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Chandramohan, A.

Publications and source records attributed to Chandramohan, A..

2 recordsLinked to original sources

De-risking drug discovery of intracellular targeting peptides: screening strategies to eliminate false-positive hits

Discovery of false-positive target binding, due to assay interference or aggregation, presents a significant problem for drug discovery programs. These issues may often be unrealized and could lead researchers astray if not subject to independent verification of reproducibility and/or on-target mechanism of action. Although well-documented for small molecules, this issue has not been widely explored for peptide modality. As a case study, we demonstrate that two purported KRas inhibitors, stapled peptide SAH-SOS1A and macrocyclic peptide cyclorasin 9A5, exemplify false-positive molecules - both in terms of their sub-micromolar KRas binding affinities and their on-target cellular activities. We observed that the apparent binding of fluorescein-labeled SAH-SOS1A given by a fluorescence polarization assay is sensitive to detergent. False-positive readouts can arise from peptide adsorption to the surface of microplates. Hence, we used surface plasmon resonance and isothermal titration calorimetry to unambiguously show that both SAH-SOS1A and cyclorasin 9A5 are non-binders for KRas. Thermal shift assay and hydrogen-deuterium exchange mass spectrometry further demonstrate that both peptides destabilize KRas and induce unfolding of the protein. Furthermore, both peptides caused significant release of intracellular lactate dehydrogenase, suggesting that membrane rupture rather than on-target activity is accountable for their reported cytotoxicity. Finally, both peptides exhibited off-target activities by inhibiting the proliferation of U-2 OS and A549 cells, despite their independency of the KRas signaling pathway. Our findings demonstrate the critical need to employ orthogonal binding assays and cellular counter-screens to de-risk false-positive molecules. More rigorous workflows should lead to improved data and help obviate inadvertent scientific conclusions.\n\nSignificance statementFalse positive molecule hits occur frequently in high-throughput screens and can contaminate the scientific literature. This has become an increasingly serious issue in small molecule drug discovery and chemical probe development and it is not surprising that peptides may be similarly prone to assay interference. Using KRas as a target and two known macrocyclic peptide inhibitors as a case study, we clearly show that reporter-free biophysical assays and cellular counter-screens offer the solution to detect and de-risk the potential of false-positive compounds. We further discuss the advantages, limitations and overall strategic importance of such methods.

biochemistry

Novel Mechanism for Surface Layer Shedding and Regenerating in Bacteria Exposed to Metal-Contaminated Conditions

Surface layers (S-layers) are self-assembling, ordered structures composed of repeating protein subunits found as components of the cell walls throughout the Bacteria and the Archaea. S-layers act as an interface between prokaryotic cells and their surrounding environment, and provide protection for microorganisms against diverse environmental stresses including heavy metal stress. We have previously characterized the process by which S-layers serve as a nucleation site for metal mineralization in the presence of high concentration of metals. Here, we test the hypothesis originally proposed in cyanobacteria that a \"shedding\" mechanism exists in prokaryotes for replacing S-layers that have become mineral-encrusted. We used a metallotolerant gram-positive bacterium bearing an S-layer, Lysinibacillus sp. TchIII 20n38, as a model organism. We characterize for the first time a mechanism for resistance to metals through S-layer shedding and regeneration. S-layers nucleate the formation of Fe-mineral on the cell surface, leading to the encrustation of the S-layer. Using a combination of scanning electron microscopy (SEM) and nanoSIMS, we show that mineral-encrusted S-layers are shed by the bacterial cells, and the emerging cells regenerate new S-layers as part of their cell wall structure. This novel mechanism for the survival of prokaryotes in metal-contaminated environments may also provide elements necessary for the development of renewable systems for metal bioremediation.

microbiology