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Fluorescence-based Monitoring of PAD4 Activity via a Pro-fluorescence Substrate Analog
Published on: November 5, 2014
Cellular consequences, citrullination substrates, and antigenicity resulting from wild-type and targeted PAD4 on cell
Sophie Kong1,2, Trenton M Peters-Clarke1, Corleone S Delaveris1,3
1Department of Pharmaceutical Chemistry, University of California San Francisco, San Francisco, California, 94158, USA.
Abstract:
Protein arginine deiminase-4 (PAD4) catalyzes hydrolysis of arginine to citrulline in proteins that promotes widespread changes in cellular phenotypes through transcriptional regulation that can induce innate immunity and promote cancer. Overexpression and hyperactivity of PAD4 leads to a form of cell death called NETosis that releases PAD4 to the extracellular space. In excess, release of PAD4 is believed to be a major cause of various autoimmune diseases through the generation of anti-citrulline protein antibodies (ACPAs). Little is known about the specific protein substrates that become citrullinated and lead to autoimmunity, but there is growing evidence that PAD4 can be localized to the cell surface in response to inflammation. Here, we further characterize the cellular consequences for exogenous treatment with PAD4 showing that it induces morphological changes that increase cell migration, a hallmark of cancer. We then devised a more simplified and robust proteomics approach to identify PAD4 substrates. We identified some 1000 endogenously citrullinated peptides from 500 proteins, and 3000 citrullinated peptides from 1300 proteins upon exogenous addition of PAD4 both inside and outside of cells. This extracellular set can be further augmented by targeting PAD4 to a cancer target, HER2, using a binding protein conjugate. Finally, we studied how citrullinated cells can induce a robust humoral response in a syngeneic vaccine model to produce ACPAs. We believe these studies further our understanding of cell phenotypic consequences of extracellular PAD4 and new PAD4 substrates both inside and outside of cells that are potential neoepitopes for generation of ACPAs.
Insights
Protein arginine deiminase-4 (PAD4) causes cell changes and migration, potentially driving cancer. New methods identified numerous PAD4 substrates, revealing insights into autoimmune diseases like those generating anti-citrulline protein antibodies (ACPAs).
Area of Science:
- Biochemistry
- Cell Biology
- Immunology
Background:
- Protein arginine deiminase-4 (PAD4) citrullinates proteins, altering cellular functions and potentially inducing autoimmunity.
- PAD4 hyperactivity causes NETosis, releasing the enzyme extracellularly and contributing to autoimmune diseases via anti-citrulline protein antibodies (ACPAs).
- Limited knowledge exists on PAD4 substrates driving autoimmunity, though cell-surface localization during inflammation is observed.
Purpose of the Study:
- To characterize cellular effects of exogenous PAD4, including morphological changes and migration.
- To identify endogenous and exogenous PAD4 protein substrates using a novel proteomics approach.
- To investigate the immunogenicity of citrullinated cells and their role in ACPA generation.
Main Methods:
- Exogenous PAD4 treatment to induce cellular changes and assess migration.
- Proteomics analysis to identify citrullinated peptides and proteins.
- Syngeneic vaccine model to study humoral response and ACPA production.
Main Results:
- Exogenous PAD4 treatment induced morphological changes and increased cell migration.
- Identified ~1000 endogenous and ~3000 exogenous citrullinated peptides from ~500 and ~1300 proteins, respectively.
- Targeting extracellular PAD4 to HER2 enhanced citrullination; citrullinated cells induced ACPA production in vivo.
Conclusions:
- Extracellular PAD4 influences cell phenotype, promoting migration and potentially cancer progression.
- This study identified novel PAD4 substrates inside and outside cells, serving as potential neoepitopes for ACPA generation.
- Findings advance understanding of extracellular PAD4's cellular consequences and its role in autoimmunity.
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