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Biology subjects

Iyer, R. S.

Publications and source records attributed to Iyer, R. S..

2 recordsLinked to original sources

Targeted Degradation of CDK9 Potently Disrupts the MYC Transcriptional Network

Cyclin-dependent kinase 9 (CDK9) coordinates signaling events that regulate RNA polymerase II (Pol II) pause-release states. It is an important co-factor for transcription factors, such as MYC, that drive aberrant cell proliferation when their expression is deregulated. CDK9 modulation offers an approach for attenuating dysregulation in such transcriptional programs. As a result, numerous drug development campaigns to inhibit CDK9 kinase activity have been pursued. More recently, targeted degradation has emerged as an attractive approach. However, comprehensive evaluation of degradation versus inhibition is still critically needed to assess the biological contexts in which degradation might offer superior therapeutic benefits. We validated that CDK9 inhibition triggers a compensatory mechanism that dampens its effect on MYC expression and found that this feedback mechanism was absent when the kinase is degraded. Importantly, CDK9 degradation is more effective than its inhibition for disrupting MYC transcriptional regulatory circuitry likely through the abrogation of both enzymatic and scaffolding functions of CDK9. Highlights- KI-CDK9d-32 is a highly potent and selective CDK9 degrader. - KI-CDK9d-32 leads to rapid downregulation of MYC protein and mRNA transcripts levels. - KI-CDK9d-32 represses canonical MYC pathways and leads to a destabilization of nucleolar homeostasis. - Multidrug resistance ABCB1 gene emerged as the strongest resistance marker for the CDK9 PROTAC degrader.

cancer biology↗

Epistasis between synonymous and nonsynonymous mutations in Dictyostelium discoideum ammonium transporter amtA drives functional complementation in Saccharomyces cerevisiae.

Role of Horizontal Gene Transfer (HGT) in evolution transcends across the three domains of life. Ammonium transporters are present in all species and therefore offer an excellent paradigm to study protein evolution following HGT. While investigating HGT through complementation assay, we observed that synonymous and nonsynonymous mutations follow an epistastic relationship. As a proxy for HGT, we attempted to complement a mep1mep2mep3{Delta} strain of S. cerevisiae (triple deletion strain) which cannot grow on ammonium as a sole nitrogen source below a concentration of 3 mM, with amtA of D. discoideum. As the wild type amtA did not complement, we isolated two mutant derivatives of amtA that complemented the triple deletion strain of S. cerevisiae. amtA M1 bears three nonsynonymous and two synonymous substitutions and these substitutions are necessary for its functionality. amtA M2 bears two nonsynonymous and one synonymous substitution, all of which are necessary for functionality. These mutants were then studied at phenotypic, cell biological, and biochemical level. Interestingly, AmtA M1 transports ammonium but does not confer toxicity to methylamine while AmtA M2 transports ammonium as well as confers methylamine toxicity, demonstrating functional diversification. Based on the results presented, we suggest that protein evolution cannot be fathomed by studying nonsynonymous and synonymous substitutions separately. This is because, protein evolution entails an interaction between synonymous and nonsynonymous substitution, which seems to have gone unnoticed thus far. Above observations have significant implications in various facets of biological processes and are discussed in detail. HighlightsO_LIAmmonium transporters (Amts) from bacteria to humans complement in yeast C_LIO_LIAmtA of D. discoideum does not complement yeast defective for ammonium uptake C_LIO_LISynonymous & nonsynonymous mutations are essential for AmtA functionality in yeast C_LIO_LIConformational differences underlie functionality & functional diversification C_LIO_LIProtein evolution entails interaction of synonymous & nonsynonymous mutations C_LI

genetics↗