ha-Duong NT, Berthier S, Schöllhorn B, Debernardi R, et al. (2026). Fluorescence profiling of cultivated mushroom extracts. Journal of microbiological methods https://doi.org/10.1016/j.mimet.2026.107552 PMID: 42155630
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