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Tivendale, N.

Publications and source records attributed to Tivendale, N..

2 recordsLinked to original sources

Analysis of protein aging reveals rates of subcellular organelle renewal and selective post-translational modification in Arabidopsis

The cellular proteome represents a mixture of older and newer copies of each protein type and turnover of this mixture occurs by cycles of protein synthesis and degradation. There is considerable research on new protein synthesis, the nature of nascent proteins and cellular machinery of protein degradation. However, we have limited insights into older proteins or the protein aging process in plants at scale. In this study we use pulse chase biorthogonal non-canonical amino acid tagging (BONCAT) in Arabidopsis cells coupled to affinity purification to capture and analyse snapshots of the cellular proteome as it ages over a two-week period. Each snapshot was subjected to peptide mass spectrometry-based identification, quantitation and characterisation. We show that there are a broad range of lifespans among the 1688 proteins studied and that their subcellular location correlates strongly with protein longevity. Mitochondria, plastids and the extracellular environment contained the longest lived sub-proteomes while the vesicular pathway to ER, PM and peroxisomes contained the shortest-lived protein sets. Abundant primary metabolic enzymes have considerable longevity, while kinases and ubiquitination machinery do not. Through analysis of the aging profiles, we demonstrate that many proteins selectively accumulate posttranslational modifications (PTMs) as they age and that these are mostly oxidative in nature. We show by analysis of exemplar proteins that distinct PTM profiles and proportional changes with age exist between proteins, likely dictated by differences in subcellular environment and protein function. Implications of these insights for understanding cellular function and for biotechnological modification of the plant proteome are discussed.

plant biology↗

In vivo homopropargylglycine incorporation enables nascent protein tagging, isolation and characterisation from Arabidopsis thaliana

Determining which proteins are actively synthesised at a given point in time and extracting them for analysis is important to understand plant responses. Here we show that the methionine (Met) analogue homopropargylglycine (HPG) enables BONCAT (Bio-Orthogonal Non-Canonical Amino acid Tagging) of proteins being synthesised in Arabidopsis plants or cell cultures, facilitating their click-chemistry enrichment for analysis. The sites of HPG incorporation could be confirmed by peptide mass spectrometry at Met-sites throughout protein AA sequences and correlation with independent studies of protein labelling with 15N verified the data. We provide evidence that HPG-based BONCAT tags nascent plant proteins more efficiently than azidohomoalanine (AHA)-based BONCAT in Arabidopsis and show that AHAs induction of Met metabolism and greater inhibition of cell growth rate than HPG likely limits AHA incorporation at Met sites in Arabidopsis. We show HPG-based BONCAT provides a verifiable method for determining which plant proteins are being synthesised at a given time point and enriches new protein molecules from the bulk protein pool for identification, quantitation and subsequent biochemical analysis. Enriched nascent polypeptides were found to contain significantly fewer common post-translationally modified residues than the same proteins from whole plant extracts, providing evidence for age-related accumulation of PTMs in plants.

plant biology↗