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Arindam Bhattacharjee

Researcher at University of Calcutta

Publications -  10
Citations -  266

Arindam Bhattacharjee is an academic researcher from University of Calcutta. The author has contributed to research in topics: Reactive nitrogen species & Pathosystem. The author has an hindex of 6, co-authored 10 publications receiving 237 citations. Previous affiliations of Arindam Bhattacharjee include Cold Spring Harbor Laboratory.

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Novel cellulases from an extremophilic filamentous fungi Penicillium citrinum : production and characterization

TL;DR: The present work reports for the first time, the alkali stable cellulase from alkali tolerant fungus Penicillium citrinum, which may have potential effectiveness as additives to laundry detergents.
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In vivo protein tyrosine nitration in S. cerevisiae: identification of tyrosine-nitrated proteins in mitochondria.

TL;DR: This investigation is the first comprehensive study to identify mitochondrial proteins nitrated in vivo and two target mitochondrial proteins are aconitase and isocitrate dehydrogenase that are involved directly in the citric acid cycle.
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A novel role of catalase in detoxification of peroxynitrite in S. cerevisiae.

TL;DR: This report is first of its kind regarding the novel role of catalase in peroxynitrite detoxification in Deltayhb1 and Deltasfa1 strains of S. cerevisiae.
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Production of nitric oxide in host-virus interaction: a case study with a compatible Begomovirus-Kenaf host-pathosystem.

TL;DR: It is demonstrated for the first time that begomovirus infection in susceptible H. cannabinus plants, results in elevated NO and reactive nitrogen species production during early infection stage not only in infected leaf but also in root and shoot.
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Oxygenase domain of Drosophila melanogaster nitric oxide synthase: unique kinetic parameters enable a more efficient NO release.

TL;DR: Computer simulations reveal that dNOSoxy has unique settings that should enable it to be a more efficient and active NO synthase than the mammalian NOS enzymes, which may allow it to function more broadly in cell signaling and immune functions in the fruit fly.