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Updated: Mar 12, 2026

A Bright NIR-II Fluorescence Probe for Vascular and Tumor Imaging
Published on: March 17, 2023
Mitochondria-targeted NIR-II organic probes for imaging-guided photodynamic therapy
Abstract:
Fluorescence imaging-guided photodynamic therapy (PDT) is a promising modality for precision cancer treatment, yet most organic photosensitizers emitting in the visible or first near-infrared (NIR-I) region suffer from limited penetration, strong photon scattering, and high tissue autofluorescence. Organic fluorophores with second near-infrared emission (NIR-II, >1000 nm) mitigate these constraints, enabling deeper imaging, improved spatial resolution, and higher signal-to-background ratios for accurate tumor delineation, real-time therapeutic guidance and longitudinal monitoring of PDT responses. Subcellular targeting further affects PDT efficacy and mechanism. Mitochondria are particularly attractive targets because they govern redox homeostasis and bioenergetics and function as central hubs for programmed cell death (PCD). Mitochondria-localized photosensitizers (PSs) generate reactive oxygen species (ROS) adjacent to cardiolipin-rich membranes and respiratory chain complexes, amplifying phototoxicity while reducing off-target oxidation. Consequently, mitochondria-targeted NIR-II fluorophores provide an integrated phototheranostic framework that couples high-contrast deep-tissue imaging with spatially confined PDT to modulate apoptosis, pyroptosis, ferroptosis, autophagy/mitophagy-associated death, and necroptosis. In this review, we summarize recent advances in mitochondria-targeted organic NIR-II fluorophores for PDT, highlighting photophysical principles and molecular design strategies. We also emphasize how mitochondria-localized NIR-II PDT enables programmable regulation of cell death pathways and enhances antitumor immune responses, thereby offering new opportunities to overcome therapeutic resistance and advance precision photomedicine.
Insights
Mitochondria-targeted organic fluorophores emitting in the second near-infrared region (NIR-II) enhance cancer photodynamic therapy (PDT) by enabling deeper imaging and precise tumor targeting. This approach improves treatment efficacy and allows for programmed regulation of cell death pathways.
Area of Science:
- Biomedical Optics
- Cancer Phototherapy
- Nanomedicine
Background:
- Visible/NIR-I photosensitizers have limited tissue penetration and high autofluorescence.
- Second near-infrared (NIR-II) fluorophores offer deeper imaging and better signal-to-background ratios.
- Subcellular targeting, particularly mitochondria, enhances photodynamic therapy (PDT) efficacy.
Purpose of the Study:
- To review advances in mitochondria-targeted organic NIR-II fluorophores for PDT.
- To highlight design strategies and photophysical principles for these agents.
- To emphasize the role of mitochondria-localized NIR-II PDT in regulating cell death and immune responses.
Main Methods:
- Literature review of recent advancements in mitochondria-targeted organic NIR-II fluorophores for PDT.
- Analysis of photophysical properties and molecular design strategies.
- Discussion of programmed cell death modulation and immune response enhancement.
Main Results:
- Mitochondria-targeted NIR-II fluorophores enable high-contrast, deep-tissue imaging for accurate tumor delineation and real-time therapeutic guidance.
- These agents amplify phototoxicity by generating reactive oxygen species (ROS) near mitochondria, reducing off-target effects.
- NIR-II PDT can programmably regulate multiple cell death pathways (apoptosis, pyroptosis, ferroptosis, necroptosis, autophagy/mitophagy).
Conclusions:
- Mitochondria-targeted NIR-II fluorophores represent an integrated photodiagnostic and phototherapeutic framework for precision cancer treatment.
- This approach enhances antitumor immune responses and offers potential to overcome therapeutic resistance.
- Advances in this field pave the way for improved precision photomedicine and cancer therapy.

