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Bellomio, P.

Publications and source records attributed to Bellomio, P..

3 recordsLinked to original sources

Mass spectrometric analysis of free methionine oxidation levels in E. coli

Oxidation of free methionine plays important roles in cellular redox homeostasis, yet its accurate quantification has been hindered by methodological challenges. Here, we introduce free Methionine Oxidation by Blocking (fMObB), a mass spectrometry-based method that enables accurate measurement of the fractional oxidation of free methionines. Applying fMObB to Escherichia coli, we quantify free methionine oxidation under basal and oxidative stress conditions, and in strains lacking methionine sulfoxide reductases. We find that during oxidative stress, free methionines exhibit higher oxidation levels than protein-bound methionines and that methionine sulfoxide reductases play a central role in maintaining reduced free methionine pools. Together, this work establishes fMObB as a generalizable strategy for probing free methionine redox states in cellular systems.

biochemistry↗

Long-lived mammals contain more phosphorylation sites in the SIRT6 C-terminus that enhance PARP1 interaction and resistance to oxidative stress

Sirtuin 6 (SIRT6) is a protein deacetylase and ribosyltransferase that is a vital hub for maintaining epigenetic homeostasis, regulating the transcriptome, and repairing DNA double stranded breaks (DSBs). Comprehensive proteomic profiling of the SIRT6 post-translational landscape, however, remains elusive. The SIRT6 C-terminal domain contains multiple phosphorylation sites. We find that the presence and use of these sites is strongly correlated with maximum lifespan across mammals. Subsequent biochemical and in silico analyses revealed that SIRT6 hyperphosphorylation enhances its interaction with PARP1. Mutating the T294 phosphorylation site in human fibroblasts led to decreased survival after oxidative stress in the phospho-null T294A and improved oxidative stress resistance in the phospho-mimetic T294E. Together, these results suggest SIRT6 C-terminal phosphorylation increases stress resistance through interaction with PARP1, and that this effect has been enhanced by evolution in long-lived species.

molecular biology↗

Formylation facilitates the reduction of oxidized initiator methionines

Within a cell, protein-bound methionines can be oxidized by reactive oxygen species (ROS) or monooxygenases, and subsequently reduced by methionine sulfoxide reductases (Msrs). Methionine oxidation can result in structural damage or be the basis of functional regulation of enzymes. In addition to participating in redox reactions, methionines play an important role as the initiator residue of translated proteins where they are commonly modified at their -amine group by formylation or acetylation. Here, we investigated how formylation and acetylation of initiator methionines impact their propensity for oxidation and reduction. We show that in vitro, N-terminal methionine residues are particularly prone to chemical oxidation, and that their modification by formylation or acetylation greatly enhances their subsequent enzymatic reduction by MsrA and MsrB. Concordantly, in vivo ablation of methionyl-tRNA formyltransferase (MTF) in E. coli increases the prevalence of oxidized methionines within synthesized proteins. We show that oxidation of formylated initiator methionines is detrimental in part because it obstructs their ensuing deformylation by peptide deformylase (PDF) and hydrolysis by methionyl aminopeptidase (MAP). Thus, by facilitating their reduction, formylation mitigates the misprocessing of oxidized initiator methionines. Classification: Biological Sciences; Biochemistry

biochemistry↗