Chen Wei, Liu Xiao-Yang, Yu Han-Qing
CAS Key Laboratory of Urban Pollutant Conversion, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, China.
CAS Key Laboratory of Urban Pollutant Conversion, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, China.
Environ Pollut. 2017 Mar;222:23-31. doi: 10.1016/j.envpol.2017.01.011. Epub 2017 Jan 13.
Temperature variation caused by climate change, seasonal variation and geographic locations affects the physicochemical compositions of chromophoric dissolved organic matter (CDOM), resulting in difference in the fates of CDOM-related environmental pollutants. Exploration into the thermal induced structural transition of CDOM can help to better understand their environmental impacts, but information on this aspect is still lacking. Through integrating fluorescence excitation-emission matrix coupled parallel factor analysis with synchronous fluorescence two-dimensional correlation spectroscopy, this study provides an in-depth insight into the temperature-dependent conformational transitions of CDOM and their impact on its hydrophobic interaction with persistent organic pollutants (with phenanthrene as an example) in water. The fluorescence components in CDOM change linearly to water temperature with different extents and different temperature regions. The thermal induced transition priority in CDOM is protein-like component → fulvic-like component → humic-like component. Furthermore, the impact of thermal-induced conformational transition of CDOM on its hydrophobic interaction with phenanthrene is observed and explored. The fluorescence-based analytic results reveal that the conjugation degree of the aromatic groups in the fulvic- and humic-like substances, and the unfolding of the secondary structure in the protein-like substances with aromatic structure, contribute to the conformation variation. This integrated approach jointly enhances the characterization of temperature-dependent conformational variation of CDOM, and provides a promising way to elucidate the environmental behaviours of CDOM.
气候变化、季节变化和地理位置引起的温度变化会影响发色溶解有机物(CDOM)的物理化学组成,导致与CDOM相关的环境污染物的归宿存在差异。探索CDOM的热诱导结构转变有助于更好地理解其环境影响,但这方面的信息仍然匮乏。通过将荧光激发-发射矩阵结合平行因子分析与同步荧光二维相关光谱相结合,本研究深入洞察了CDOM随温度变化的构象转变及其对水中CDOM与持久性有机污染物(以菲为例)疏水相互作用的影响。CDOM中的荧光成分在不同程度和不同温度区域随水温呈线性变化。CDOM的热诱导转变优先级为类蛋白质成分→类富里酸成分→类腐殖酸成分。此外,还观察和探讨了CDOM的热诱导构象转变对其与菲疏水相互作用的影响。基于荧光的分析结果表明,类富里酸和类腐殖酸物质中芳香族基团的共轭程度,以及具有芳香结构的类蛋白质物质二级结构的展开,促成了构象变化。这种综合方法共同增强了对CDOM随温度变化的构象变化的表征,并为阐明CDOM的环境行为提供了一种有前景的方法。