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February 21, 2026International Journal of Pharmaceutics X0 citationsOpen Access

Hypoxia-relieving and glycolysis-disrupting polydopamine nanomedicine for synergistic chemo-photothermal therapy of hepatocellular carcinoma

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XWXiang WangYMYihan MaLWLinlin Wang

Key Points

  • To develop a polydopamine nanomedicine that alleviates hypoxia and disrupts glycolysis in hepatocellular carcinoma (HCC).
  • Developed SC@PDA-Gal co-loading shikonin and catalase.
  • Inhibited pyruvate kinase M2 to disrupt glycolysis.
  • Decomposed H2O2 to generate oxygen in situ to alleviate hypoxia.
  • Evaluated therapeutic efficacy through lactate and ATP depletion in HCC cells.
  • Assessed tumor inhibition in vivo in C5WN1-bearing mice.
  • Reduced lactate production by 51% in HCC cells compared to control.
  • Depleted intracellular ATP by 89% in HCC cells compared to control.
  • Achieved a tumor inhibition rate of 93.44 ± 2.86% in mice with favorable biosafety.
  • Enabled efficient photothermal conversion under near-infrared irradiation.

Abstract

Hypoxia is a hallmark of solid tumors that compromises therapeutic efficacy in hepatocellular carcinoma (HCC). Here, a multifunctional polydopamine (PDA)-based nanomedicine co-loading shikonin (SK) and catalase (CAT) and functionalized with galactose (Gal) is developed and termed SC@PDA-Gal. SC@PDA-Gal delivers SK to inhibit pyruvate kinase M2 (PKM2) and disrupt glycolytic output, while the co-delivered CAT decomposes endogenous H 2 O 2 to generate O 2 in situ, thereby downregulating HIF-1α and alleviating hypoxia. Under hypoxic conditions, SC@PDA-Gal reduces lactate production by 51% (vs. control) and depletes intracellular adenosine triphosphate (ATP) by 89% (vs. control) in HCC cells, indicating effective glycolysis suppression. Moreover, PDA enables efficient photothermal conversion under near-infrared (NIR) irradiation, providing localized hyperthermia and accelerating drug release. In vivo, SC@PDA-Gal achieves a tumor inhibition rate of 93.44 ± 2.86% in subcutaneous C5WN1-bearing mice with favorable biosafety. Collectively, SC@PDA-Gal represents a targeted, hypoxia-adaptive chemo-photothermal nanomedicine for precision HCC therapy.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69994bdd873532290d01fec0https://doi.org/10.1016/j.ijpx.2026.100506
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