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Biology subjects

Bhat, K. M.

Publications and source records attributed to Bhat, K. M..

2 recordsLinked to original sources

Obg-like ATPase 1 Genetic Deletion Leads to Dilated Cardiomyopathy in Mice and Structural Changes in Drosophila Heart

Cardiomyopathy, disease of the heart muscle, is a significant contributor to heart failure. The pathogenesis of cardiomyopathy is multifactorial and involves genetic, environmental, and lifestyle factors. Identifying and characterizing novel genes that contribute to cardiac pathophysiology are crucial for understanding cardiomyopathy and effective therapies. In this study, we investigated the role of a novel gene, Obg-like ATPase 1 (Ola1), in cardiac pathophysiology using a cardiac-specific knockout mouse model as well as a Drosophila model. Our previous work demonstrated that OLA1 modulates the hypertrophic response of cardiomyocytes through the GSK-beta/beta-catenin signaling pathway. Furthermore, recent studies have suggested that OLA1 plays a critical role in organismal growth and development. For example, Ola1 null mice exhibit increased heart size and growth retardation. It is not known, however, if loss of function for Ola1 leads to dilated cardiomyopathy. We generated cardiac-specific Ola1 knockout mice (OLA1-cKO) to evaluate the role of OLA1 in cardiac pathophysiology. We found that Ola1-cKO in mice leads to dilated cardiomyopathy (DCM) and left ventricular (LV) dysfunction. These mice developed severe LV dilatation, thinning of the LV wall, reduced LV function, and, in some cases, ventricular wall rupture and death. In Drosophila, RNAi-mediated knock-down specifically in developing heart cells led to the change in the structure of pericardial cells from round to elongated, and abnormal heart function. This also caused significant growth reduction and pupal lethality. Thus, our findings suggest that OLA1 is critical for cardiac homeostasis and that its deficiency leads to dilated cardiomyopathy and dysfunction. Furthermore, our study highlights the potential of the Ola1 gene as a therapeutic target for dilated cardiomyopathy and heart failure.

physiology↗

Functional roles of neural aPKCs in mouse brain development and survival

Conserved protein complexes establish and maintain cell polarity. In turn, cell polarity is indispensable for fundamental developmental processes such as asymmetric division of stem cells and establishment of subcellular membrane polarization during cell differentiation. There are three well characterized polarity complexes. Atypical Protein Kinase C (aPKC) is a conserved constituent of the PAR complex that phosphorylates not only substrates within this complex, but also in the other polarity complexes. Outside of the polarity complex, aPKC regulates a myriad of cellular processes such as migration, metabolism, and survival. In mammals, two paralogs, Prkci and Prkcz, form the aPKC subfamily. Here, we characterized the expression of the Prkci and Prkcz paralogs, including a variant transcript of Prkcz, in the mouse brain and specific cells of the neural lineage. We generated a series of mice with individual and collective ablation of the two aPKC paralogs in neural stem cells, new-born neurons, astrocytes and NG2+ cells, as well as a mouse expressing kinase-inactive PRKCI in neural progenitors. We examine the effects of loss of aPKC paralogs or its kinase activity on gross brain development and organismal viability. Our results identify a critical window in neural progenitor differentiation wherein aPKC function is indispensable for neurodevelopment. Beyond this period, the ablation of even both aPKCs is characterized by a conspicuous absence of anticipated drastic effects. The genetic models developed might prove useful for further interrogating aPKC function in neurodevelopment and neuronal function or to reveal the role of polarity complex function in neurons, astrocytes and oligodendrocytes during stress, injuries or diseases.

developmental biology↗