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Grujic, M.

Publications and source records attributed to Grujic, M..

2 recordsLinked to original sources

Phenotypic switch and reduced the growth of melanoma spheroids in the presence of mast cell-conditioned medium: potential impact of nutrient starvation effects

Mast cells are abundant in melanoma tumors, and studies suggest that they can be either detrimental or protective for melanoma growth. However, the underlying mechanisms are not fully understood. Here, we adopted a hanging drop-established spheroid system to investigate how mast cells can influence melanoma growth and phenotype in a 3-D context. In the presence of mast cells or mast cell-conditioned medium, melanoma spheroid growth was profoundly reduced. To address the underlying mechanism, we conducted a transcriptomic analysis, which revealed that mast cell-conditioned medium had extensive effects on the melanoma gene expression patterns. Pathway analyses revealed profound effects on the expression of genes related to amino acid and protein metabolism. The conditioned medium also induced an upregulated expression of cancer-related genes, including adhesion molecules implicated in metastatic spreading. In line with this, after transfer to a Matrigel extracellular matrix milieu, spheroids that had been developed in the presence of mast cell-conditioned medium displayed enhanced elevated growth and adhesive properties. However, when assessing for possible effects of nutrient starvation, i.e., reduced nutrient content in mast cell-conditioned medium, we found that the observed effects on melanoma spheroid growth potentially could be explained by such effects. Hence, it cannot be excluded that the observed phenotypic alterations of melanoma spheroids grown in the presence of mast cells or mast cell-conditioned media are, at least partly, due to nutrient starvation rather than to the action of factors secreted by mast cells. Instead, our findings may provide insight into the effects on gene expression events that occur in melanoma tumors under nutrient stress.

immunology↗

Intracellular accumulation and secretion of hydrophobin-enriched vesicles aid the rapid sporulation of molds

Fungi can rapidly produce large amounts of spores suitable for aerial dispersal. The hydrophobicity of spores is provided by the unique amphiphilic and superior surface-active proteins - hydrophobins (HFBs) - that self-assemble at hydrophobic/hydrophilic interfaces and thus change surface properties. Using the HFB-enriched mold Trichoderma and the HFB-free yeast Pichia pastoris, we revealed a distinctive HFB secretory pathway that includes an intracellular accumulation of HFBs in lipid bodies (LBs) that can internalize in vacuoles. The resulting vacuolar multicisternal structures (VMS) are stabilized by HFB layers that line up on their surfaces. These HFB-enriched VMSs can move to the periplasm for secretion or become fused in large tonoplast-like organelles. The latter contributes to the maintenance of turgor pressure required for the erection of sporogenic structures and rapid HFB secretion by squeezing out periplasmic VMSs through the cell wall. Thus, HFBs are essential accessory proteins for the development of aerial hyphae and colony architecture.

microbiology↗