National Centre for Antarctic and Ocean Research, Headland Sada, Vasco-Da-Gama, Goa 403 804, India.
Old Dominion University , Department of Chemistry and Biochemistry, Norfolk, Virginia 23529, United States.
Environ Sci Technol. 2017 Apr 18;51(8):4328-4337. doi: 10.1021/acs.est.6b05780. Epub 2017 Mar 29.
Snow overlays the majority of Antarctica and is an important repository of dissolved organic matter (DOM). DOM transformations by supraglacial microbes are not well understood. We use ultrahigh resolution mass spectrometry to elucidate molecular changes in snowpack DOM by in situ microbial processes (up to 55 days) in a coastal Antarctic site. Both autochthonous and allochthonous DOM is highly bioavailable and is transformed by resident microbial communities through parallel processes of degradation and synthesis. DOM thought to be of a more refractory nature, such as dissolved black carbon and carboxylic-rich alicyclic molecules, was also rapidly and extensively reworked. Microbially reworked DOM exhibits an increase in the number and magnitude of N-, S-, and P-containing formulas, is less oxygenated, and more aromatic when compared to the initial DOM. Shifts in the heteroatom composition suggest that microbial processes may be important in the cycling of not only C, but other elements such as N, S, and P. Microbial reworking also produces photoreactive compounds, with potential implications for DOM photochemistry. Refined measurements of supraglacial DOM and their cycling by microbes is critical for improving our understanding of supraglacial DOM cycling and the biogeochemical and ecological impacts of DOM export to downstream environments.
雪覆盖了南极洲的大部分地区,是溶解有机物质 (DOM) 的重要储存库。 对冰上微生物引起的 DOM 转化过程还了解甚少。 我们使用超高分辨率质谱法,在沿海的南极地区现场研究冰上微生物过程(长达 55 天)对雪层 DOM 的分子变化。 无论是本地 DOM 还是外来 DOM 都具有很高的生物利用度,并通过居民微生物群落的降解和合成平行过程进行转化。 认为具有更高抗降解性的 DOM,如溶解的黑碳和羧酸丰富的脂环分子,也被快速且广泛地再加工。 与初始 DOM 相比,微生物再加工的 DOM 表现出含 N、S 和 P 的分子数量和大小增加、含氧量降低和芳构化程度增加。 杂原子组成的变化表明,微生物过程可能对 C 以及 N、S 和 P 等其他元素的循环都很重要。 微生物的再加工还会产生光反应性化合物,这可能对 DOM 的光化学产生影响。 改进对冰上 DOM 及其微生物循环的测量对于提高我们对冰上 DOM 循环以及 DOM 向下游环境输出的生物地球化学和生态影响的理解至关重要。