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Molecular Cancer

Molecular Cancer

IF: 33.9
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Unveiling the PDK4-centered rituximab-resistant mechanism in DLBCL: the potential of the “Smart” exosome nanoparticle therapy

Published:15 July 2024 DOI: 10.1186/s12943-024-02057-0 PMID: 39004737
Xin Wu,?Chunmei Ban,?Woding Deng,?Xuewei Bao,?Ning Tang,?Yupeng Wu,?Zhixuan Deng,?Jianbin Xiong,?Qiangqiang Zhao

Abstract

Background: Diffuse large B-cell lymphoma (DLBCL) represents a prevalent malignant tumor, with approximately 40% of patients encountering treatment challenges or relapse attributed to rituximab resistance, primarily due to diminished or absent CD20 expression. Our prior research identified PDK4 as a key driver of rituximab resistance through its negative regulation of CD20 expression. Further investigation into PDK4's resistance mechanism and the development of advanced exosome nanoparticle complexes may unveil novel resistance targets and pave the way for innovative, effective treatment modalities for DLBCL.

Methods: We utilized a DLBCL-resistant cell line with high PDK4 expression (SU-DHL-2/R). We infected it with short hairpin RNA (shRNA) lentivirus for RNA sequencing, aiming to identify significantly downregulated mRNA in resistant cells. Techniques including immunofluorescence, immunohistochemistry, and Western blotting were employed to determine PDK4's localization and expression in resistant cells and its regulatory role in phosphorylation of Histone deacetylase 8 (HDAC8). Furthermore, we engineered advanced exosome nanoparticle complexes, aCD20@ExoCTX/siPDK4, through cellular, genetic, and chemical engineering methods. These nanoparticles underwent characterization via Dynamic Light Scattering (DLS) and Transmission Electron Microscopy (TEM), and their cellular uptake was assessed through flow cytometry. We evaluated the nanoparticles' effects on apoptosis in DLBCL-resistant cells and immune cells using CCK-8 assays and flow cytometry. Additionally, their capacity to counteract resistance and exert anti-tumor effects was tested in a resistant DLBCL mouse model.

Results: We found that PDK4 initiates HDAC8 activation by phosphorylating the Ser-39 site, suppressing CD20 protein expression through deacetylation. The aCD20@ExoCTX/siPDK4 nanoparticles served as effective intracellular delivery mechanisms for gene therapy and monoclonal antibodies, simultaneously inducing apoptosis in resistant DLBCL cells and triggering immunogenic cell death in tumor cells. This dual action effectively reversed the immunosuppressive tumor microenvironment, showcasing a synergistic therapeutic effect in a subcutaneous mouse tumor resistance model.

Conclusions: This study demonstrates that PDK4 contributes to rituximab resistance in DLBCL by modulating CD20 expression via HDAC8 phosphorylation. The designed exosome nanoparticles effectively overcome this resistance by targeting the PDK4/HDAC8/CD20 pathway, representing a promising approach for drug delivery and treating patients with Rituximab-resistant DLBCL.

Substances (8)

Materials
Procduct Name CAS Molecular Formula Supplier Price
Cyclophosphamide 50-18-0 C7H15Cl2N2O2P 436 suppliers $35.00-$1005.43
Cyclophosphamide 50-18-0 C7H15Cl2N2O2P 436 suppliers $35.00-$1005.43
Cyclophosphamide 50-18-0 C7H15Cl2N2O2P 436 suppliers $35.00-$1005.43
Cyclophosphamide 50-18-0 C7H15Cl2N2O2P 436 suppliers $35.00-$1005.43
Rituximab 174722-31-7 C6416H9874N1688O1987S44 134 suppliers Inquiry
Rituximab 174722-31-7 C6416H9874N1688O1987S44 134 suppliers Inquiry
Rituximab 174722-31-7 C6416H9874N1688O1987S44 134 suppliers Inquiry
Rituximab 174722-31-7 C6416H9874N1688O1987S44 134 suppliers Inquiry

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