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大麦种子(Hordéum vulgáre)感染镰刀菌属(Fusarium ssp.)的光谱荧光参数

Spectral Photoluminescent Parameters of Barley Seeds (Hordéum vulgáre) Infected with Fusarium ssp.

机构信息

Federal Scientific Agroengineering Center VIM, Moscow, Russia.

branch of National Research University of Moscow Energy Institute, Smolensk, Russia.

出版信息

Photochem Photobiol. 2023 Jan;99(1):29-34. doi: 10.1111/php.13645. Epub 2022 Jun 13.

Abstract

We needed effective and sustainable technologies for better microbiological control of crops, including Fusarium. However, photoluminescent UV-Vis methods are potential for diagnosing plant diseases with Fusarium. It has not been sufficiently studied despite the application of these methods for other biological researches. The excitation spectrum of the seeds during infection shifts to the shorter wavelength and a new maximum appears in the region λ ≈ 232 nm. The photoluminescence of infected seeds increases with excitation by radiation of wavelengths λ  = 232 nm, λ  = 362 nm and λ  = 424 nm by 1.33-3.14 times, and λ  = 424 nm-decreases by 1.1 times. Statistical moments μ and μ , asymmetry and kurtosis change only with short-wave excitation. When analyzing the decomposition of the frequency spectrum into Gaussian curves, the most informative ratio is the ratio of right-handed and left-handed Gaussians under excitation λ  = 362 nm and λ  = 424 nm. The ratios of their maxima change during infection by 1.36-3.2 times, and for excitation by radiation λ , the frequency boundaries of Gaussians change. The results of measurements and calculations provide a basis for the development of a method and device for photoluminescence diagnostics of fusarium seeds in UV-Vis ranges.

摘要

我们需要有效的和可持续的技术来更好地控制作物中的微生物,包括镰刀菌。然而,尽管这些方法已被应用于其他生物学研究,但利用发荧光的紫外可见方法来诊断植物病害,包括镰刀菌病害,尚未得到充分的研究。在感染过程中,种子的激发光谱向短波长移动,在 λ ≈ 232nm 的区域出现新的最大值。受感染种子的光致发光随波长 λ = 232nm、 λ = 362nm 和 λ = 424nm 的辐射激发而增加 1.33-3.14 倍,而 λ = 424nm 的光致发光则减少 1.1 倍。统计矩 μ 和 μ 、不对称和峰态仅随短波激发而变化。在分析频谱分解为高斯曲线时,在 λ = 362nm 和 λ = 424nm 激发下,右手和左手高斯曲线的比值是最有信息量的比值。在感染过程中,它们的最大值的比值变化了 1.36-3.2 倍,而对于 λ 辐射的激发,高斯曲线的频率边界发生了变化。测量和计算的结果为在紫外可见范围内开发用于检测镰刀菌种子的光致发光诊断方法和装置提供了基础。

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