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Sivaprasad, P. S.

Publications and source records attributed to Sivaprasad, P. S..

2 recordsLinked to original sources

Recombinant Photo-tagging Enables Fluorescent Labelling of Biomolecules and Visualization of Liquid-Liquid Phase Separation

Liquid-liquid phase separation (LLPS) of biomolecules has emerged as a fundamental principle governing biological systems. A key aspect to understand LLPS is the ability to visualize these coacervates, which requires labelling strategies. Fluorescent labelling of biomolecules remains one of the widely adopted techniques involving either small-molecule chemical conjugation or recombinant expression alongside a fluorescent protein. These small-molecule fluorophores are typically employed in excess, which further necessitates additional downstream processing steps, including separation of the conjugated molecules from the unreacted fluorophores. On the other hand, recombinantly appended fluorescent protein affects the functioning of the labelled biomolecule owing to its large size. There is still a need to develop a labelling technique with small molecular weight fluorophores that is also genetically encodable. We previously discovered that the C-terminal peptide fragment (CTPF) released during photo-exposure of a green-to-red photoconvertible fluorescent protein (PhoCl1) displayed red fluorescence. Notably, this chromophore displays broad excitation and emission wavelength profiles, rendering it robust under multiple excitation wavelengths. We leverage this phenomenon to achieve post-expression fluorescent labelling by genetically fusing PhoCl1 to the target peptide or protein to be labelled (TPTL). We successfully demonstrated this approach of conferring fluorescence to silica binding peptide, riboflavin kinase enzyme, TEV protease, Lanthanide Binding Peptide and maltose binding protein, all of which exhibited red fluorescence upon photocleavage. Finally, we demonstrate the applicability of this probe to visualize LLPS of CTPF tagged elastin-like polypeptide in the presence of polymeric crowder. We anticipate that this strategy for inducing red fluorescence in non-fluorescent biomolecules via a photocleavable protein will open new avenues for minimally perturbative fluorescent labelling.

bioengineering↗

Mechanism of substrate binding by the SARS-CoV-2 NiRAN domain and modulation of its activities during replication

The SARS-CoV-2 Nidovirus RdRp-associated nucleotidyltransferase (NiRAN) domain initiates viral genome capping by RNAylating nsp9 with the 5'-pppA-end of the genome followed by GDP-dependent deRNAylation to form the core capped GpppA-genome. Additionally, it cycles nsp9 through NMPylation-deNMPylation to generate GpppN. It is unclear how the distinct substrates, 5'-pppA-RNA and NTP, are bound, and how NiRAN balances RNAylation versus NMPylation. Earlier models proposed a common base-up pose for both the substrates. Here, structure-guided mutagenesis and reconstitution assays show that 5'-pppA indeed binds base-up during RNAylation, revealing that nsp12-Asp711 confers adenine selectivity, whereas, NTP adopts a perpendicular base-out pose during NMPylation. NiRAN intrinsically favors NMPylation over RNAylation, but nsp13 NTPase activity flips this preference. RNAylation weakens when RdRp is RNA-bound or replicating it, suggesting that a trans-acting NiRAN associated with an RNA-free RdRp performs capping. These findings provide insights into the orchestration of NiRAN activities and potential druggable sites for anti-viral therapeutics.

molecular biology↗