通过红光介导的罗达胺转化为氧罗达胺,用于单分子显微镜
Jacob M Ritz1, Aset Khakimzhan1, Joseph J Dalluge2
1School of Physics and Astronomy, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455, United States.
Journal of the American Chemical Society
|February 22, 2025
概括
远红色的色胺可以意外地转化为红色发射体,在多色显微镜中引起交叉声. 氧气清理系统可以减少这种现象, 实现新的无紫外线超分辨率成像技术.
科学领域:
- 光显微镜
- 超高分辨率成像
- 摄影化学
背景情况:
- 罗达胺染料对于光显微镜至关重要,而罗达胺染料可用于高级成像.
- 由于膜透性,远红色罗达胺在单分子定位显微镜 (SMLM) 中很受欢迎,用于双色成像.
研究的目的:
- 在照明下研究深红色罗达胺的光化学.
- 在多色SMLM中识别和描述导致交叉声的光产品.
- 开发缓解交叉通话的策略,并探索新的超高分辨率成像应用.
主要方法:
- 远红色罗达胺 (例如JFX650,JF669) 在640nm的照明.
- 用于检测光产品的辐射光谱分析.
- 应用氧气清理系统以减少交叉声.
- 无紫外线光激活定位显微镜 (PALM) 的演示.
主要成果:
- 远红色的罗达胺在640nm照明后通过氧替换转化为发射红色的氧罗达胺.
- 这种光转换会在红色通道中引起显著的蓝移辐射和交叉声.
- 吸收氧气可以减少16倍的杂音.
- 无紫外线PALM的效率是Cy5转换为Cy3的5倍.
结论:
- 罗达胺光转换是多色SMLM的一个重要工件,产生交叉声音.
- 有效地减少了这种交叉声响.
- 光转换现象使无紫外线PALM策略和多重成像方法成为可能.
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