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Biology subjects

Gies, A.

Publications and source records attributed to Gies, A..

2 recordsLinked to original sources

Characterization of methionine dependence in melanoma cells

Dietary methionine restriction is associated with a reduction in tumor growth in preclinical studies and an increase in lifespan in animal models. The mechanism by which methionine restriction inhibits tumor growth while sparing normal cells is incompletely understood. We do know that normal cells can utilize methionine or homocysteine interchangeably (methionine independence) while most cancer cells are strictly dependent on methionine availability. Here, we compared a typical methionine dependent and a rare methionine independent melanoma cell line. We show that replacing methionine, a methyl donor, with its precursor homocysteine generally induced hypomethylation in gene promoters. This decrease was similar in methionine dependent and methionine independent cells. There was only a low level of pathway enrichment, suggesting that the hypomethylation is generalized rather than gene specific. Whole proteome and transcriptome were also analyzed. This analysis revealed that contrarily to the effect on methylation, the replacement of methionine with homocysteine had a much greater effect on the transcriptome and proteome of methionine dependent cells than methionine independent cells. Interestingly, methionine adenosyltransferase 2A (MAT2A), responsible for the synthesis of s-adenosylmethionine from methionine, was equally strongly upregulated in both cell lines. This suggests that the absence of methionine is equally detected but triggers different outcomes in methionine dependent versus independent cells. Our analysis reveals the importance of cell cycle control, DNA damage repair, translation, nutrient sensing, oxidative stress and immune functions in the cellular response to methionine stress in melanoma.

molecular biology↗

In vivo Safety and Immunoactivity of Oncolytic Jurona Virus in Hepatocellular Carcinoma: A Comprehensive Proteogenomic Analysis

Oncolytic viruses can effectively unwrap a multimodal anti-tumor activity, encompassing a selective tumor cell killing and promoting a systemic anti-tumor immunity, making them a formidable foe against cancer. Among these, several members of the Rhabdoviridae family are particularly attractive as oncolytic agents due to their natural tumor selectivity and non-pathogenicity in humans. In this study, we demonstrated that intratumorally (IT) administration of Jurona virus (JURV), a novel oncolytic Rhabdovirus, induces dynamic tumor regression in human HCC xenograft and syngeneic models. Our data shows that IT injections of JURV trigger the recruitment and activation of cytotoxic T (CTLs) and decrease the tumor-associated macrophages (TAM) infiltration leading to tumor growth delay in both local and distant murine HCC tumors in a syngeneic model. Moreover, when administered concomitantly, JURV and anti-PD-1 therapy profoundly modulate the tumor microenvironment (TME) via enhanced infiltration of CTLs, suggesting that immune checkpoint blockade therapy could potentiate the immunomodulatory effect of JURV and potentially provide durable anti-tumor immunity. Our analysis of the molecular and cellular mechanism of JURV-medicated anti-cancer activity unveiled that JURV and anti-PD-1 antibodies activate different effectors of the immune system but have complementary anti-tumor activities. Furthermore, our results indicate that the abscopal effect induced by JURV is likely mediated by the mechanism regulating the T helper cell responses. Our work supports the further development of JURV as a novel immunovirotherapy platform for hepatocellular carcinoma.

immunology↗