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Singla, M.

Publications and source records attributed to Singla, M..

5 recordsLinked to original sources

C-4-Modified Isotetrones Prevent Biofilm Growth and Persister Cell Resuscitation in Mycobacterium smegmatis

Hyperphosphorylated guanosine nucleotide (p)ppGpp, synthesized by Rel proteins, regulates the stringent response pathway responsible for biofilm growth and persister cell formation in the stationary phase of mycobacteria. The discovery of vitamin C as a potent inhibitor of Rel protein activities raises the prospect of such a tetrone lactone to prevent biofilm growth and persister cell formation. The closely related isotetrone lactone derivatives are identified in the present study as potent inhibitors of the above processes in a mycobacterium. Isotetrone lactone derivatives are synthesized from appropriate -ketocarboxylic acids, derived from the a-amino acids. Aldol condensation with formaldehyde, followed by the lactone formation, completes synthesis of isotetrone derivatives, possessing varied substituents at C-4 carbon, in good yields. A series of biochemical evaluations of biofilm growth and persister cell formation in M. smegmatis is conducted. Among the derivatives, isotetrone possessing phenyl substituent at C-4 carbon completely inhibit the biofilm formation at 400 g mL-1 concentration, 84 h of post-exposure, followed by a moderate inhibition by the isotetrone possessing p-hydroxyphenyl substituent. Whereas, the latter isotetrone inhibits the growth of cells at 400 g mL-1 f.c. when monitored for 2 weeks, under PBS starvation condition. Isotetrones also potentiate the inhibition of antibiotic tolerant regrowth of cells by ciprofloxacin antibiotic (0.75 g mL-1) and thus act as bio-enhancers. The combination is shown to significantly arrest the emergence of ciprofloxacin-resistant genetic mutants. The observations suggest that isotetrones in combination with ciprofloxacin are therapeutically superior when administered together. Systematic molecular dynamics studies show that isotetrone derivative binds to Rel protein more efficiently than vitamin C and the binding is aided by hydrogen bonding, van der Waals and electrostatic interactions at a binding site possessing serine, threonine, lysine and arginine residues. The present study establishes that the identified isotetrone derivatives (i) act as inhibitors of M. smegmatis biofilm growth and (ii) arrest the re-emergence of recalcitrant persister cells when administered together with ciprofloxacin antibiotic. Results of this study establish that isotetrones as new chemical entities that interfere with stringent response pathways in a mycobacterium under stress and permit overcoming the multidrug-resistant persister cell emergence in the bacterium.

microbiology↗

Sub-operon promoter arrangement of disA facilitates c-di-AMP homeostasis and selective stress responses in M. smegmatis

Bacterial second messenger signaling often plays an important role in cellular physiology. In this study, we have attempted to understand how c-di-AMP synthesis and degradation are transcriptionally regulated in M. smegmatis. We have discovered that, although c-di-AMP synthesis gene disA exists in a multi-gene operon; a sub-operon promoter arrangement plays a key role under various stress conditions, keeping its dual function property intact. Further, we learned that c-di-AMP plays a role in the autoregulation of the disA promoter to limit intracellular c-di-AMP concentration. We also identified an alternate start codon within the disA gene which can lead to the synthesis of truncated DisA protein at times using an independent stress-inducible promoter. All in all, this study was helpful to understand how c-di-AMP synthesis is regulated under normal and stress conditions linked to its physiological relevance in M. smegmatis.

microbiology↗

Omics of an enigmatic marine amoeba uncovers unprecedented giant viruses gene trafficking and provides insights into its complex life cycle

