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Gene Regulation and Targeted Therapy in Gastric Cancer Peritoneal Metastasis: Radiological Findings from Dual Energy CT and PET/CT
Published on: January 22, 2018
17-DMAG-Loaded HER2-Targeted Extracellular Vesicles Induce PARP/Caspase3-Mediated Apoptosis in Gastric Carcinoma
Sin Hye Park1, Deok Yong Sim2, Do Sang Lee2
1Department of Gastrointestinal Surgery, Eunpyeong St. Mary's Hospital, College of Medicine, The Catholic University of Korea, Seoul 03312, Republic of Korea.
Abstract:
Gastric cancer remains a major clinical challenge, underscoring the need for more effective drug delivery strategies. Approximately 10-20% of gastric cancers overexpress HER2, conferring aggressive tumor characteristics and poor survival, yet resistance to trastuzumab-based targeted therapy and limited intratumoral antibody penetration continue to restrict clinical outcomes. This study evaluated HER2-targeted exosomes as a delivery platform. Exosomes were engineered to express the p51 peptide, a high-affinity HER2-binding ligand, and loaded with 17-dimethylaminoethylamino-17-demethoxygeldanamycin (17-DMAG), a potent HSP90 inhibitor. The cellular uptake and antitumor efficacy of p51-Exo17-DMAG were assessed in vitro using NCI-N87 and AGS cells and in vivo using a mouse xenograft model. p51-modified exosomes exhibited superior HER2 specific uptake. Treatment with p51-Exo17-DMAG significantly increased apoptosis, as demonstrated by elevated PARP and caspase3 cleavage, and downregulated oncogenic signaling molecules, including p-AKT, CDK2, VEGF, and c-Myc. Furthermore, p51-Exo17-DMAG increased the number of TUNEL-positive cells. In the NCI-N87 xenograft model, systemic administration of p51-Exo17-DMAG significantly inhibited tumor growth without toxicity or histological damage to major organs. Tumor analysis confirmed increased apoptosis and reduced proliferation in vivo. These findings demonstrate that p51-engineered exosomes provide an efficient, selective, and safe platform for HER2-targeted delivery of 17-DMAG, offering a promising precision medicine strategy for HER2-positive gastric cancer.
Insights
Engineered exosomes target HER2-positive gastric cancer, delivering HSP90 inhibitor 17-DMAG. This HER2-targeted exosome therapy shows potent antitumor efficacy and safety in preclinical models.
Area of Science:
- Oncology
- Biotechnology
- Nanomedicine
Background:
- Gastric cancer poses significant challenges, with HER2-positive subtypes exhibiting aggressive traits and resistance to current therapies.
- Trastuzumab therapy for HER2-positive gastric cancer is limited by poor antibody penetration and resistance.
- Novel drug delivery systems are needed to improve treatment outcomes for HER2-positive gastric cancer.
Purpose of the Study:
- To evaluate HER2-targeted exosomes engineered with p51 peptide for delivering 17-DMAG (HSP90 inhibitor).
- To assess the in vitro and in vivo efficacy and safety of p51-Exo17-DMAG in HER2-positive gastric cancer models.
Main Methods:
- Exosomes were engineered to express p51 peptide for HER2 targeting and loaded with 17-DMAG.
- In vitro studies used NCI-N87 and AGS cells to assess cellular uptake and apoptosis.
- In vivo studies utilized a mouse xenograft model to evaluate tumor growth inhibition and toxicity.
Main Results:
- p51-modified exosomes demonstrated enhanced HER2-specific cellular uptake.
- p51-Exo17-DMAG treatment significantly increased apoptosis and downregulated key oncogenic signaling pathways (p-AKT, CDK2, VEGF, c-Myc).
- Systemic administration of p51-Exo17-DMAG effectively inhibited tumor growth in vivo without causing significant toxicity.
Conclusions:
- p51-engineered exosomes serve as an efficient and selective platform for HER2-targeted drug delivery.
- This approach offers a promising precision medicine strategy for HER2-positive gastric cancer.
- The HER2-targeted exosome delivery of 17-DMAG demonstrates significant therapeutic potential with a favorable safety profile.
