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Manjunath, L. E.

Publications and source records attributed to Manjunath, L. E..

2 recordsLinked to original sources

A compact, portable degron tool derived from the 3'UTR of MTCH2 for tunable degradation of proteins

Targeted protein degradation relies on short sequence elements, termed degrons, that direct proteins to the cellular degradation machinery. Here, we report a nine-amino-acid degron (FYTVWRAFL) derived from the 3' untranslated region (UTR) of human MTCH2 and demonstrate its utility as a tuneable protein-degradation tool. When appended to the C-terminus of proteins, FYTVWRAFL induces rapid and robust degradation by the ubiquitin-proteasome system. Using pharmacological inhibition and genetic perturbation, we show that degradation mediated by this degron is dependent on the E3 ubiquitin ligase MDM2. Structural modeling revealed that FYTVWRAFL interacts with the hydrophobic cleft of MDM2 in a manner similar to the p53 degron. Three hydrophobic residues form the core interaction interface. By systematic mutagenesis of these residues, we generated a panel of degron variants that confer graded levels of protein stability. We demonstrate the versatility of this system by achieving tunable expression of the endogenous protein Elm1 in Saccharomyces cerevisiae. Collectively, our study establishes a compact, transportable, and tunable degron system as a robust toolkit for quantitative control of protein abundance across eukaryotic systems.

molecular biology↗

IVISc-L: A quick and simple in vivo assay to study the regulation of gene expression

Several methods are available to study the regulation of gene expression at cellular and molecular levels. Adaptation of these methods in vivo is cumbersome and often requires animal sacrifice. Here, we report an assay (IVISc-L, In Vivo Imaging of Subcutaneous Luminescence) to study gene regulation in vivo. This assay involves subcutaneous injection of a plasmid DNA encoding firefly luciferase, whose expression is under the regulatory mechanism to be investigated. We could infer its regulated expression by detecting the subcutaneous luminescence using an in vivo imaging system. Using this assay, we have demonstrated the regulation of gene expression mediated by a promoter, micro-RNAs, stop codon readthrough, and rare codons. This minimally invasive assay does not require animal sacrifice or any tissue extraction. The entire assay can be completed within 24 hours. Therefore, this assay will be useful in investigating the mechanisms of gene expression regulation, and screening molecules that can alter gene expression in vivo.

molecular biology↗