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June 4, 2026Journal of Cancer Research and Clinical Oncology1 citationsOpen Access

Investigation of a GPC1-targeted and LIFU-responsive nanoplatform with ADV effect for visualized chemo-sonodynamic therapy against pancreatic ductal adenocarcinoma

BRBo RenGQGang QuanHLHanmei Li

Key Points

  • This study aims to develop a GPC1-targeted, LIFU-responsive nanoplatform for treating pancreatic ductal adenocarcinoma (PDAC).
  • Developed GCPIP integrating GPC1-Ab targeting and ultrasound-triggered drug release.
  • Conducted in vitro assessments of GCPIP's targeting and inhibitory effects on PDAC cells.
  • Utilized near-infrared fluorescence imaging to track GCPIP biodistribution in vivo.
  • GCPIP significantly inhibited PDAC cell proliferation in vitro compared to controls.
  • In vivo studies showed substantial tumor volume reduction and weight decrease with GCPIP treatment.
  • GCPIP demonstrated compatible biosafety profiles, indicating potential for clinical use.

Abstract

BACKGROUND: Pancreatic ductal adenocarcinoma (PDAC) remains one of the most lethal malignancies. Regardless of surgical resection, chemotherapy acts as the first-line treatment for PDAC. However, the clinical outcomes are severely compromised by insufficient tumour-specific targeting, chemoresistance, and systemic toxicity. Thus, new synergistic therapeutic strategies are urgently needed to improve therapeutic efficacy of PDAC. PURPOSE: This study developed a glypican-1 (GPC1)-targeted and low-intensity focused ultrasound (LIFU)-responsive nanoplatform for visualized treatment against PDAC. METHODS: This nanoplatform, termed GCPIP, integrated glypican-1-antibody (GPC1-Ab)-guided tumour-specific targeting, perfluoropentane (PFP)-driven acoustic imaging, ultrasound targeted nanobubble destruction (UTND)-triggered drug release, paclitaxel (PTX)-mediated chemotherapy and sonosensitizer-assisted sonodynamic therapy (SDT). RESULTS: GCPIP exhibited favourable physicochemical properties as a delivery system, showing excellent stability, responsive drug release behaviour, and robust ROS-generating capacity. In vitro studies revealed that GCPIP exhibited outstading tumour-targeting capability and potent inhibitory activity against PDAC tumour cells. Near-infrared fluorescence (NIRF) imaging in vivo demonstrated that GCPIP displayed a biodistribution profile broadly consistent with typical metabolic fate of nanoparticles, enabling preferential intratumoural accumulation. Leveraging acoustic droplet vaporization (ADV) effect of PFP, ultrasound (US) imaging further allowed real-time visualization of the uptake and spatial distribution of GCPIP within the tumour. Importantly, GCPIP elicited a pronounced synergistic antitumour effect upon LIFU, as evidenced by substantial inhibition in both tumour volume and tumour weight. Additionally, GCPIP exhibited favourable biosafety in vivo. CONCLUSION: GCPIP successfully achieved US imaging, tumour-specific drug delivery, spatiotemporally controlled drug release, and amplified chemo-sonodynamic therapy, providing a promising strategy to overcome chemoresistance of PDAC and reduce systemic toxicity.

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Cite This Study

Ren et al. (2026) studied this question.

synapsesocial.com/papers/6a211611d499ed480b16f2a4https://doi.org/10.1007/s00432-026-06518-5
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