AI Article Synopsis

  • Several DNA-damaging antitumor agents, including a newly synthesized RGD peptide-modified carboline ruthenium complex (KS-Ru), are shown to induce immunogenic cell death, providing a dual approach combining chemotherapy and immunotherapy.
  • The RGD peptide enhances tumor-specific targeting and enables the pH-responsive self-assembly of KS-Ru into structures that exhibit cytotoxic effects while promoting immune activation against tumors.
  • The effectiveness of KS-Ru is demonstrated through various assays, in vivo models, and assessments of the tumor immune microenvironment, showing its potential to inhibit tumor growth and metastasis while reducing the risk of drug resistance.

Article Abstract

Several DNA-damaging antitumor agents, including ruthenium complexes, induce immunogenic cell death (ICD). In this study, an arginyl-glycyl-aspartic acid (RGD) peptide-modified carboline ruthenium complex (KS-Ru) is synthesized as a chemotherapeutic nanodrug and an ICD inducer. The RGD peptide, an integrin ligand, provides tumor-specific targeting and promotes self-assembly of the KS-Ru complex. The pH-responsive self-assembly is assessed through transmission and scanning electron microscopy. Additionally, in vitro cytotoxic activity and anti-metastasis ability are evaluated using MTT and Transwell assays, respectively, along with cellular immunofluorescence staining and imaging flow cytometry. The ability of the complex to inhibit primary tumor formation and lung metastasis in vivo is evaluated using Lewis lung cancer and A549 xenograft models. Furthermore, the tumor immune microenvironment is evaluated using single-cell flow mass cytometry. KS-Ru translocates to the nucleus, causing DNA damage and inducing ICD. Within the lysosomes, KS-Ru self-assembled into nanoflowers, leading to lysosomal swelling and apoptosis. Notably, the as-synthesized pH-dependent ruthenium nanomedicine achieves dual functionality-chemotherapy and immunotherapy. Moreover, the pH-responsive self-assembly of KS-Ru enables simultaneous mechanisms in the lysosome and nucleus, thereby lowering the likelihood of drug resistance. This study provides valuable insight for the design of novel ruthenium-based nanoantitumor drugs.

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Source
http://dx.doi.org/10.1002/smll.202310636DOI Listing

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