Mao Guannan, Ji Mukan, Xu Baiqing, Liu Yongqin, Jiao Nianzhi
Key Laboratory of Tibetan Environment Changes and Land Surface Processes, Institute of Tibetan Plateau Research, Chinese Academy of Sciences, Beijing, China.
Center for the Pan-Third Pole Environment, Lanzhou University, Lanzhou, China.
Front Microbiol. 2022 Feb 14;13:844432. doi: 10.3389/fmicb.2022.844432. eCollection 2022.
Nutrient enrichment caused by black carbon (BC) is a major ecological crisis in glacial ecosystems. The microbiological effects of BC were assessed in this study by using fluorescent fingerprinting assay based on flow cytometry (FCM) of bacterial communities with low (LNA) and high (HNA) nucleic acid-content bacteria. Here, we investigated a high-resolution temporal variation of bacterial abundance and LNA/HNA ratio in Tibetan ice cores. Our results revealed that bacterial abundance was proportional to the atmospheric BC on the glaciers. The shift of LNA functional groups to HNA functional groups in glaciers suggested BC emissions increased the proportion of highly active cells. In addition, distinct number of LNA and HNA functional groups was identified between the monsoon and non-monsoon seasons. Westerly winds with high amounts of BC accounted for high ratio of HNA functional groups during the non-monsoon season. In comparison, high moisture during the monsoon season decreased atmospheric BC loading, which increases the ratio of LNA functional groups. Correlations between BC and functional groups were very strong, showing that two functional groups may serve as early-warning indicators of microbiological effects of BC at low trophic level. Our approach provides a potential early-warning framework to study the influences of atmospheric BC on the glaciological community.
黑碳(BC)导致的营养物质富集是冰川生态系统中的一个主要生态危机。本研究通过基于流式细胞术(FCM)的荧光指纹分析方法,对核酸含量低(LNA)和高(HNA)的细菌群落进行评估,以研究BC的微生物学效应。在此,我们研究了西藏冰芯中细菌丰度和LNA/HNA比率的高分辨率时间变化。我们的结果表明,冰川上的细菌丰度与大气中的BC成正比。冰川中LNA功能群向HNA功能群的转变表明,BC排放增加了高活性细胞的比例。此外,在季风和非季风季节之间,LNA和HNA功能群的数量存在明显差异。在非季风季节,携带大量BC的西风导致HNA功能群的比例较高。相比之下,季风季节的高湿度降低了大气中的BC负荷,从而增加了LNA功能群的比例。BC与功能群之间的相关性非常强,表示这两个功能群可能作为低营养水平下BC微生物学效应的早期预警指标。我们的方法为研究大气BC对冰川群落的影响提供了一个潜在的早期预警框架。