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Biology subjects

Delaney, C. E.

Publications and source records attributed to Delaney, C. E..

2 recordsLinked to original sources

Redistribution of codon-optimality effects: measurement strategy alters the division of labor between translation and mRNA decay

Codon optimality promotes efficient translation and, as recent research has shown, also extends mRNA lifetimes. However, how control is distributed between translation and mRNA degradation remains unclear. We show that this relative impact depends strongly on the measurement approach. Using fluorescent protein reporters can underestimate codon-optimality-dependent increases in translation efficiency. Conversely, analyses based on poly(A)-selected RNA overestimate the impact on translation, because stable transcripts undergoing poly(A) shortening are often inefficiently captured, leading to skewed protein-to-mRNA ratios. This technical bias is not offset by the marginal decline in ribosomal association observed as mRNAs age. Estimates based on total RNA measurements redistribute some of the control attributed to translation to mRNA stability, making the contributions comparable for mRNAs with shorter coding sequences. For longer mRNAs, codon optimality increasingly controls elongation speed, with a greater effect on translation efficiency than on degradation. These insights highlight the importance of measurement strategy for accurately quantifying the determinants of mRNA stability and protein synthesis.

biochemistry↗

H3K9 methylation-independent activity for HPL-2/HP1 in heterochromatin foci, gene repression, and organogenesis

In differentiated cells, genome segregation into heterochromatin and euchromatin is mediated by modified histones, which recruit so-called reader proteins. Surprisingly, many histone modifiers remain functional in the absence of catalytic activity, but the underlying mechanism remains unclear. To explore this puzzle, we examined the relationship between C. elegans MET-2/SETDB1, a histone H3 lysine (H3K9me) methyltransferase that also has non-catalytic roles, and the canonical H3K9me reader HPL-2 (HP1). We show that HPL-2 represses transcription and supports organogenesis independently of H3K9me binding, whereas complete loss of met-2 and hpl-2 causes severe transcriptional and developmental defects. MET-2 and HPL-2 rely on different binding partners - the disordered protein LIN-65/ATF7IP and the multi-zinc finger protein LIN-13, respectively - for localization and function. The results suggest that HPL-2 can operate through alternative protein interactions, and that HPL-2 and MET-2 function in parallel, H3K9me-independent pathways, with H3K9me acting as a reinforcing but non-essential contributor to these processes.

molecular biology↗