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Biology subjects

Eijan, A. M.

Publications and source records attributed to Eijan, A. M..

2 recordsLinked to original sources

Thiosemicarbazone T2 suppresses WNT/β-catenin signaling and limits progression to invasive disease in a mouse intraductal model of triple-negative breast cancer

T2, an N4-aryl-substituted thiosemicarbazone, has previously been shown to exert cytotoxic and anti-invasive effects in triple-negative breast cancer (TNBC) and to increase expression of the metastasis suppressor N-myc downstream-regulated gene 1 (NDRG1). Given the role of NDRG1 in regulating epithelial-mesenchymal transition (EMT) and WNT/{beta}-catenin signaling, we investigated the contribution of this pathway to the anti-invasive activity of T2. The effects of T2 on WNT/{beta}-catenin signaling and associated microRNAs (miR-182-5p and miR-200c) were evaluated in 4T1 cells. In vivo activity was assessed using a fully immunocompetent intraductal 4T1 mouse model that recapitulates the progression from ductal carcinoma in situ (DCIS) to invasive ductal carcinoma (IDC). Tumor progression, invasion, NDRG1 expression, and WNT/{beta}-catenin pathway components were analyzed. T2 reduced WNT/{beta}-catenin signaling and modulated the expression of miR-182-5p and miR-200c in vitro. In the MIND model, T2 decreased the frequency of invasive lesions and reduced {beta}-catenin, ZEB1, and c-Myc expression while increasing NDRG1 levels. {beta}-catenin localization differed between lesion types, showing predominantly membrane-associated staining in DCIS lesions and a diffuse cytoplasmic distribution in invasive foci. These findings identify WNT/{beta}-catenin signaling and NDRG1-associated pathways as potential mediators of the anti-invasive effects of T2 in TNBC. The reduction in invasive progression observed in the MIND model supports further investigation of this compound in preclinical models of TNBC.

cancer biology↗

SPARC is a new driver of early breast tumor progression via TGF-β -dependent mechanism.

Ductal carcinoma in situ (DCIS) is a pre-invasive lesion that is thought to be a precursor of invasive ductal carcinoma (IDC). The challenge lies in discriminating between DCIS progressors and DCIS non-progressors, often resulting in over- or under-treatment in many cases. Membrane type 1 (MT1)-matrix metalloproteinase (MMP) has been previously identified as an essential gene involved in DCIS progression. Here, RNA-sequencing analysis of MT1-MMPhigh subpopulation derived from invasive breast tumors in the intraductal xenograft model was compared against a dataset of human high-grade DCIS, and Secreted Protein Acidic and Cysteine Rich (SPARC) has emerged as a master candidate involved in early breast tumor progression. We report that SPARC is up-regulated in DCIS as compared to normal breast epithelial tissues, and further increased in IDC relative to synchronous DCIS foci. We found a positive correlation between SPARC and MT1-MMP expression in DCIS lesions. At the mechanistic level, depletion of SPARC reduced MT1-MMP expression, the degradative capacity of the cells and the activation of the TGF-{beta} signalling canonical pathway. Pharmacological inhibition of the TGF-{beta} signalling pathway decreased SPARC and MT1-MMP at the mRNA and protein level, and concomitantly the cell degradative capacity and 3D cell migration. Strikingly, inhibition of the TGF-{beta} signalling pathway limits the invasive transition of breast tumors in a new triple-negative mouse intraductal syngeneic xenograft model. Moreover, high SPARC expression was positively correlated with both, TGF-{beta} and its receptor, TGFBRI, in a basal type of breast cancer collection supporting our findings. This study identifies SPARC as a new driver of early breast tumor progression via a TGF-{beta}-dependent mechanism, suggesting TGF-{beta} signaling pathway as a potential target for patients with high SPARC expression.

cancer biology↗