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Reduced angiogenic gene expression in morbillivirus-triggered oncolysis in a translational model for histiocytic
Vanessa Maria Pfankuche1, Ingo Spitzbarth1, Stefanie Lapp1
1Department of Pathology, University of Veterinary Medicine, Hannover, Germany.
Abstract:
Histiocytic sarcoma represents a rare malignant tumour with a short survival time, indicating the need of novel treatment strategies including oncolytic virotherapy. The underlying molecular mechanisms of viral oncolysis are largely unknown. As cancer in companion animals shares striking similarities with human counterparts, we chose a permanent canine histiocytic sarcoma cell line (DH82 cells) to identify global transcriptome changes following infection with canine distemper virus (CDV), a paramyxovirus closely related to human measles virus. Microarray analysis identified 3054 differentially expressed probe sets (DEPs), encoding for 892 up- and 869 down-regulated unique canine genes, respectively, in DH82 cells persistently infected with the vaccine strain Onderstepoort of CDV (DH82-Ond-pi), compared to non-infected DH82 cells. Up-regulated genes were predominantly related to immune processes, as demonstrated by functional enrichment analysis. Moreover, there was substantial enrichment of genes characteristic for classically activated M1 and alternatively activated M2 macrophages in DH82-Ond-pi; however, significant polarization into either of both categories was lacking. 'Angiogenesis' was the dominant enriched functional term for the down-regulated genes, highlighting decreased blood vessel generation as a potential mechanism of paramyxovirus-induced oncolysis in DH82 cells. The anti-angiogenic effect of infection was verified by immunohistochemistry, which revealed a lower blood vessel density in an in vivo mouse model, xenotransplanted with DH82-Ond-pi, compared to mice transplanted with non-infected DH82 cells. Reduction in angiogenesis appears to be an important oncolytic mechanism of CDV in DH82 cells, suggesting that similar mechanisms might account for human histiocytic sarcoma and maybe other tumours in conjunction with measles virus.
Insights
Canine distemper virus (CDV) infection of histiocytic sarcoma cells alters gene expression, primarily impacting immune responses and reducing angiogenesis. This suggests viral oncolysis may involve anti-angiogenic mechanisms, offering insights for human cancer treatments.
Area of Science:
- Oncology
- Virology
- Molecular Biology
Background:
- Histiocytic sarcoma is a rare cancer with poor prognosis, necessitating novel therapies like oncolytic virotherapy.
- The molecular mechanisms of viral oncolysis remain poorly understood.
- Canine cancer models offer insights into human diseases due to shared similarities.
Purpose of the Study:
- To investigate global transcriptome changes in canine histiocytic sarcoma cells upon infection with canine distemper virus (CDV).
- To identify potential molecular mechanisms of CDV-induced oncolysis.
- To explore the role of angiogenesis in viral oncolysis.
Main Methods:
- Utilized a permanent canine histiocytic sarcoma cell line (DH82 cells) and persistently infected them with a CDV vaccine strain.
- Performed microarray analysis to identify differentially expressed genes.
- Conducted functional enrichment analysis and immunohistochemistry in a xenograft mouse model.
Main Results:
- Identified 3054 differentially expressed probe sets, with 892 genes up-regulated and 869 down-regulated.
- Up-regulated genes were primarily linked to immune processes and macrophage activation (M1/M2), though without distinct polarization.
- Down-regulated genes were significantly enriched for 'angiogenesis', indicating reduced blood vessel generation.
Conclusions:
- CDV infection in DH82 cells leads to significant transcriptome alterations, including immune modulation and suppressed angiogenesis.
- Reduced angiogenesis is a key mechanism of CDV-induced oncolysis in this model.
- Findings suggest potential therapeutic strategies for human histiocytic sarcoma and other cancers using measles virus-related agents.
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