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March 14, 2026Biomolecules0 citationsOpen Access

Natural Products Targeting PAD4 in NETosis: Structural and Mechanistic Insights into Direct and Indirect Inhibition

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DMDong Oh Moon

Key Points

  • The aim is to explore how natural products can target PAD4 to modulate NETosis, a process involved in inflammation.
  • Overview of natural products that inhibit PAD4 and their mechanisms.
  • Classification of inhibitors into four categories based on their binding actions.
  • Analysis of enzyme kinetics and structural data.
  • Functional validation through biophysical and cellular evidence.
  • Natural products can effectively inhibit PAD4, suggesting a promising alternative to synthetic inhibitors.
  • Indirect modes of modulation represent viable strategies to control NETosis-related pathogenesis.
  • Four categories of natural PAD4 modulators are identified, each with distinct binding mechanisms.

Abstract

Peptidyl arginine deiminase 4 (PAD4) is a Ca2+-dependent enzyme that catalyzes histone citrullination and plays a central role in chromatin decondensation during neutrophil extracellular trap (NET) formation. Dysregulated PAD4-mediated NETosis contributes to the pathogenesis of diverse inflammatory and immune-related diseases, including autoimmune disorders, cancer, and thrombosis. Although several synthetic PAD4 inhibitors have been developed, their therapeutic application has been limited by issues related to selectivity, irreversible covalent reactivity, and suboptimal pharmacokinetic properties, prompting growing interest in natural products as alternative modulators of PAD4 activity and NETosis. This article presents a structural and mechanistic overview of natural products that target PAD4 and regulate NETosis. Based on enzyme kinetics, structural analyses, and functional validation, natural PAD4 modulators are classified into four categories: (i) active-site-directed inhibitors that bind within the U-shaped substrate tunnel, (ii) mixed and active-site-adjacent inhibitors that engage surface pockets flanking the catalytic site, (iii) allosteric and hybrid modulators that bind to regulatory regions distinct from the active site, and (iv) functionally validated PAD4 binders supported by biophysical and cellular evidence. Integration of structural, biochemical, and cellular data highlights that indirect or noncanonical modes of PAD4 regulation represent biologically coherent strategies for controlling pathological NETosis.

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Cite This Study

Dong Oh Moon (2026) studied this question.

synapsesocial.com/papers/69b4fc7fb39f7826a300d653https://doi.org/10.3390/biom16030420
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