Duersch Bobby G, Luo Yanqi, Chen Si, Soini Steven A, Raja Somu Dawn M, Merk Vivian M
Chemistry and Biochemistry, Ocean and Mechanical Engineering, Florida Atlantic University, Boca Raton, FL, 33431, USA.
X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, 60439, USA.
Environ Pollut. 2023 Oct 1;334:121781. doi: 10.1016/j.envpol.2023.121781. Epub 2023 May 5.
Harmful algal blooms (HABs) pose a major environmental concern across the globe. In abundance, cyanobacteria, or so-called green-blue algae can produce extremely dangerous cyanotoxins that harm humans and animals. This study focused on the mapping and distribution of intracellular macro-and micronutrients of the wide-spread freshwater cyanobacteria Microcystis aeruginosa (M. aeruginosa). Towards a better understanding of trace metal uptake and homeostasis throughout the cell cycle, we quantitatively mapped the spatial distribution of the elements P, K, Fe, Ca, Zn, Mn, and Cu across the ultrastructure of frozen-hydrated single cells using state-of-the-art X-ray nanofluorescence imaging at the Advanced Photon Source (APS) at Argonne National Laboratory. Bulk cellular nutrient and trace metal content correlated well with the total intracellular elemental content in individual cells obtained by quantitative synchrotron X-ray fluorescence measurements. Multi-dimensional mappings showed P and K atoms colocalized as discrete semicircular hotspots that were analyzed with respect to their stoichiometry. Elevated Cu and Ca concentrations were detected along division plane of cells. P and K were found to have similar spatial elemental distribution with about 65% and 69% of the total cellular P and K, respectively, located at the hotspots. The P and K colocalization were refined further using nanotomography, showing a K envelope surrounding the P core. Inorganic P and organic P compounds were specified using solution-state P nuclear magnetic resonance (NMR) spectroscopy from M. aeruginosa. Of the total extracted P determined by P NMR spectroscopy, 47% were found to be nucleotides while only 11% were polyphosphates. Multimodal X-ray imaging provides a better understanding of intracellular biochemical processes in cyanobacteria, helping us monitor and combat an emerging environmental threat.
有害藻华(HABs)是全球主要的环境问题。大量的蓝细菌,即所谓的蓝绿藻,会产生极其危险的蓝藻毒素,危害人类和动物。本研究聚焦于广泛分布的淡水蓝细菌铜绿微囊藻(M. aeruginosa)细胞内大量和微量营养素的图谱绘制及分布情况。为了更好地理解整个细胞周期中痕量金属的摄取和稳态,我们使用阿贡国家实验室先进光子源(APS)的先进X射线纳米荧光成像技术,对冷冻水合单细胞超微结构中的磷(P)、钾(K)、铁(Fe)、钙(Ca)、锌(Zn)、锰(Mn)和铜(Cu)元素的空间分布进行了定量测绘。通过同步加速器X射线荧光定量测量获得的单个细胞内的总元素含量,与细胞整体营养物质和痕量金属含量具有良好的相关性。多维图谱显示,P和K原子共定位为离散的半圆形热点,并对其化学计量进行了分析。在细胞分裂平面处检测到铜和钙浓度升高。发现P和K具有相似的空间元素分布,细胞内总P和K分别约有65%和69%位于热点处。利用纳米断层扫描进一步细化了P和K的共定位情况,显示K围绕着P核心形成一个包膜。通过铜绿微囊藻的溶液态磷核磁共振(NMR)光谱确定了无机磷和有机磷化合物。通过磷核磁共振光谱测定,在总提取磷中,47%为核苷酸,而多磷酸盐仅占11%。多模态X射线成像有助于更好地理解蓝细菌细胞内的生化过程,帮助我们监测和应对新出现的环境威胁。