A Multispectral Photoacoustic Tracking Strategy for Wide-Field and Real-Time Monitoring of Macrophages in Inflammation.
Zeshun LiTingting LiChen ZhangJen-Shyang NiYaoyao JiAihui SunDinglu PengWeijun WuLei XiKai LiPublished in: Analytical chemistry (2021)
Inflammation is a common defensive response of the vascular system that involves the activation and mediation of immune cell and stem cell homing. However, it is usually hard to track and analyze the real-time status of these cell types toward the inflammation microenvironment in a large field of view with desired resolution. Here, we designed and synthesized near-infrared absorbing semiconducting polymer nanoparticles, BBT-TQP-NP (BTNPs), as the cell tracker and utilized their photoacoustic activity to unveil the targeting behaviors of macrophages, neutrophils, and mesenchymal stem cells to the inflamed sites in mice. Facilitated by multispectral optical-resolution photoacoustic microscopy (ORPAM), we can continuously monitor the in vivo photoacoustic signals of the labeled cells with cellular resolution in a wide-field (a circle field-of-view with a diameter of 9 mm). In addition, the highly sensitive observation of vascular microstructures and labeled cells can reveal the time-dependent accumulating behaviors of various cell types toward inflammation sites. As a result, our study offers an effective and promising tracking strategy to analyze the in vivo status and fate of functional cells in targeting the diseased/damaged regions.
Keyphrases
- induced apoptosis
- oxidative stress
- stem cells
- fluorescence imaging
- single cell
- mesenchymal stem cells
- cell cycle arrest
- cell therapy
- single molecule
- high resolution
- pet imaging
- photodynamic therapy
- bone marrow
- type diabetes
- genome wide
- cancer therapy
- gene expression
- signaling pathway
- computed tomography
- cell proliferation
- positron emission tomography
- fluorescent probe
- living cells
- walled carbon nanotubes