Semiconducting Polymer Nanomaterials as Near-Infrared Photoactivatable Protherapeutics for Cancer

Jingchao Li1, Kanyi Pu1

  • 1School of Chemical and Biomedical Engineering, Nanyang Technological University, 70 Nanyang Drive, Singapore 637457, Singapore.

Insights

Semiconducting polymer nanomaterials (SPNs) offer a novel approach to cancer therapy by converting near-infrared (NIR) light into heat or singlet oxygen. This enables precise activation of protherapeutic agents, enhancing treatment efficacy and reducing side effects.

Area of Science:

  • Materials Science
  • Nanotechnology
  • Oncology
  • Biomedical Engineering

Background:

  • Current cancer therapies often involve therapeutic agents with significant side effects.
  • Protherapeutic agents activated by cancer biomarkers show promise but can have off-target effects.
  • External-stimuli activatable protherapeutics, particularly those activated by near-infrared (NIR) light, are highly desired for improved in vivo cancer treatment due to better tissue penetration and reduced phototoxicity compared to UV-Vis light.

Purpose of the Study:

  • To summarize the development and application of semiconducting polymer nanomaterials (SPNs) as NIR photoactivatable protherapeutic agents for cancer treatment.
  • To highlight the dual photothermal and photodynamic properties of SPNs for activating therapeutic agents.
  • To showcase the versatility of SPNs in constructing advanced protherapeutics for precise cancer therapy.

Main Methods:

  • SPNs are synthesized from π-conjugated polymers, enabling efficient conversion of NIR light into heat or singlet oxygen (¹O₂).
  • Heat-activatable agents involve loading or conjugating SPNs with therapeutic agents (agonists, genes, enzymes) for photothermal release or activation.
  • ¹O₂-activatable agents are constructed by covalently linking SPNs with caged therapeutic agents via hypoxia- or ¹O₂-cleavable linkers for remote activation upon NIR irradiation.

Main Results:

  • SPNs effectively convert NIR light into heat for photothermal therapy or ¹O₂ for photodynamic therapy (PDT).
  • Heat-activatable SPN-based agents demonstrated triggered release of agonists, leading to cancer cell apoptosis, and enhanced drug accumulation via collagen degradation.
  • ¹O₂-activatable SPN-based agents successfully induced DNA damage, RNA degradation, protein biosynthesis inhibition, and immune system activation in tumors, synergizing PDT with targeted biological actions for complete tumor elimination and metastasis inhibition.

Conclusions:

  • SPNs serve as versatile platforms for developing NIR photoactivatable protherapeutic agents for precise cancer treatment.
  • The combined photothermal and photodynamic properties of SPNs, coupled with targeted activation strategies, significantly enhance therapeutic outcomes.
  • This approach offers a promising strategy for achieving high therapeutic efficacy and precision in cancer therapy, with potential to inhibit tumor metastasis.

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