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Biology subjects

Snaar, E. B.

Publications and source records attributed to Snaar, E. B..

3 recordsLinked to original sources

Mechano-signaling of prostate tumor initiating cells facilitates their tropism to stiff metastatic niche

Analysis of clinical datasets indicate that cancer stem-like cells/tumor-initiating cells (CSCs/TICs) derived from prostate cancer (PCa) patients display an elevated expression of genes for cell-matrix interactions, cell adhesion proteins and of the putative mechanotransducer TAZ. Here we combined measurements on the cellular mechano-responses to matrix stiffness, including cell-generated forces, zebrafish and PDX-derived organoid models, to show that mechanotransduction serves as a key determinant for PCa CSC maintenance during metastatic onset. The {beta}1-integrin-ILK-CDC42-N-Wasp dependent cytoskeletal tension and TAZ nucleus-translocation mediate this mechano-signaling axis. As a result, expression of the stemness genes NANOG and OCT4 are induced, leading to metastatic tumor initiation. It is further demonstrated that pharmaceutical perturbation of this mechano-signaling using a novel YAP/TAZ inhibitor K975 constrains PCa metastasis in zebrafish, and development of PDX-derived organoids. Our data highlights the essential role of mechanotransduction in PCa aggressiveness, thereby underlying this pathway as a therapeutic target for future studies.

cancer biology↗

Simultaneous targeting of AMPK and mTOR is a novel therapeutic strategy against prostate cancer

Metastatic colonization by circulating cancer cells is a highly inefficient process. To colonize distant organs, disseminating cancer cells must overcome many obstacles in foreign microenvironments, and only a small fraction of them survives this process. How these disseminating cancer cells cope with stress and initiate metastatic process is not fully understood. In this study, we report that the metastatic onset of prostate cancer cells is associated with the dynamic conversion of metabolism signaling pathways governed by the energy sensors AMPK and mTOR. While in circulation in blood flow, the disseminating cancer cells display decreased mTOR and increased AMPK activities that protect them from stress-induced death. However, after metastatic onset, the mTOR-AMPK activities are reversed, enabling mTOR-dependent tumor growth. Suppression of this dynamic conversion by co-targeting of AMPK and mTOR signaling significantly suppresses prostate cancer cell and tumor organoid growth in vitro and experimental metastasis in vivo, suggesting that this can be a therapeutic approach against metastasizing prostate cancer.

cancer biology↗

Melanin enhances metastatic melanoma colonization by inhibiting ferroptosis

Melanoma associated death is mainly caused by metastatic disease. Increased melanin levels are associated with decreased melanoma patient survival, yet the contribution of melanin to this process is unknown. Here we show that melanin protects circulating melanoma cells from ferroptosis, enhancing their metastatic potential. We observed that melanin levels in patient-derived uveal melanoma cells as well as cutaneous and conjunctival melanoma cell lines correlate with their metastatic potential in zebrafish xenografts. We find strong associations of the melanin biosynthesis gene TYRP1, ferroptosis related enzyme GPX4 and mitochondrial anion channel (VDAC1) with reduced melanoma-specific survival in TCGA data of cutaneous melanoma. Modulation of melanin levels significantly impacts melanoma metastatic potential, increasing or decreasing in concordance with melanin levels. Furthermore, melanin depletion significantly sensitized melanoma cells to ferroptosis leading to a decreased metastatic capacity and enhanced efficacy of ferroptosis induction based anti-cancer therapeutic strategies. Collectively, our results reveal that combined inhibition of melanin biosynthetic enzymes and induction of ferroptosis has potential as a treatment strategy of metastatic melanoma. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=148 SRC="FIGDIR/small/535376v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@1fc21a5org.highwire.dtl.DTLVardef@502b6org.highwire.dtl.DTLVardef@f522beorg.highwire.dtl.DTLVardef@1bbfdfa_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