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Chowdhury, G.

Publications and source records attributed to Chowdhury, G..

2 recordsLinked to original sources

Mapping of residues in leishmanial glyceraldehyde-3-phosphate dehydrogenase crucial for binding with 3'-UTR of TNF-alpha mRNA

Recently, we described that glyceraldehyde-3-phosphate dehydrogenase from Leishmania major (LmGAPDH) was present in extracellular vesicles and it inhibited host TNF- expression during infection via post-transcriptional repression. The LmGAPDH binding with the AU-rich elements in 3-untranslated region of TNF- mRNA (TNF- ARE) is sufficient for limiting this cytokine production, but the TNF- ARE binding residues in LmGAPDH are still unexplored. RNA electrophoretic mobility shift assay (REMSA) and catalytic activity measurement revealed that the inhibition by TNF- ARE was competitive with respect to cofactor NAD+ in LmGAPDH. To identify the TNF- ARE binding residues of the LmGAPDH, we exploited a systematic mutational analysis of its NAD+ binding domain. Catalytic activity measurement indicates that both R13 and N336 amino acids in the NAD+ binding site are absolutely required for activity whereas other mutants including I14A, R16A, D39A and T112A showed higher Km (lower affinity) value for NAD+ binding and lower catalytic activity. REMSA studies revealed that the replacement of Arg-13 with Ala/Lys or Asn-336 with Ala resulted in complete loss of binding with the TNF- ARE. I14A, R16A, D39A and T112A residues at or near NAD+ binding site showed lower binding with the TNF- ARE compared to the wild-type protein. The protein induced fluorescence enhancement (PIFE) studies and in vitro protein translation assay further confirmed the REMSA results. Based on our findings, the NAD+ binding residues in LmGAPDH are important for TNF ARE binding.

biochemistry↗

O6-Alkylguanine-DNA Alkyltransferase Maintains Genomic Integrity During Peroxynitrite-Mediated DNA Damage by Forming DNA-Protein Crosslinks

Inflammation is an early immune response against invading pathogens and damaged tissue. Although beneficial, uncontrolled inflammation leads to various diseases and may be fatal. Peroxynitrite (PN) is a major reactive nitrogen species (RNS) generated during inflammation. It produces various DNA lesions including labile 8-nitroguanine which spontaneously converts into abasic sites resulting in DNA strand breakage. Here, we report the discovery of a previously unrecognized function of the human repair protein O6-alkylguanine-DNA alkyltransferase (hAGT or MGMT). We showed that hAGT through its active site nucleophilic Cys145 thiolate can spontaneously react with 8-nitroguanine in DNA to form a stable DNA-protein crosslink (DPC). Interestingly, the process of DPC formation provides protection from PN-mediated genome instability. The Cys145-mutant of hAGT failed to form DPC and provide protection against inflammation-associated, PN-mediated cytotoxicity. Gel shift, dot blot and UV-Vis assays showed formation of a covalent linkage between PN-damaged DNA and hAGT through its active site Cys145. Finally, expression of hAGT was found to be significantly increased by induced macrophages and PN. The data presented here clearly demonstrated hAGT as a dual function protein that along with DNA repair is capable of maintaining genomic integrity and providing protection from the toxicity caused by PN-mediated DNA damage. Although DPCs may seem detrimental, there are multiple systems in place in normal cells for their repair.

pharmacology and toxicology↗