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Dive into the research topics where A. Hari Kishore is active.

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Featured researches published by A. Hari Kishore.


Molecular and Cellular Biology | 2005

Human Histone Chaperone Nucleophosmin Enhances Acetylation-Dependent Chromatin Transcription†

Venkatesh Swaminathan; A. Hari Kishore; K. K. Febitha; Tapas K. Kundu

ABSTRACT Histone chaperones are a group of proteins that aid in the dynamic chromatin organization during different cellular processes. Here, we report that the human histone chaperone nucleophosmin interacts with the core histones H3, H2B, and H4 but that this histone interaction is not sufficient to confer the chaperone activity. Significantly, nucleophosmin enhances the acetylation-dependent chromatin transcription and it becomes acetylated both in vitro and in vivo. Acetylation of nucleophosmin and the core histones was found to be essential for the enhancement of chromatin transcription. The acetylated NPM1 not only shows an increased affinity toward acetylated histones but also shows enhanced histone transfer ability. Presumably, nucleophosmin disrupts the nucleosomal structure in an acetylation-dependent manner, resulting in the transcriptional activation. These results establish nucleophosmin (NPM1) as a human histone chaperone that becomes acetylated, resulting in the enhancement of chromatin transcription.


Journal of Biological Chemistry | 2010

Identification of a Novel Inhibitor of Coactivator-associated Arginine Methyltransferase 1 (CARM1)-mediated Methylation of Histone H3 Arg-17

B. Ruthrotha Selvi; Kiran Batta; A. Hari Kishore; Kempegowda Mantelingu; Radhika A. Varier; Karanam Balasubramanyam; Suman Kalyan Pradhan; Dipak Dasgupta; Sokalingam Sriram; Shipra Agrawal; Tapas K. Kundu

Methylation of the arginine residues of histones by methyltransferases has important consequences for chromatin structure and gene regulation; however, the molecular mechanism(s) of methyltransferase regulation is still unclear, as is the biological significance of methylation at particular arginine residues. Here, we report a novel specific inhibitor of coactivator-associated arginine methyltransferase 1 (CARM1; also known as PRMT4) that selectively inhibits methylation at arginine 17 of histone H3 (H3R17). Remarkably, this plant-derived inhibitor, called TBBD (ellagic acid), binds to the substrate (histone) preferentially at the signature motif, “KAPRK,” where the proline residue (Pro-16) plays a critical role for interaction and subsequent enzyme inhibition. In a promoter-specific context, inhibition of H3R17 methylation represses expression of p21, a p53-responsive gene, thus implicating a possible role for H3 Arg-17 methylation in tumor suppressor function. These data establish TBBD as a novel specific inhibitor of arginine methylation and demonstrate substrate sequence-directed inhibition of enzyme activity by a small molecule and its physiological consequence.


Journal of Medicinal Chemistry | 2008

Specific Small-Molecule Activator of Aurora Kinase A Induces Autophosphorylation in a Cell-Free System

A. Hari Kishore; Bm Vedamurthy; K. Mantelingu; Shipra Agrawal; B. A. Ashok Reddy; Siddhartha Roy; K. S. Rangappa; Tapas K. Kundu

Aurora kinases are essential for chromosomal segregation and cell division and thereby important for maintaining the proper genomic integrity. There are three classes of aurora kinases in humans: A, B, and C. Aurora kinase A is frequently overexpressed in various cancers. The link of the overexpression and tumorigenesis is yet to be understood. By employing virtual screening, we have found that anacardic acid, a pentadecane aliphatic chain containing hydroxylcarboxylic acid, from cashew nut shell liquid could be docked in Aurora kinases A and B. Remarkably, we found that anacardic acid could potently activate the Aurora kinase A mediated phosphorylation of histone H3, but at a similar concentration the activity of aurora kinase B remained unaffected in vitro. Mechanistically, anacardic acid induces the structural changes and also the autophosphorylation of the aurora kinase A to enhance the enzyme activity. This data thus indicate anacardic acid as the first small-molecule activator of Aurora kinase, which could be highly useful for probing the function of hyperactive (overexpressed) Aurora kinase A.


Biochemical Journal | 2007

p53 regulates its own activator: transcriptional co-activator PC4, a new p53-responsive gene

A. Hari Kishore; Kiran Batta; Chandrima Das; Shipra Agarwal; Tapas K. Kundu

The tumour suppressor protein p53 regulates the expression of several genes that mediate cell cycle arrest, apoptosis, DNA repair and other cellular responses. Recently, we have shown that human transcriptional co-activator PC4 is a unique activator of p53 function. In the present study, we report that PC4 is a p53-inducible gene. Bioinformatics analysis reveals multiple p53-binding sites in the PC4 promoter. We have found that indeed p53 binds to all the identified sites in vitro and in vivo with varying affinities. p53 acts as an activator of PC4 transcription. Both PC4 mRNA and protein levels increase in response to stimuli that result in p53 induction. Furthermore, PC4 enhances p53 recruitment to the PC4 promoter. Our results thus establish the first report of a positively regulated feedback loop to control p53 function.


Journal of Physical Chemistry B | 2008

Surface-enhanced Raman spectroscopic studies of coactivator-associated arginine methyltransferase 1.

