Jyotsna Mishra
Thomas Jefferson University
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Publication
Featured researches published by Jyotsna Mishra.
Antioxidants & Redox Signaling | 2014
Jin O-Uchi; Bong Sook Jhun; Shangcheng Xu; Stephen Hurst; Anna Raffaello; Xiaoyun Liu; Bing Yi; Huiliang Zhang; Polina Gross; Jyotsna Mishra; Alina Ainbinder; Sarah Kettlewell; Godfrey L. Smith; Robert T. Dirksen; Wang Wang; Rosario Rizzuto; Shey-Shing Sheu
AIMS Mitochondrial Ca2+ homeostasis is crucial for balancing cell survival and death. The recent discovery of the molecular identity of the mitochondrial Ca2+ uniporter pore (MCU) opens new possibilities for applying genetic approaches to study mitochondrial Ca2+ regulation in various cell types, including cardiac myocytes. Basal tyrosine phosphorylation of MCU was reported from mass spectroscopy of human and mouse tissues, but the signaling pathways that regulate mitochondrial Ca2+ entry through posttranslational modifications of MCU are completely unknown. Therefore, we investigated α1-adrenergic-mediated signal transduction of MCU posttranslational modification and function in cardiac cells. RESULTS α1-adrenoceptor (α1-AR) signaling translocated activated proline-rich tyrosine kinase 2 (Pyk2) from the cytosol to mitochondrial matrix and accelerates mitochondrial Ca2+ uptake via Pyk2-dependent MCU phosphorylation and tetrametric MCU channel pore formation. Moreover, we found that α1-AR stimulation increases reactive oxygen species production at mitochondria, mitochondrial permeability transition pore activity, and initiates apoptotic signaling via Pyk2-dependent MCU activation and mitochondrial Ca2+ overload. INNOVATION Our data indicate that inhibition of α1-AR-Pyk2-MCU signaling represents a potential novel therapeutic target to limit or prevent mitochondrial Ca2+ overload, oxidative stress, mitochondrial injury, and myocardial death during pathophysiological conditions, where chronic adrenergic stimulation is present. CONCLUSION The α1-AR-Pyk2-dependent tyrosine phosphorylation of the MCU regulates mitochondrial Ca2+ entry and apoptosis in cardiac cells.
Archive | 2017
Jyotsna Mishra; Bong Sook Jhun; Stephen Hurst; Jin O-Uchi; György Csordás; Shey-Shing Sheu
Mitochondrial Ca2+ uptake is crucial for an array of cellular functions while an imbalance can elicit cell death. In this chapter, we briefly reviewed the various modes of mitochondrial Ca2+ uptake and our current understanding of mitochondrial Ca2+ homeostasis in regards to cell physiology and pathophysiology. Further, this chapter focuses on the molecular identities, intracellular regulators as well as the pharmacology of mitochondrial Ca2+ uniporter complex.
Biochemical and Biophysical Research Communications | 2015
Jin O-Uchi; Jaime Sorenson; Bong Sook Jhun; Jyotsna Mishra; Stephen Hurst; Kaleef Williams; Shey-Shing Sheu; Coeli M. Lopes
Protein kinase C (PKC) plays key roles in the regulation of signal transduction and cellular function in various cell types. At least ten PKC isoforms have been identified and intracellular localization and trafficking of these individual isoforms are important for regulation of enzyme activity and substrate specificity. PKC can be activated downstream of Gq-protein coupled receptor (GqPCR) signaling and translocate to various cellular compartments including plasma membrane (PM). Recent reports suggested that different types of GqPCRs would activate different PKC isoforms (classic, novel and atypical PKCs) with different trafficking patterns. However, the knowledge of isoform-specific activation of PKC by each GqPCR is limited. α1-Adrenoceptor (α1-AR) is one of the GqPCRs highly expressed in the cardiovascular system. In this study, we examined the isoform-specific dynamic translocation of PKC in living HEK293T cells by α1-AR stimulation (α1-ARS). Rat PKCα, βI, βII, δ, ε and ζ fused with GFP at C-term were co-transfected with human α1A-AR into HEK293T cells. The isoform-specific dynamic translocation of PKC in living HEK293T cells by α1-ARS using phenylephrine was measured by confocal microscopy. Before stimulation, GFP-PKCs were localized at cytosolic region. α1-ARS strongly and rapidly translocated a classical PKC (cPKC), PKCα, (<30 s) to PM, with PKCα returning diffusively into the cytosol within 5 min. α1-ARS rapidly translocated other cPKCs, PKCβI and PKCβII, to the PM (<30 s), with sustained membrane localization. One novel PKC (nPKC), PKCε, but not another nPKC, PKCδ, was translocated by α1-AR stimulation to the PM (<30 s) and its membrane localization was also sustained. Finally, α1-AR stimulation did not cause a diacylglycerol-insensitive atypical PKC, PKCζ translocation. Our data suggest that PKCα, β and ε activation may underlie physiological and pathophysiological responses of α1-AR signaling for the phosphorylation of membrane-associated substrates including ion-channel and transporter proteins in the cardiovascular system.
Cardiac Electrophysiology: From Cell to Bedside (Seventh Edition) | 2018
Jin O-Uchi; Bong Sook Jhun; Jyotsna Mishra; Shey-Shing Sheu
Biophysical Journal | 2018
Lyall Glait; Jyotsna Mishra; James S. Heisner; David F. Stowe; Amadou K.S. Camara; Wai-Meng Kwok
Biophysical Journal | 2018
Marina Balycheva; Stephen Hurst; Jyotsna Mishra; György Csordás; Shey-Shing Sheu
Biophysical Journal | 2018
Jyotsna Mishra; Ariea J. Davani; David F. Stowe; Wai-Meng Kwok; Amadou K.S. Camara
Biophysical Journal | 2017
Jin O-Uchi; Deming Fu; Jyotsna Mishra; Bong Sook Jhun; Shey-Shing Sheu
Archive | 2016
Sergio De La Fuente; Caitlin Vail; Elorm J. Agra; Kira M. Holmström; Junhui Sun; Jyotsna Mishra; Toren Kinkel; Elizabeth Murphy; Suresh K. Joseph; Shey-Shing Shen; György Csordás
Archive | 2016
Sergio De La Fuente; Celia Fernandez-Sanz; Caitlin Vail; Elorm J. Agra; Kira M. Holmström; Junhui Sun; Jyotsna Mishra; Toren Finkel; Elizabeth Murphy; Suresh K. Joseph; Shey-Shing Sheu; György Csordás