Briñas Raymond P, Troxler Thomas, Hochstrasser Robin M, Vinogradov Sergei A
Department of Biochemistry and Biophysics, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
J Am Chem Soc. 2005 Aug 24;127(33):11851-62. doi: 10.1021/ja052947c.
Imaging oxygen in 3D with submicron spatial resolution can be made possible by combining phosphorescence quenching technique with multiphoton laser scanning microscopy. Because Pt and Pd porphyrin-based phosphorescent dyes, traditionally used as phosphors in biological oxygen measurements, exhibit extremely low two-photon absorption (2PA) cross-sections, we designed a nanosensor for oxygen, in which a 2P absorbing antenna is coupled to a metalloporphyrin core via intramolecular energy transfer (ET) with the purpose of amplifying the 2PA induced phosphorescence of the metalloporphyrin. The central component of the device is a polyfunctionalized Pt porphyrin, whose triplet state emission at ambient temperatures is strong, occurs in the near infrared and is sensitive to O2. The 2PA chromophores are chosen in such a way that their absorption is maximal in the near infrared (NIR) window of tissue (e.g., 700-900 nm), while their fluorescence is overlapped with the absorption band(s) of the core metalloporphyrin, ensuring an efficient antenna-core resonance ET. The metalloporphyrin-antenna construct is embedded inside the protecting dendritic jacket, which isolates the core from interactions with biological macromolecules, controls diffusion of oxygen and makes the entire sensor water-soluble. Several Pt porphyrin-coumarin based sensors were synthesized and their photophyics studied to evaluate the proposed design.
通过将磷光猝灭技术与多光子激光扫描显微镜相结合,能够实现具有亚微米空间分辨率的三维氧成像。由于传统上用作生物氧测量磷光体的基于铂和钯卟啉的磷光染料表现出极低的双光子吸收(2PA)截面,我们设计了一种氧纳米传感器,其中一个双光子吸收天线通过分子内能量转移(ET)与金属卟啉核心耦合,目的是放大金属卟啉的双光子吸收诱导磷光。该装置的核心组件是一种多官能化铂卟啉,其在环境温度下的三重态发射很强,发生在近红外区域且对氧气敏感。双光子吸收发色团的选择方式是使其在组织的近红外(NIR)窗口(例如700 - 900 nm)中吸收最大,同时其荧光与核心金属卟啉的吸收带重叠,确保有效的天线 - 核心共振能量转移。金属卟啉 - 天线构建体嵌入在保护性树枝状外壳内,该外壳将核心与生物大分子的相互作用隔离开来,控制氧气的扩散并使整个传感器具有水溶性。合成了几种基于铂卟啉 - 香豆素的传感器,并对其光物理性质进行了研究以评估所提出的设计。