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May 7, 2026Plants0 citationsOpen Access

Artemisia indica Willd. Extract Regulate NLRP3 Inflammasome and ENaC Trafficking in Angiotensin II-Stimulated Renal Tubular Cells

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CTChiao-Yun TsengHLHui-Hsuan LinYLYu-Hsuan Liang

Key Result

Artemisia indica Willd. extract and isochlorogenic acid C protected renal tubular epithelial cells against Ang II-induced injury by reducing oxidative stress, inflammation, and sodium transport.

Key Points

  • This research aims to investigate the protective effects of Artemisia indica extract and its major component, isochlorogenic acid C, against Ang II-induced renal injury in cells.
  • Phytochemical analysis identified isochlorogenic acid C as a key compound in Artemisia indica aqueous extract.
  • Reactive oxygen species production, mitochondrial dysfunction, and proinflammatory cytokine release were measured in Ang II-stimulated NRK52E cells.
  • Mechanistic analyses assessed the inhibition of NF-κB activation and NLRP3 inflammasome signaling.
  • Both AAE and ICAC significantly reduced reactive oxygen species and mitochondrial dysfunction.
  • AAE inhibited NF-κB activation and suppressed NLRP3 inflammasome signaling (p<0.01).
  • Restoration of sodium homeostasis was observed with AAE and ICAC, promoting ENaC ubiquitination.

Structured PICO

Do Artemisia indica Willd. extract and ICAC reduce oxidative stress, inflammation, and dysregulated sodium transport in Angiotensin II-stimulated renal tubular cells?

P
Population
Angiotensin II-stimulated NRK52E cells (renal tubular epithelial cells)
I
Intervention
Artemisia indica Willd. aqueous extract (AAE) and isochlorogenic acid C (ICAC)
C
Comparator
Untreated Angiotensin II-stimulated cells
O
Outcome
Reactive oxygen species (ROS) production, mitochondrial dysfunction, and proinflammatory cytokine releasesurrogate

Artemisia indica Willd. extract and its constituent ICAC protect renal tubular epithelial cells against Ang II-induced injury by reducing oxidative stress, inflammation, and dysregulated sodium transport in vitro.

Abstract

Artemisia indica Willd. is widely used in traditional medicine and dietary practices. Phytochemical analysis of Artemisia indica Willd. aqueous extract (AAE) by HPLC–ESI–MS/MS identified isochlorogenic acid C (ICAC) as a major constituent. Angiotensin II (Ang II) disrupts renal tubular epithelial cell homeostasis and contributes to renal injury. In this study, we evaluated the protective effects of AAE and ICAC in Ang II-stimulated NRK52E cells. Both AAE and ICAC significantly reduced reactive oxygen species (ROS) production, mitochondrial dysfunction, and proinflammatory cytokine release. Mechanistic analyses showed that AAE inhibited Ang II type 1 receptor (AT1R)-mediated NF-κB activation and suppressed NLRP3 inflammasome signaling, thereby alleviating inflammatory responses and pyroptosis. In addition, AAE and ICAC restored sodium homeostasis by reactivating neural precursor cell expressed developmentally downregulated gene 4-like (Nedd4-2), promoting epithelial sodium channel (ENaC) ubiquitination and reducing its apical membrane accumulation. Molecular docking suggested that ICAC interacts with the extracellular domain of α-ENaC, supporting its regulatory role. Overall, AAE and ICAC protect renal tubular epithelial cells against Ang II-induced injury by reducing oxidative stress, inflammation, and dysregulated sodium transport, highlighting their potential as plant-derived therapeutic agents for hypertension-associated renal dysfunction.

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Cite This Study

Tseng et al. (2026) studied Angiotensin II-induced renal injury. Artemisia indica Willd. aqueous extract (AAE) and isochlorogenic acid C (ICAC) was evaluated on ROS production, mitochondrial dysfunction, and proinflammatory cytokine release. Artemisia indica Willd. extract and isochlorogenic acid C protected renal tubular epithelial cells against Ang II-induced injury by reducing oxidative stress, inflammation, and sodium transport.

synapsesocial.com/papers/69fc2ca48b49bacb8b348150https://doi.org/10.3390/plants15091405
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