Back to Search Start Over

Molecular engineering of a TBET-based two-photon fluorescent probe for ratiometric imaging of living cells and tissues

Authors :
Jing Zhang
Yong-Xiang Wu
Guo-Jiang Mao
Yifan Lv
Weihong Tan
Qianqian Wang
Xiao-Bing Zhang
Yuan Wu
Ai-Li Luo
Liyi Zhou
Source :
Journal of the American Chemical Society. 136(28)
Publication Year :
2014

Abstract

In contrast to one-photon microscopy, two-photon probe-based fluorescent imaging can provide improved three-dimensional spatial localization and increased imaging depth. Consequently, it has become one of the most attractive techniques for studying biological events in living cells and tissues. However, the quantitation of these probes is primarily based on single-emission intensity change, which tends to be affected by a variety of environmental factors. Ratiometric probes, on the other hand, can eliminate these interferences by the built-in correction of the dual emission bands, resulting in a more favorable system for imaging living cells and tissues. Herein, for the first time, we adopted a through-bond energy transfer (TBET) strategy to design and synthesize a small molecular ratiometric two-photon fluorescent probe for imaging living cells and tissues in real time. Specifically, a two-photon fluorophore (D-π-A-structured naphthalene derivative) and a rhodamine B fluorophore are directly connected by electronically conjugated bond to form a TBET probe, or Np-Rh, which shows a target-modulated ratiometric two-photon fluorescence response with highly efficient energy transfer (93.7%) and two well-resolved emission peaks separated by 100 nm. This novel probe was then applied for two-photon imaging of living cells and tissues and showed high ratiometric imaging resolution and deep-tissue imaging depth of 180 μm, thus demonstrating its practical application in biological systems.

Details

ISSN :
15205126
Volume :
136
Issue :
28
Database :
OpenAIRE
Journal :
Journal of the American Chemical Society
Accession number :
edsair.doi.dedup.....b2b2434a5dd509578bd6160004228d5f