Amoebozoa include lineages of diverse ecology, behavior and morphology. They are assumed to encompass members with the largest genome sizes of all living things, yet genomic studies in the group are limited. Trichosphaerium, a polymorphic, multinucleate, marine amoeba with a complicated life cycle has puzzled experts in the field for over a century. In an effort to explore the genomic diversity, and investigate extraordinary behavior observed among the Amoebozoa, we used integrated omics approaches to study this enigmatic marine amoeba. Omics data, including single-cell transcriptomics and cytological data, demonstrate that Trichosphaerium sp. possesses the complete meiosis toolkit genes. These genes are expressed in life stages of the amoeba including medium and large cells. The life cycle of Trichosphaerium sp. involves asexual processes via binary fission and multiple fragmentation of giant cells, and sexual-like processes involving genes implicated in sexual reproduction and polyploidization. These findings are in stark contrast to a life cycle previously reported for this amoeba. Despite the extreme morphological plasticity observed in Trichosphaerium, our genomic data showed populations maintain a species-level intragenomic variation. A draft genome of Trichosphaerium indicates elevated lateral gene transfer (LGT) from bacteria and giant viruses. Gene trafficking in Trichosphaerium is the highest within Amoebozoa, and among the highest in microbial eukaryotes. Significance statementAmoebozoa include various genome complexities and life cycles, however, the genomes of the vast diversity of amoebozoans remains unexplored. In this study an integrated omics approach is used to investigate the genome and life cycle of Trichophaerium, an enigmatic polymorphic marine amoeba. We uncovered elevated gene trafficking from giant viruses and presence of the complete meiosis gene toolkit. Despite the observed large morphological plasticity, the population of Trichophaerium maintains intragenomic variation of a species level.

genomics↗

Elucidating the role of c-di-AMP in Mycobacterium smegmatis: phenotypic characterization and functional analysis

Cyclic-di-AMP (c-di-AMP) is a newly discovered secondary messenger molecule that plays a critical role in monitoring several important cellular processes, especially in several Gram-positive bacteria signal transduction pathways. In this study, we seek to unravel the physiological significance of the molecule c-di-AMP in Mycobacterium smegmatis under different conditions, using strains with altered c-di-AMP levels: c-di-AMP null mutant ({Delta}disA) and a c-di-AMP over-expression mutant ({Delta}pde). Our thorough analysis of the mutants revealed that the intracellular concentration of c-di-AMP could determine many basic phenotypes such as colony architecture, cell shape, cell size, membrane permeability etc. Additionally, it was shown to play a significant role in multiple stress adaptation pathways in the case of different DNA and membrane stresses. Our study also revealed how the biofilm phenotype of M. smegmatis cells are dependent on intracellular c-di-AMP concentration. Next, we checked how c-di-AMP contributes to antibiotic tolerance characteristics of M. smegmatis, which was followed by a detailed transcriptome profile analysis to reveal key genes and pathways regulated by c-di-AMP in mycobacteria.

microbiology↗

Immunophenotyping and transcriptional profiling of human plasmablasts in dengue.

Previous studies have shown that plasmablasts expand massively in dengue patients as compared to many other situations such as influenza infection or vaccination. However, a detailed understanding of the phenotypes and transcriptional features of these cells is lacking. Moreover, despite India having nearly a third of global dengue disease burden, there is virtually no information on plasmablasts responses in dengue patients from India. Here, we provide a detailed characterization of plasmablast responses from dengue confirmed febrile children in India. Immunophenotyping and RNA seq analysis showed that in addition to secreting dengue specific antibodies, these massively expanding cells expressed several adhesion molecules, chemokines and chemokine receptors that are involved in endothelial interactions, homing to skin or mucosal tissues including intestine. Surprisingly, we found that these cells also upregulated expression of several cytokine genes that are involved in angiogenesis, leukocyte extravasation and vascular permeability. These transcriptional features were qualitatively similar to plasmablasts from influenza vaccinees. Interestingly, the expansion of the plasmablasts in dengue patients was significantly lower in patients with primary dengue infection compared to those with secondary dengue. Moreover, within the primary dengue patients, their expansion was significantly lower in patients with mild dengue infection (DI) compared to patients with dengue with warning signs (DW) or severe dengue (SD). These results significantly improve our understanding of human plasmablast responses in dengue. Importance Dengue is a globally spreading with over 100 million clinical cases annually with symptoms ranging from mild self-limiting febrile illness to more severe and sometimes life-threatening dengue hemorrhagic fever or shock, especially among children. India contributes nearly a third of global dengue disease burden. The pathophysiology of dengue is complex and remains poorly understood despite many advances indicating a key role for antibody dependent enhancement of infection. While serum antibodies have been extensively studied, the characteristics of the cellular factories responsible for antibody production, i.e., plasmablasts, are only beginning to emerge. This study provides a comprehensive understanding of the magnitude, phenotype, functional and transcriptional profiles of human plasmablasts from dengue patients in India.

immunology↗