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Kumar, V. B. S.

Publications and source records attributed to Kumar, V. B. S..

4 recordsLinked to original sources

MicroRNA 21 induces carcinogenesis in hepatic cells by modulating mitochondrial metabolism

Mitochondria plays crucial role in cells survivability and normal functioning. But in the case of cancer, the mitochondrial machinery (ETC) is altered and glycolytic pathway is activated as an alternate source of energy. The main reason behind the reprogramming of mitochondrial machinery could be mutations in mitochondrial genes or suppression of genes involved in normal functioning of the mitochondria. MicroRNAs could be a key player in modulating the mitochondrial metabolism, as they have targets on various important mitochondrial genes involved in the Electron Transport Chain of the mitochondria. Any alteration in the expression pattern of the mitochondrial genes would directly contribute to the modulation of normal functioning of the mitochondrial machinery. Micro RNA 21 is an oncomiR, located at q arm of the 17th chromosome. MiR 21 has been reported to be involved in many types of cancer. MiR 21 is reported to have targets on many important genes, crucial for cell survivability and proliferation, most of which falls in the category of tumor suppressor genes. With our bioinformatics analysis, we found that miR 21 has targets on important mitochondrial genes involved in the ETC. So, we tried to elucidate the role of miR 21 in modulation of the mitochondrial machinery and role of this alteration in the mitochondrial mechanism in carcinogenesis. Our results revealed that miR 21 have targets on the Cytochrome C Oxidase 1 (Cox1), which is directly involved in the Complex 4 of the electron transport chain. Next we checked the phenotypic effects of this down regulation of Cox1 by measuring the oxygen consumption by the mitochondria and found that O2 consumption goes significantly down in miR 21 over expressing cells. Along with this, we also checked if exosomes from miR 21 overexpressing cancer cells could induce the carcinogenesis in the normal hepatic cells and found that miR 21 accelerates the rate of cellular migration and enhances the colony formation. The results together suggest that miR 21 posses carcinogenic property, possibly by modulating mitochondrial machinery.

cancer biology↗

MicroRNA 106b: Role in the reprograming of mitochondrial machinery and carcinogenesis in hepatic cells

Cancer is a disease of unregulated cell growth. The process of initiation and progression of cancer is called carcinogenesis and the factors possessing ability to induce carcinogenesis are called carcinogens. Along with the coding sequence, the non-coding sequence also play very crucial role in the process of carcinogenesis. MicroRNAs are small non-coding RNAs having targets on both the classes of genes important in cancer i.e., oncogenes and tumour suppressor genes, thus act as key play in carcinogenesis. Dysfunctional mitochondrial metabolism has been widely reported in cancer and this malfunctioning could be brought in by suppression of the expression pattern of important mitochondrial genes by microRNAs. Our in-silico analysis revealed that miR 106b possess targets on several important mitochondrial genes involved in various complexes of electron transport chain. Further, we checked the role of miR 106b in reprogramming of the mitochondrial mechanism and carcinogenesis. The results suggested that miR 106b contributes to carcinogenesis in hepatic cells by modulating the mitochondrial metabolism.

cancer biology↗

ELUCIDATION OF THE ROLE OF miRNA 4263 IN DYSREGULATED MITOCHONDRIAL ENERGETICS AND CARCINOGENESIS

Dysfunctional mitochondria have been reported to be associated with several pathological conditions and in cancer, dysregulated mitochondrial metabolism is considered as an important hallmark of the disease. Cancer cells alter their mitochondrial machinery and activate glycolytic pathway as an alternate source of continuous energy, required for their indefinite growth. This modulation of the mitochondria could be due to the dysrupted expression of important mitochondrial genes involved in the normal functioning of the mitochondria. MicroRNAs are known to regulate the expression pattern of a variety of genes. With our in-silico analysis, we found that miR 4263 has targets on important mitochondrial genes, involved in mitochondrial energetics. Next, we checked the role of miR 4263 in modulating the mitochondrial metabolism and impact of this alteration on carcinogenesis. The results revealed that miR 4263 contributes to carcinogenesis in hepatic cells by altering the mitochondrial energetics.

cancer biology↗

In-silico analysis of important mitochondrial microRNAs and their differential expression in mitochondria

Mitochondria, often called as the power house of cell, serves important role in cellular physiology and survivability. It plays crucial role in the normal functioning of the cell. Dysfunctional mitochondria have been found to be associated with various pathological conditions including cancer. The modulation of mitochondrial machinery could be due to the suppression of the expression pattern of important mitochondrial genes and microRNAs could be considered as the key player in reprograming of the mitochondrial metabolism. Apart from the microRNAs coded by mitochondrial genome, nuclear coded microRNAs gets localized to the mitochondria and they influence the mitochondrial machinery by targeting the important mitochondrial genes. This group of microRNAs are called mitochondrial miRNAs or MitomiRs. In this study we selected 10 important candidate mitochondrial microRNAs and checked their abundance in the cancerous and non cancerous hepatic cell line (HepG2 and WRL68), followed by their differential expression in the mitochondria of the respective cell line. The results shown an inverse relation in the expression pattern of the candidate microRNAs with mitochondrial target genes, suggesting their direct targeting, as predicted by our in-silico data.

cancer biology↗