G. V. Pavan Kumar; Ruthrotha B. Selvi; A. Hari Kishore; Tapas K. Kundu; Chandrabhas Narayana

We report, for the first time, the surface-enhanced Raman spectra of an important enzyme, coactivator-associated arginine methyltransferase 1 (CARM1), involved in various biological activities such as tumor suppressor function and stem cell differentiation. We have employed surface-enhanced Raman scattering (SERS) to obtain insight into the structural details of CARM1 by adsorbing it to silver (Ag) nanoparticles. The enzyme retains its activity even after its adsorption onto Ag nanoparticles. We observe strong SERS modes arising from amide vibrations and aromatic ring amino acids. The SERS spectra revealed amide I bands at 1637 cm(-1) and 1666 cm(-1), which arise as a result of the alpha helix of the protein and the polypeptide backbone vibration of a random coil, respectively. In order to confirm the amide vibrations, we have performed SERS on deuterated CARM1, which exhibits a clear red shift in amide band positions. The SERS spectra may provide useful information, which could be harnessed to study the functional interactions of CARM1 with small molecule modulators.


Biochemistry | 2010

NPM3, a member of the nucleophosmin/nucleoplasmin family, enhances activator-dependent transcription.

Shrikanth S. Gadad; Jayasha Shandilya; A. Hari Kishore; Tapas K. Kundu

The chromatin is comprised of repeating subunits that make up the nucleosome which is composed of an octamer of histones: H3, H4, H2A, and H2B. The replication-dependent and -independent nucleosome assembly occurs in an ordered fashion and is aided by cellular proteins such as histone chaperones and chromatin remodelers. Previously, we found that the histone chaperone NPM1 activates transcription from the chromatin template. Here we report that NPM3, a member of the nucleophosmin/nucleoplasmin family, lacks intrinsic histone chaperone activity, inhibits histone assembly activity of NPM1 in vitro, and dramatically enhances transcription in a cellular system.


FEBS Letters | 2014

Phosphorylation of multifunctional nucleolar protein nucleophosmin (NPM1) by aurora kinase B is critical for mitotic progression

Jayasha Shandilya; Parijat Senapati; Karthigeyan Dhanasekaran; Suma S. Bangalore; Manoj Kumar; A. Hari Kishore; Akshay V. Bhat; Gopinath S. Kodaganur; Tapas K. Kundu

The functional association of NPM1 with Aurora kinases is well documented. Surprisingly, although NPM1 is a well characterized phosphoprotein, it is unknown whether it is a substrate of Aurora kinases. We have found that Aurora kinases A and B can phosphorylate NPM1 at a single serine residue, Ser125, in vitro and in vivo. Phosphorylated‐S125‐NPM1 (pS125‐NPM1) localizes to the midbody region during late cytokinesis where it colocalizes with Aurora B. The overexpression of mutant (S125A) NPM1 resulted in the deregulation of centrosome duplication and mitotic defects possibly due to cytokinesis failure. These data suggest that Aurora kinase B‐mediated phosphorylation of NPM1 plays a critical role during mitosis, which could have wider implications in oncogenesis.


Chemistry & Biology | 2007

Specific Inhibition of p300-HAT Alters Global Gene Expression and Represses HIV Replication

Kempegowda Mantelingu; B. A. Ashok Reddy; Venkatesh Swaminathan; A. Hari Kishore; Nagadenahalli B. Siddappa; G. V. Pavan Kumar; G. Nagashankar; Nagashayana Natesh; Siddhartha Roy; Parag P. Sadhale; Udaykumar Ranga; Chandrabhas Narayana; Tapas K. Kundu


Journal of Physical Chemistry B | 2007

Activation of p300 histone acetyltransferase by small molecules altering enzyme structure: probed by surface-enhanced Raman spectroscopy.

K. Mantelingu; A. Hari Kishore; Karanam Balasubramanyam; G. V. Pavan Kumar; Mohammed Altaf; S Nanjunda Swamy; Ruthrotha B. Selvi; Chandrima Das; Chandrabhas Narayana; K. S. Rangappa; Tapas K. Kundu


Archive | 2010

Identification of a Novel Inhibitor of Coactivator-associated Arginine Methyltransferase 1 (CARM1)-mediated Methylation

B. Ruthrotha Selvi; Kiran Batta; A. Hari Kishore; Kempegowda Mantelingu; Radhika A. Varier; Karanam Balasubramanyam; Suman Kalyan Pradhan; Dipak Dasgupta; Sokalingam Sriram; Shipra Agrawal; Tapas K. Kundu

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Tapas K. Kundu

Jawaharlal Nehru Centre for Advanced Scientific Research

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Karanam Balasubramanyam

Jawaharlal Nehru Centre for Advanced Scientific Research

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B. Ruthrotha Selvi

Jawaharlal Nehru Centre for Advanced Scientific Research

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Chandrabhas Narayana

Jawaharlal Nehru Centre for Advanced Scientific Research

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Dipak Dasgupta

Saha Institute of Nuclear Physics

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G. V. Pavan Kumar

Indian Institute of Science Education and Research

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Kempegowda Mantelingu

Jawaharlal Nehru Centre for Advanced Scientific Research

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Radhika A. Varier

Jawaharlal Nehru Centre for Advanced Scientific Research

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