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Biology subjects

Dib, S.

Publications and source records attributed to Dib, S..

2 recordsLinked to original sources

EFA6B regulates a stop signal for collective invasion in breast cancer

Cancer is initiated by somatic mutations in oncogenes or tumor suppressor genes, however additional mutations provide selective advantages to the tumor cells to resist treatment and develop metastases, therefore identification of secondary mutations is of paramount importance. EFA6B (Exchange Factor for ARF6, B) expression is reduced in breast cancer. To study the pro-tumoral impact of the loss of EFA6B we have invalidated its gene in normal human mammary cells. We found that EFA6B knock-out triggers a transcriptional reprogramming of the cell-to-ECM interaction machinery and unleashes CDC42-dependent collective invasion in collagen. In addition, invasive and metastatic tumors isolated from patients have lower expression of EFA6B and display gene ontology signatures identical to those of EFA6B knock-out cells. Thus, we reveal a new EFA6B-regulated molecular mechanism that controls the invasive potential of mammary cells; this finding opens up new avenues for the treatment of invasive breast cancer.

cancer biology

Hypercapnia Suppresses Macrophage Antiviral Activity and Increases Mortality of Influenza A 1 Infection via Akt1

Hypercapnia, elevation of the partial pressure of CO2 in blood and tissues, is a risk factor for mortality in patients with severe acute and chronic lung diseases. We previously showed that hypercapnia inhibits multiple macrophage and neutrophil antimicrobial functions, and that it increases the mortality of bacterial pneumonia in mice. Here, we show that normoxic hypercapnia increases viral replication, lung injury and mortality in mice infected with influenza A virus (IAV). Elevated CO2 increased IAV replication and inhibited antiviral gene and protein expression in macrophages in vivo and in vitro. Hypercapnia potentiated IAV-induced activation of Akt, while specific pharmacologic inhibition or shRNA knockdown of Akt1 in alveolar macrophages blocked hypercapnias effects on IAV growth and the macrophage antiviral response. Our findings suggest that targeting Akt1 or downstream pathways through which elevated CO2 signals could enhance macrophage antiviral host defense and improve clinical outcomes in hypercapnic patients with advanced lung disease.

immunology