AI Article Synopsis

  • Understanding protein function requires exploring how various posttranslational modifications (PTMs) work together, but existing methods often struggle to analyze multiple PTMs from a single sample.
  • The single-pot, solid-phase-enhanced sample preparation (SP3) method streamlines the process, making it easier to analyze protein abundance and different PTMs like phosphorylation and acetylation simultaneously.
  • This SP3 workflow shows promise in a study of β-cells treated with cytokines, revealing rapid protein abundance changes and complex interactions among regulatory pathways, which could help clarify how PTMs influence cellular responses over time.

Article Abstract

Studying regulation of protein function at a systems level necessitates an understanding of the interplay among diverse posttranslational modifications (PTMs). A variety of proteomics sample processing workflows are currently used to study specific PTMs but rarely characterize multiple types of PTMs from the same sample inputs. Method incompatibilities and laborious sample preparation steps complicate large-scale physiological investigations and can lead to variations in results. The single-pot, solid-phase-enhanced sample preparation (SP3) method for sample cleanup is compatible with different lysis buffers and amenable to automation, making it attractive for high-throughput multi-PTM profiling. Herein, we describe an integrative SP3 workflow for multiplexed quantification of protein abundance, cysteine thiol oxidation, phosphorylation, and acetylation. The broad applicability of this approach is demonstrated using cell and tissue samples, and its utility for studying interacting regulatory networks is highlighted in a time-course experiment of cytokine-treated β-cells. We observed a swift response in the global regulation of protein abundances consistent with rapid activation of JAK-STAT and NF-κB signaling pathways. Regulators of these pathways as well as proteins involved in their target processes displayed multi-PTM dynamics indicative of complex cellular response stages: acute, adaptation, and chronic (prolonged stress). PARP14, a negative regulator of JAK-STAT, had multiple colocalized PTMs that may be involved in intraprotein regulatory crosstalk. Our workflow provides a high-throughput platform that can profile multi-PTMomes from the same sample set, which is valuable in unraveling the functional roles of PTMs and their co-regulation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11700301PMC
http://dx.doi.org/10.1016/j.mcpro.2024.100881DOI Listing

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