Context-dependent roles for autophagy in myeloid cells in tumor progression
Choi, J.; Park, G.; Lee, S. S.-Y.; Dominici, E.; Becker, L.; Macleod, K. F.; KRON, S. J.; Hwang, S.
Show abstract
Autophagy is known to suppress tumor initiation by removing genotoxic stresses in normal cells. Conversely, autophagy is also known to support tumor progression by alleviating metabolic stresses in neoplastic cells. Centered on this pro-tumor role of autophagy, there have been many clinical trials to treat cancers through systemic blocking of autophagy. Such systemic inhibition affects both tumor cells and non-tumor cells, and the consequence of blocked autophagy in non-tumor cells in the context of tumor microenvironment is relatively understudied. Here, we examined the effect of autophagy-deficient myeloid cells on the progression of autophagy-competent tumors. We found that blocking autophagy only in myeloid cells modulated tumor progression markedly but such effects were context dependent. In a tumor implantation model, the growth of implanted tumor cells was substantially reduced in mice with autophagy-deficient myeloid cells; T cells infiltrated deeper into the tumors and were responsible for the reduced growth of the implanted tumor cells. In an oncogene-driven tumor induction model, however, tumors grew faster and metastasized more in mice with autophagy- deficient myeloid cells. These data demonstrate that the autophagy status of myeloid cells plays a critical role in tumor progression, promoting or suppressing tumor growth depending on the context of tumor-myeloid cell interactions. This study indicates that systemic use of autophagy inhibitors in cancer therapy may have differential effects on rates of tumor progression in patients due to effects on myeloid cells and that this warrants more targeted use of selective autophagy inhibitors in a cancer therapy in a clinical setting.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Natural killer cell regulation of breast cancer stem cells mediates metastatic dormancy. 94%
- Endothelial Rbpj is essential for the education of tumour-associated macrophages 94%
- Targeting the dependence on PIK3C3-mTORC1 signaling in dormancy-prone breast cancer cells blunts metastasis initiation 94%
Similar papers in this journal
- Combining an alarmin HMGN1 peptide with PD-L1 blockade facilitates stem-like CD8+ T cell expansion and results in robust antitumor effects 96%
- Inflammasome- and gasdermin D-independent IL-1β production mobilizes neutrophils to inhibit antitumor immunity 96%
- Suppression of tumor/host intrinsic CMTM6 drives anti-tumor cytotoxicity in a PD-L1 independent manner 95%
Similar papers in this journal
- Early neutrophilia marked by aerobic glycolysis sustains host metabolism and delays cancer cachexia 96%
- Functionally and metabolically divergent melanoma-associated macrophages originate from common bone-marrow precursors 95%
- Intertumoral Genetic Heterogeneity Generates Distinct Tumor Microenvironments in a Novel Murine Synchronous Melanoma Model 94%
Similar papers in this journal
- Interferon-Gamma Signaling Promotes Melanoma Progression and Metastasis 94%
- Mast cells interact directly with colorectal cancer cells to promote epithelial-to-mesenchymal transition 93%
- Mitochondrial structure and function adaptation in residual triple negative breast cancer cells surviving chemotherapy treatment 93%
Similar papers in this journal
- CD300e is a driver of the immunosuppressive tumor microenvironment and colorectal cancer progression via macrophage reprogramming 96%
- Nicotinamide combined with gemcitabine is an immunomodulatory therapy that restrains pancreatic cancer in mice 95%
- Differential Phagocytosis induces Diverse Macrophage Activation States in Malignant Gliomas 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.