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Biology subjects

Sauvat, A.

Publications and source records attributed to Sauvat, A..

2 recordsLinked to original sources

Lysosomal membrane permeabilization enhances the anticancer effects of RNA Polymerase I transcription inhibitors

Lysosomes are known to contribute to the development of drug resistance through a variety of mechanisms that include the sequestration of drugs within their compartments and the activation of adaptive stress pathways. Although targeting POL I (RNA polymerase I) exhibits anticancer effects, little attention has been paid to the contribution of lysosomes to the efficacy and resistance of RNA POL I inhibitors. In this study, we investigated this aspect in the context of two potent POL I inhibitors, CX-3543 (Quarfloxin) and CX-5461 (Pidnarulex). Unexpectedly, CX-3543 was discovered to be sequestered in the lysosomal compartment. This resulted in the permeabilization of lysosomal membranes (LMP) and the subsequent activation of cellular stress adaptation pathways, including the transcription factor (TFEB) and autophagy. Disruption of TFEB or autophagy increased cell sensitivity to CX-3543, highlighting the cytoprotective role of these processes against cell death induced by this compound. Moreover, targeting lysosomal membranes using chloroquine derivatives or blue light excitation induced substantial LMP, resulting in the liberation of CX-3543 from lysosomes. This effect amplified both the inhibition of DNA-to-RNA transcription and cell death induced by CX-3543. Similar effects were observed when chloroquine derivatives were combined with CX-5461. Furthermore, combining CX-3543 with the chloroquine derivative DC661 reduced the growth of fibrosarcoma established in immunocompetent mice more efficiently than either agent alone. Altogether, our results uncover an unanticipated lysosome-related mechanism that contributes to the resistance of cancer cells to POL I transcription inhibitors, as well as a strategy to combat this resistance.

cancer biology↗

Autophagy degrades immunogenic endogenous retroelements induced by 5-azacytidine in acute myeloid leukemia

The hypomethylating agent 5-azacytidine (AZA) is the first-line therapy for acute myeloid leukemia (AML) patients unfit for intensive chemotherapy. Evidence suggests that the anti-tumor effect of AZA results partly from T-cell cytotoxic responses against MHC-I-associated peptides (MAPs) whose expression is induced by hypomethylation. Through a proteogenomic approach, we analyzed the impact of AZA on the transcriptome and MAP repertoire of four AML cell lines and validated salient findings in the transcriptome of 437 primary AML samples. We demonstrate that AZA caused pleiotropic changes in AML cells via perturbation of transcription, translation, and protein degradation. Overall, 1,364 MAPs were upregulated in AZA-treated cells, including several cancer-testis antigens. Increased MAP abundance was due to the upregulation of corresponding transcripts in a minority of cases and post-translational events in most cases. Furthermore, AZA-induced hypomethylation increased the abundance of numerous transcripts, of which 38% were endogenous retroelements (EREs). Upregulated ERE transcripts triggered innate immune responses but were degraded by autophagy and not processed into MAPs. Autophagy resulted from the formation of protein aggregates caused by AZA-dependent inhibition of DNMT2, a tRNA-methyl transferase enzyme. We found that autophagy inhibition had a synergistic effect with AZA on AML cell proliferation and survival, increased ERE levels and triggered pro-inflammatory responses. Finally, autophagy gene signatures were associated with a lower abundance of CD8+ T-cell markers in AML patients expressing high levels of EREs. Altogether, this work demonstrates that the impact of AZA is regulated at several levels and suggests that inhibiting autophagy could improve the immune recognition of AML blasts in patients.

immunology↗