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Adipose-derived stromal cell secretome disrupts autophagy in glioblastoma
Giovana Ravizzoni Onzi1, Juliano Luiz Faccioni1, Luiza Cherobini Pereira1
1Departamento de Biofísica e Centro de Biotecnologia, Universidade Federal do Rio Grande do Sul (UFRGS), Av. Bento Gonçalves 9500, Porto Alegre, RS, 91501-970, Brazil.
Abstract:
Mesenchymal stromal cells (MSCs) are frequently recruited to tumor sites to play a part in the tumor microenvironment (TME). However, their real impact on cancer cell behavior remains obscure. Here we investigated the effects of human adipose-derived stromal cell (hADSC) secretome in autophagy of glioblastoma (GBM), as a way to better comprehend how hADSCs influence the TME. GBM U-87 MG cells were treated with conditioned medium (CM) from hADSCs and autophagic flux was evaluated. hADSC CM treatment blocked the autophagic flux in tumor cells, as indicated by the accumulation of autophagosomes in the cytosol, the high LC3-II and p62/SQSTM1 protein levels, and the lack of increase in the amount of acidic vesicular organelles. These effects were further detected in other GBM cell lines tested and also in co-cultures of hADSCs and U-87 MG. hADSC CM did not compromise lysosomal acidification; however, it was able to activate mTORC1 signaling and, as a consequence, led to a decrease in the nuclear translocation of TFEB, a master transcriptional regulator of lysosomal biogenesis and autophagy, thereby contributing to a defective autophagic process. hADSCs secrete transforming growth factor beta 1 (TGFβ1) and this cytokine is an important mediator of CM effects on autophagy. A comprehensive knowledge of MSC roles in tumor biology is of great importance to shed light on the complex dialog between these cells and to explore such interactions therapeutically. The present results help to elucidate the paracrine effects of MSCs in tumors and bring attention to the potential to be explored in MSC secretome. KEY MESSAGES: hADSC secretome specifically affects the biology of GBM cells. hADSCs block the late steps of autophagic flux in GBM cells. hADSC secretome activates mTORC1 signaling and reduces TFEB nuclear translocation in GBM cells.
Insights
Human adipose-derived stromal cells (hADSCs) block autophagy in glioblastoma (GBM) cells by activating mTORC1 signaling. This discovery sheds light on how hADSCs influence the tumor microenvironment and offers potential therapeutic avenues.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Mesenchymal stromal cells (MSCs) are recruited to tumors, influencing the tumor microenvironment (TME).
- The precise impact of MSCs on cancer cell behavior, particularly glioblastoma (GBM), remains unclear.
- Understanding these interactions is crucial for developing novel cancer therapies.
Purpose of the Study:
- To investigate the effects of human adipose-derived stromal cell (hADSC) secretome on autophagy in glioblastoma (GBM) cells.
- To elucidate the mechanisms by which hADSCs modulate the GBM tumor microenvironment.
- To identify potential therapeutic targets within the MSC-GBM cell communication.
Main Methods:
- GBM U-87 MG cells were treated with conditioned medium (CM) from hADSCs.
- Autophagic flux was evaluated using markers such as LC3-II, p62/SQSTM1, and acidic vesicular organelles.
- mTORC1 signaling and TFEB nuclear translocation were assessed.
- Co-cultures of hADSCs and GBM cells were utilized.
Main Results:
- hADSC CM treatment blocked autophagic flux in GBM cells, evidenced by autophagosome accumulation and elevated LC3-II/p62 levels.
- hADSC CM activated mTORC1 signaling and decreased TFEB nuclear translocation, indicating impaired lysosomal biogenesis and autophagy.
- These effects were mediated by transforming growth factor beta 1 (TGFβ1) secreted by hADSCs.
- The observed effects were consistent across different GBM cell lines and in co-culture models.
Conclusions:
- hADSC secretome specifically impacts GBM cell biology by inhibiting late-stage autophagy.
- Activation of mTORC1 signaling and subsequent reduction in TFEB nuclear translocation are key mechanisms involved.
- These findings highlight the paracrine effects of MSCs in tumors and suggest the potential of targeting MSC secretome for therapeutic strategies.
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