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Sardar, M.

Publications and source records attributed to Sardar, M..

3 recordsLinked to original sources

Experimental and In Silico interaction studies of Alpha Amylase-Silver nanoparticle: a nano-bio-conjugate

In the current work, biosynthesis of silver nanoparticle (Ag NPs) and interaction study between alpha amylase and Ag NPs/nanocluster has been performed via wet-lab as well as in silico approach. We have synthesized Ag NPs using alpha amylase enzyme which reduces the silver nitrate precursor forming the stable Ag NPs. UV-Visible spectroscopy and fluorescence spectroscopies were performed for optical characterization of Ag NPs. UV-Vis spectra showed the wide absorption band centered around 475 nm due to surface plasmon resonance. We have also observed gradual decrease in fluorescence intensity with the increase in incubation time. Also, shift in {lambda}max of the emission spectra was recorded which clearly suggested the formation of nano-bio-conjugate. Circular dichroism spectra show the initial decrease in the ellipticity, when we added the silver nitrate, but after incubating for different time, there are no major changes in secondary structure of protein. In computational study we have modelled ground state configuration of (Ag)24 nanocluster using in silico approach. Further docking of the modelled optimized nanocluster with alpha amylase was performed and found that Ag-nanocluster showing non-covalent interaction with alpha amylase and forming stable docking complex.

biophysics↗

Dauer quiescence as well as continuity of the life cycle after dauer-exit in Caenorhabditis elegans are dependent on the endoribonuclease activity of XRN-2

Caenorhabditis elegans embarks on a quiescent dauer state upon exposure to unfavourable conditions and can sustain for a very long period without food, but it returns to continuous life cycle upon arrival of suitable conditions. Thus, dauer state plays a critical role in its adaptive fitness and survival. ATP-independent endoribonuclease activity of XRN-2 has been implicated in dauer microRNA metabolism, perturbation of which causes their collapse within a very short span of time. Here, we present a detailed comparative analyses of dauer transcriptomes from a conditional mutant strain for the endoribonuclease activity of XRN-2, maintained under control and experimental conditions. We observed that even a limited disruption of microRNA homeostasis in experimental dauers results in deregulation of a large number of mRNA targets. Our bioinformatic analyses, supported by morphological, physiological, and behavioral evidence further demonstrate critical changes in metabolism leading to a state unsupportive of dauer maintenance, alongside potential defects in multiple neuronal activities, which might have caused an overall disruption of dauer plasticity. We explore a possible role of this endoribonuclease activity towards the maintenance of chromatin architecture and transposon expression that in turn might affect the transcriptional program critically required for the maintenance of non-aging, long-lived dauers. Finally, we also demonstrate that perturbation of the endoribonuclease activity during the dauer state exerts drastic adverse effects on the continuity of life cycle after dauer-exit. They not only fail to recapitulate the wild type events of germline development and embryogenesis, but also present traits of very old worms and formation of tumor-like structures in the proximal gonad.

molecular biology↗

Endoribonuclease activity of XRN-2 is critical for RNA metabolism and survival of Caenorhabditis elegans

microRNAs (miRNAs) are known to regulate a vast majority of the eukaryotic genes by post-transcriptional means, and multiple nucleases play critical roles in the biogenesis and turnover of these regulators. A number of studies have indicated that turnover is important for determining the abundance of miRNAs, and thus, in turn govern their functionality. Recent research in Caenorhabditis elegans has revealed an ATP-independent endoribonuclease activity of the miRNase-XRN-2. Here, we report the characterization of this new enzymatic activity of the fundamentally important XRN-2, and show that it is critical for miRNA turnover and survival of quiescent dauer worms. The dual enzymatic activity of XRN-2 capacitates the mechanism of miRNA turnover to be dynamic, which might confer adaptive advantage to the organism. In continuously growing worms, this new enzymatic activity does not act on miRNAs, but it is important for the generation of mature ribosomal RNAs, which in turn is critical for translation, and thus indispensable for the survival of worms.

molecular biology↗