DeYoung Jessica L, Shaw Scott K
Chemistry Department, University of Iowa, Iowa City, Iowa 52242, United States.
ACS Environ Au. 2022 Apr 14;2(4):310-313. doi: 10.1021/acsenvironau.2c00004. eCollection 2022 Jul 20.
Fungi are prevalent microorganisms in environmental films. Their impacts on the film chemical environment and morphology remains poorly defined. Here we present microscopic and chemical analyses fungi impacts to environmental films over long- and short-time scales. We report bulk properties of films accumulated for 2 months (February and March 2019) and 12 months to contrast short and longer-term effects. Bright field microscopy results show that fungi and fungal-associated aggregates cover close to 14% of the surface after 12 months and include significant numbers of large (tens to hundreds of μm in diameter) particles aggregated with fungal colonies. Data acquired for films accumulated over shorter times (2 months) suggest mechanisms that contribute to these longer-term effects. This is important because the film's exposed surface will determine what additional material will accumulate over the ensuing weeks or months. A combination of scanning electron microscopy and energy dispersive X-ray spectroscopy provides spatially resolved maps of fugal hypha and nearby elements of interest. We also identify a "nutrient pool" associated with the fungal hypha which extend orthogonally to the growth direction to ca. 50 μm distances. We conclude that fungi have both short-term and long-term effects on the chemistry and morphology of environmental film surfaces. In short, the presence (or absence) of fungi will significantly alter the films' evolution and should be considered when analyzing environmental film impacts on local processes.
真菌是环境薄膜中普遍存在的微生物。它们对薄膜化学环境和形态的影响仍不清楚。在此,我们展示了真菌在长期和短期尺度上对环境薄膜影响的微观和化学分析。我们报告了累积2个月(2019年2月和3月)和12个月的薄膜的整体性质,以对比短期和长期影响。明场显微镜结果显示,12个月后,真菌和与真菌相关的聚集体覆盖了近14%的表面,并且包括大量与真菌菌落聚集在一起的大颗粒(直径数十至数百微米)。在较短时间(2个月)内累积的薄膜所获取的数据表明了导致这些长期影响的机制。这很重要,因为薄膜的暴露表面将决定在接下来的几周或几个月内会有哪些额外物质累积。扫描电子显微镜和能量色散X射线光谱的结合提供了真菌菌丝和附近感兴趣元素的空间分辨图谱。我们还识别出一个与真菌菌丝相关的“营养池”,它垂直于生长方向延伸至约50μm的距离。我们得出结论,真菌对环境薄膜表面的化学性质和形态既有短期影响,也有长期影响。简而言之,真菌的存在(或不存在)将显著改变薄膜的演变,在分析环境薄膜对局部过程的影响时应予以考虑。