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Komath, S. S.

Publications and source records attributed to Komath, S. S..

4 recordsLinked to original sources

Purification and characterization of recombinant Rtt109, a fungus-specific histone acetyltransferase, from Candida albicans

Epigenetic regulation of chromatin dynamics via histone acetylation is one of several mechanisms by which eukaryotes regulate gene expression, DNA replication and repair, and maintain genome stability. This function is performed by histone acetyltransferases (HATs). Rtt109 is one such cytoplasmically localized HAT required for H3K56 acetylation found exclusively in fungi. Using recombinantly expressed Candida albicans Rtt109 and its chaperones, Vps75 and Asf1, we show that it can acetylate a 20-residue N-terminal H3 peptide in a coupled HAT assay only in the presence of Vps75, but not in the presence of Asf1 in vitro. This appears to be due to the fact that Rtt109-Vps75 is a high affinity stable complex, as estimated by biolayer interferometry (BLI) and gel filtration studies. The HAT activity of the Rtt109-Vps75 complex necessarily requires a flexible 118-160 residue loop of Rtt109 but not the C-terminal domain of Vps75. These results are comparable with what has been observed for the Saccharomyces cerevisiae Rtt109 homolog. In silico screening of 1,350,000 molecules from Life Chemicals Databases identified some likely inhibitors of C. albicans Rtt109 and six of them tested for binding to Rtt109 using BLI. The best ligand, F2368-0266, was used to study its effect on steady state enzyme kinetics, and found to be a competitive inhibitor of the peptide substrate but not of acetyl-CoA. Given the importance of Rtt109 in regulating virulence attributes such as hyphal morphogenesis and GPI biosynthesis in Candida albicans, and its effect on fungal pathogenesis, these results have significant clinical implications.

biochemistry↗

Characterizing the endopeptidase activity of Candida albicans Gpi8, a crucial subunit of the GPI transamidase

GPI-anchored proteins are crucial cell surface proteins with diverse, organism-specific functions, in eukaryotes. They are produced when the GPI transamidase (GPIT), a five-subunit membrane-bound enzyme complex, attaches a pre-formed GPI anchor to the C-terminal end of nascent proteins on the lumenal face of the endoplasmic reticulum. This process requires the removal of a C-terminal signal sequence (SS) on the substrate protein by the action of an endopeptidase subunit of the GPIT, Gpi8/ PIG-K. Using an AMC-tagged peptide in a cell free (post-mitochondrial fraction) assay, this manuscript studies the steady state kinetics of enzymatic cleavage of the substrate by GPIT of the human pathogenic fungus, C. albicans. We show that Mn+2 enhances activity by improving substrate binding but plays no direct role in substrate cleavage per se. Molecular dynamics simulations suggest that the divalent cation binds at a site away from the active site but provides compactness and stability to Gpi8. It also enables a conformation in which a flexible loop (219-244 residues) in the vicinity of the catalytic pocket is able to interact with and position the scissile bond for cleavage by Cys202. Steady state kinetics also indicate that peptides of lengths 7-mer to 9-mer are better bound than 4-mer or 15-mer peptide substrates. A bulky residue at the site of cleavage reduces the catalytic activity of the GPIT. This is the first detailed steady state kinetics study on the endopeptidase activity of a GPIT from any organism.

biochemistry↗

Arv1 interacts with and regulates the first step of GPI biosynthesis in Candida albicans

The ubiquitous ARV1 gene shows significant functional conservation across eukaryotes. In humans, it is implicated in early onset epileptic encephalopathy. Evidence suggests that the phenotypes manifested in affected patients are probably due to the deficiency in expression of cell surface GPI anchored proteins. S. cerevisiae Arv1 is proposed to be the elusive GPI flippase that delivers the GPI intermediate from the cytoplasmic face to the luminal side of the ER for further elaboration by the first mannosyltransferase of the pathway. Human and fungal ARV1 complement S. cerevisiae ARV1. Overexpressing some of the GPI-N-acetylglucosamine transferase (GPI-GnT) subunits rescues the null strain of S. cerevisiae ARV1. In mammals and in T. brucei Arv1 co-immunoprecipitates with one or more subunits of the GPI-GnT. Based on these reports we hypothesized a cross-talk for ARV1 with the GPI biosynthetic pathway in the human pathogenic fungus, C. albicans. Using super resolution radial fluctuation (SRRF) analysis for co-localization, co-immunoprecipitation assays, and acceptor-photobleaching Forster resonance energy transfer (FRET) studies, we show that C. albicans Arv1 physically interacts with the GPI-GnT. It also transcriptionally regulates the expression of the GPI-GnT genes to control the GPI biosynthetic pathway via its very first step. Overexpression of one of the GPI-GnT subunits, CaGpi19, in C. albicans ARV1 null strain rescues its cold-sensitive growth, azole sensitivity, cell wall phenotype and GPI-GnT activity. Thus, our results suggest extensive interactions between Arv1 and GPI biosynthesis in C. albicans.

microbiology↗

The ER-resident Ras Inhibitor 1 (Eri1) of Candida albicans inhibits hyphal morphogenesis via the Ras-independent cAMP-PKA pathway

Ras signaling and glycosylphosphatidylinositol (GPI) biosynthesis are mutually inhibitory in S. cerevisiae. The inhibition is mediated via an interaction of yeast Ras2 with the Eri1 subunit of its GPI-N-acetylglucosaminyl transferase (GPI-GnT), the enzyme catalyzing the very first GPI biosynthetic step. In contrast, Ras signaling and GPI biosynthesis in C. albicans are mutually activated and together control the virulence traits of the human fungal pathogen. What might be the role of Eri1 in this pathogen? The present manuscript addresses this question while simultaneously characterizing the cellular role of CaEri1. It is either non-essential or required at very low levels for cell viability in C. albicans. Severe depletion of CaEri1 results in reduced GPI biosynthesis and cell wall defects. It also produces hyperfilamentation phenotypes in Spider medium as well as in bicarbonate medium containing 5% CO2, suggesting that both the Ras-dependent and Ras-independent cAMP-PKA pathways for hyphal morphogenesis are activated in these cells. Pull-down and acceptor-photobleaching FRET experiments suggest that CaEri1 does not directly interact with CaRas1, but does so through CaGpi2, another GPI-GnT subunit. CaGpi2 is also downstream of CaEri1 in cross-talk with CaRas1 and control of hyphal growth in Spider medium. However, CaEri1 is downstream of all GPI-GnT subunits in inhibiting Ras-independent filamentation. CaERI1 also participates in the inter-subunit transcriptional cross-talk within the GPI-GnT, a feature unique to C. albicans. Virulence studies using G. mellonella larvae show that a heterozygous strain of CaERI1 is better cleared by the host and is attenuated in virulence.

microbiology↗