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Bhaskaran, K.

Publications and source records attributed to Bhaskaran, K..

2 recordsLinked to original sources

Sorafenib, a clinically approved kinase inhibitor attenuates Streptococcus pneumoniae pathogenesis in vivo by targeting serine/threonine kinase StkP

Streptococcus pneumoniae is a respiratory commensal bacterium responsible for over one million annual fatalities globally, particularly among children under five years of age. The rapid emergence of macrolide-resistant strains led the WHO in 2024 to designate S. pneumoniae as a priority pathogen, underscoring the need for alternative strategies such as anti-virulence therapy. Here, we repurposed the FDA-approved cancer drug, sorafenib identified by in silico screening of compounds targeting the bacterial Serine/Threonine kinase protein StkP, an essential regulator of cell division and peptidoglycan synthesis conserved across many bacterial pathogens. Sorafenib interacts with the StkP-kinase domain and exhibited broad-spectrum activity against diverse pneumococcal serotypes including multi-drug-resistant clinical isolates. Ectopic expression of StkP in both wild-type and isogenic mutant strains conferred partial resistance to sorafenib, confirming on-target activity. Scanning electron microscopy revealed aberrant cell-wall morphology, and differential viability staining demonstrated increased membrane permeability. Consistently, sorafenib-treated bacteria showed significantly higher complement C3 deposition and consequent killing in human serum. In human lung epithelial cells, sorafenib reduced bacterial adherence and invasion without detectable host cytotoxicity. Serial passaging at sub-microbicidal concentrations indicated a low propensity for resistance development in vitro. In vivo, sorafenib administration reduced mortality and lung bacterial load in a mouse model of pneumonia. Taken together, our data identify StkP as target of sorafenib in S. pneumoniae and justify its continued preclinical development for therapeutic intervention.

microbiology↗

How mucilage helps seeds from being washed away? A mechanical interpretation of myxodiaspory using rheology

Cellulosic, hemicellulosic and pectinaceous mucilages produced by certain angiosperms as adaptation in myxodiaspory are investigated in the past for seed dispersal. The present understanding of zoochory and telechory are based on mucilage amount, state of hydration and to a limited extent, role of mucilage microstructure studied using adhesion and friction. Pectinaceous mucilages have less adhesion and supports dispersal by zoochory. However, in the case of cellulosic mucilages, the role played by the cellulosic fibrils in seed dispersal is not clear, especially, since they have a negative correlation with endozoochory. Using fresh cellulosic seed mucilages from, sweet basil (Ocimum basilicum) and chia (Salvia hispanica) we investigate the role of microstructure of the mucilage in two key behaviours: anchoring and adhesion properties of the seeds through rheology. We report a special large deformation mechanism triggered through strain stiffening operational in these cellulosic mucilages. In many biopolymers semi-flexible polymer chains and other aligning elements contribute to the strain stiffening. However, the strain stiffening and strong wet adhesion observed in these mucilages have a significant role from the cellulosic components. This behaviour is more pronounced in basil seeds and presents a plausible structure-property mechanism for anti-telechory favoured by plant species found in arid habitats.

physiology↗