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Sollazzo, M.

Publications and source records attributed to Sollazzo, M..

2 recordsLinked to original sources

Abolishing respiratory complex I decreases in vivo growth of high grade serous ovarian cancer cells and sensitizes to anti-angiogenic therapy

Targeting mitochondrial Complex I (CI) is a currently emerging anti-cancer strategy, with several enzyme inhibitors entering clinical trials. Among others, aggressive high-grade serous tubo-ovarian cancer (HGSOC) may particularly benefit from this therapeutic approach due to the scarce response to first- and second-line treatments, with consequent high mortality, such as the anti-angiogenic bevacizumab. We here show that CI represents a vulnerability in HGSOC, which can be exploited for therapeutic intervention. Indeed, ablating CI function in OV-90 HGSOC cells led to significant in vivo tumor growth decrease, smaller masses, and lower KI-67 proliferative index. This was confirmed in a switch-off system in which CI deprivation was induced during tumor progression to mimic pharmacologic treatment, suggesting this result can be achieved in growing neoplasms. We also show that abolishing CI in HGSOC cells leads to failure in stabilizing the hypoxia inducible factor-1a and to respond to hypoxia through the transcriptional activation of its target genes, ultimately lowering vascular endothelial growth factor (VEGF) and generating an immature intratumor vascular system accompanied by a decreased blood flow. Last, we demonstrate that targeting CI sets the biological basis for increased sensitivity to anti-angiogenics, as CI-deprived tumors displayed growth arrest when bevacizumab was administered, unlike their CI-competent counterpart. Our findings point to CI inhibition as a booster for anti-VEGF therapies and pave the way for combined protocols in treatment of HGSOC.

cancer biology↗

Identification of first-in-class small molecule potential inhibitor of GDF15

BackgroundGrowth Differentiation Factor 15 (GDF15), a mitokine implicated in stress response, has been associated with numerous diseases, particularly cancer cachexia. Many approaches, including monoclonal antibodies and peptide antagonists, have been implemented to inhibit GDF15 activity. It is currently unknown whether it is possible to inhibit GDF15 using small organic molecules (SOMs). MethodsA structure-based in silico screening workflow of a curated compound library was implemented to identify SOMs capable of binding to the monomeric or dimeric form of GDF15. The three top-ranking SOMs of each group were then tested in vitro on normal and cancer cells. ResultsAmong all tested SOMs, dioxoimidazolidin derivative named SOM D resulted capable of inhibiting GDF15 dimer formation and decreasing binding to GFRAL. Furthermore, it was found to be devoid of acute cytotoxicity both in normal cells (dermal fibroblasts, DFs) and tumor cells (OV90), to significantly slow proliferation and modify the expression of genes involved in GDF15 signaling or in cell cycle and senescence in OV90, but not in DFs. Interestingly, simultaneous treatment with SOMs and doxorubicin (doxo) failed in arresting the cell cycle compared to doxo alone. ConclusionsThe in silico screening has proven effective in identifying SOMs putatively capable of inhibiting GDF15, among which SOM D appears the most promising. Further characterizations will be necessary to better understand the exact mechanisms of action. Furthermore, the observation that SOMs have an opposite effect on proliferation in cancer versus normal cellular context suggests a dual role in cell-cycle control in presence of cancer aberration.

molecular biology↗