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Growth characteristics of three Fusarium species evaluated by near-infrared hyperspectral imaging and multivariate image analysis

机译:通过近红外高光谱成像和多元图像分析评估三种镰刀菌的生长特性

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摘要

Colony growth of three Fusarium spp. on potato dextrose agar was followed by collecting near-infrared (NIR) hyperspectral images of the colonies at regular intervals after inoculation up to 55 h. After principal component analysis (PCA), two clusters were apparent in the score plot along principal component 1. Using the brushing technique, these clusters were divided into four groups of pixels with similar score values. These could be visualised as growth zones within the colonies in the corresponding score image. Three spectral bands, i.e. 1,166, 1,380 and 1,918 nm, were prominent in the multiplicative scatter corrected and Savitzky–Golay second derivative spectra. These indicated chemical changes, associated with carbohydrates (1,166 and 1,380 nm) and protein (1,918 nm), that occurred as the mycelium grew and matured. The protein band was more prominent in the mature fungal material while the carbohydrate band was less pronounced. The younger material and the agar were characterised by the carbohydrate spectral band. Integrating whole mycelium colonies as the sum of pixels over time made it possible to construct curves that resembled growth curves; this included the lag phase, active growth phase, deceleration phase and phase of constant growth. Growth profiles constructed from individual growth zones indicated more detailed growth characteristics. The use of NIR hyperspectral imaging and multivariate image analysis (MIA) allowed one to visualise radial growth rings in the PCA score images. This would not have been possible with bulk spectroscopy. Interpreting spectral data enabled better understanding of microbial growth characteristics on agar medium. NIR hyperspectral imaging combined with MIA is a powerful tool for the evaluation of growth characteristics of fungi.
机译:三个镰刀菌属菌落的菌落生长。在马铃薯葡萄糖琼脂上接种后,在接种长达55小时后,定期采集菌落的近红外(NIR)高光谱图像。经过主成分分析(PCA)后,得分图中沿着主成分1出现了两个聚类。使用笔刷技术,将这些聚类分为具有相似得分值的四组像素。这些可以可视化为相应得分图像中菌落内的生长区。在倍增散射校正和Savitzky-Golay二阶导数光谱中,三个光谱带(即1,166、1,380和1,918 nm)突出。这些表明随着菌丝体的生长和成熟,发生了与碳水化合物(1,166和1,380 nm)和蛋白质(1,918 nm)相关的化学变化。蛋白带在成熟的真菌材料中更为突出,而碳水化合物带则不太明显。较年轻的物质和琼脂的特征在于碳水化合物的光谱带。整合整个菌丝体菌落作为像素随时间的总和,可以构建类似于生长曲线的曲线;这包括滞后阶段,活跃增长阶段,减速阶段和持续增长阶段。从单个生长区构造的生长曲线表明更详细的生长特征。 NIR高光谱成像和多元图像分析(MIA)的使用使人们可以在PCA评分图像中看到放射状的年轮。本体光谱不可能做到这一点。解释光谱数据可以更好地了解琼脂培养基上的微生物生长特征。 NIR高光谱成像结合MIA是评估真菌生长特性的有力工具。

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