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Depletion and Reconstitution of Macrophages in Mice
Published on: August 1, 2012
Blocking M2-Like Macrophage Polarization Using Decoy Oligodeoxynucleotide-Based Gene Therapy Prevents Immune Evasion
Chang-Jung Chen1, Hao-Chen Wang1,2,3, Ya-Chin Hou1,4
1Institute of Clinical Medicine, College of Medicine, National Cheng Kung University, Tainan, Taiwan.
Abstract:
M2-like macrophages exhibit immunosuppressive activity and promote pancreatic cancer progression. Reactive oxygen species (ROS) affect macrophage polarization; however, the mechanism remains unclear. This study aimed to elucidate the underlying molecular basis and design a gene therapy to inhibit M2-like polarization. Microarray analysis and immunofluorescence staining were performed in M1-like and M2-like macrophages to ascertain the expression of CYBB, a major intracellular ROS source. Coculture assay and syngeneic orthotopic pancreatic cancer mice models were used to study the mechanism of M2-like skewing. Decoy oligodeoxynucleotides (ODNs) were designed to manipulate CYBB transcription to inhibit M2-like polarization and control tumor growth. Lipopolysaccharide treatment polarized U937 cells to M1-like macrophages in which CYBB expression was increased. In contrast, coculture with PANC-1 cells induced M2-like polarization in U937 cells with CYBB downregulation. High CD204 M2-like expression in combination with low CYBB expression was associated with the worst prognosis in patients with pancreatic cancer. STAT6 and HDAC2 in U937 cells were activated by cancer cell-derived IL4 after coculture and then bound to the CYBB promoter to repress CYBB expression, resulting in M2-like polarization. Diphenyleneiodonium, 8λ³-iodatricyclo[7.4.0.02,⁷]trideca-1(13),2,4,6,9,11-hexaen-8-ylium chloride that inhibits ROS production could block this action. Knockdown of STAT6 and HDAC2 also inhibited M2-like polarization and maintained the M1-like phenotype of U937 cells after coculture. Decoy ODNs interrupting the binding of STAT6 to the CYBB promoter counteracted M2-like polarization and tumor growth and triggered antitumor immunity in vivo. Gene therapy using STAT6-CYBB decoy ODNs can inhibit M2-like polarization, representing a potential therapeutic tool for pancreatic cancer.
Insights
Researchers discovered how reactive oxygen species (ROS) influence M2-like macrophage polarization in pancreatic cancer. A novel gene therapy using decoy oligodeoxynucleotides (ODNs) targeting STAT6 and CYBB shows potential for inhibiting M2-like polarization and controlling tumor growth.
Area of Science:
- Immunology
- Oncology
- Gene Therapy
Background:
- M2-like macrophages promote pancreatic cancer progression through immunosuppression.
- The mechanism by which reactive oxygen species (ROS) influence macrophage polarization remains unclear.
- Understanding this mechanism is crucial for developing targeted pancreatic cancer therapies.
Purpose of the Study:
- To elucidate the molecular basis of M2-like macrophage polarization.
- To investigate the role of CYBB, a key ROS source, in this process.
- To design and evaluate a gene therapy to inhibit M2-like polarization and control pancreatic tumors.
Main Methods:
- Microarray analysis and immunofluorescence staining to assess CYBB expression in M1-like and M2-like macrophages.
- Coculture assays and syngeneic orthotopic pancreatic cancer mouse models to study M2-like skewing mechanisms.
- Design and application of decoy oligodeoxynucleotides (ODNs) to target CYBB transcription and STAT6 binding.
Main Results:
- Coculture with pancreatic cancer cells downregulated CYBB expression and induced M2-like polarization.
- High M2-like marker (CD204) and low CYBB expression correlated with poor pancreatic cancer prognosis.
- STAT6 and HDAC2 activation by IL4 repressed CYBB expression, driving M2-like polarization; decoy ODNs reversed this, inhibiting tumor growth and enhancing antitumor immunity.
Conclusions:
- STAT6 and HDAC2 play a critical role in repressing CYBB expression and promoting M2-like polarization in pancreatic cancer.
- STAT6-CYBB decoy ODNs effectively inhibit M2-like polarization and pancreatic tumor growth.
- This gene therapy strategy represents a promising therapeutic approach for pancreatic cancer.
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