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Niranjan, R.

Publications and source records attributed to Niranjan, R..

2 recordsLinked to original sources

Eosinophils restrict diesel exhaust particles induced cell proliferation of lung epithelial A549 cells, vial interleukin-13 mediated mechanisms: implications for tissue remodelling and fibrosis

Diesel exhaust particulates (DEPs) affect lung physiology and cause serious damage to the lungs. A number of studies have demonstrated that eosinophils play a very important role in the development of lung tissue remodelling and fibrosis. However, the exact mechanism of its pathogenesis is not known. We for the first time demonstrate that, Interleukin-13 plays a very important role in the development of tissue remodelling and fibrosis. We demonstrate that, Diesel exhaust particle significantly induce eosinophils cell proliferation and interleukin-13 release in invitro culture conditions. Supernatant collected from DEP induced eosinophils cells significantly restrict cell proliferation of epithelial cells due to exposure of diesel exhast particles. Furthermore, purified interleukin-13 decreases the proliferation of A549 cells. Notably, Etoricoxib (selective COX-2 inhibitor) did not inhibit DEP-triggered release of interleukin-13, suggesting another cell signalling pathway. In, vivo exposer of DEP to the mice lung, resulted in the high level of eosinophils degranulation as depicted by the EPX-1 immunostaining and altered level of mRNA expressions of inflammatory genes. We also found that, a-SMA, fibroblast specific protein (FSP-1) has been changed in response to DEP in the mice lungs along with the mediators of inflammation. Altogether, we elucidated the mechanistic role of eosinophils in the DEP triggered proliferation of lungs cells thus providing an inside in the pathophysiology of tissue remodelling and fibrosis of lungs.

cell biology

Proliferation of lung epithelial cells is regulated by the mechanisms of autophagy upon exposure of soots

Soots are known to cause many diseases in humans but their underlying mechanisms of toxicity are still not known. Here, we report that, soots induce cell proliferation of lung epithelial cells via modulating autophagic pathways. Fullerene soot and diesel exhaust particles (DEP) induced cell proliferation of lung epithelial, A549 cells, via distinct autophagic mechanisms and did not cause cell death. Exposure of fullerene soot protected cell death of A549 cells, caused by hydrogen peroxide and inhibited LPS-induced autophagy. Fullerene soot co-localize with the autophagic proteins and inhibited starvation-induced autophagy (downregulated ATG-5, beclin-1, p62 and LC3 expressions) independent of its antioxidant properties. Similarly, it decreased expression profile of autophagic genes and upregulated proliferation responsive gene, Ki-67, in mice. We observed that, expressions of fullerene soot responsive genes (Beclin-1, ATG-5 and p62) were reverted by Akt Inhibitor X, indicating an important role of Akt pathway. On the other hand, DEP up-regulated expressions of autophagy genes. Akt Inhibitor X and Etoricoxib, did not attenuate DEP-induced cell proliferation and autophagic response. However, autophagic inhibiter 3-MA and chloroquine has significantly inhibited DEP-induced cell roliferation. In conclusion, distinct autophagic mechanisms are operational in cell proliferation of lung epithelial cells in response to soots and may have implication in diseases. The proliferation inducing potential of fullerene soot may be utilized as a regenerative agent in autophagy-associated disorders.

cell biology