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April 19, 2026Cell Biochemistry and Function0 citations

Aporocactus flagelliformis Aqueous Extract Preserves Mitochondrial Integrity Under Glucose‐Induced Oxidative Stress in 3T3‐L1 Adipocytes

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EPEun Hye ParkSKSung‐Jo Kim

Key Points

  • This research aims to explore how Aporocactus flagelliformis aqueous extract protects mitochondria from oxidative damage caused by high glucose.
  • Conducted GC-MS profiling to analyze phytochemical composition of AFAE.
  • Performed molecular docking to assess binding affinity with aldose reductase (AKR1B1).
  • Exposed 3T3-L1 adipocytes to varying concentrations of AFAE under high glucose conditions.
  • Measured intracellular and mitochondrial reactive oxygen species, as well as mitochondrial membrane potential.
  • AFAE significantly reduced both intracellular and mitochondrial reactive oxygen species.
  • Restored mitochondrial membrane potential (ΔΨₘ) in adipocytes exposed to glucose.
  • Maintained organelle mass, indicating protective effects on mitochondrial integrity.

Abstract

Hyperglycemia-induced oxidative stress disrupts mitochondrial homeostasis in adipocytes. This study investigated the biochemical mechanisms by which Aporocactus flagelliformis aqueous extract (AFAE) preserves mitochondrial integrity under glucose overload, moving beyond its role as a simple antioxidant. GC-MS profiling identified an oxygen-rich phytochemical matrix, predominantly comprising malic acid (11.41%), citric acid (10.92%), and myo-inositol (8.74%). Molecular docking against aldose reductase (AKR1B1), a key enzyme in the polyol pathway, revealed a top-ranked binding affinity of -8.234 kcal/mol, forming hydrogen bonds with catalytic residues (TYR48, HIS110). Through methodologically rigorous, independent biological replicates (n ≥ 3) in 3T3-L1 adipocytes exposed to 50 mM glucose, AFAE (0.008-0.8 µg/mL) significantly reduced intracellular and mitochondrial reactive oxygen species, restored mitochondrial membrane potential (ΔΨₘ), and preserved organelle mass. These concurrent stabilizations indicate that AFAE mitigates upstream metabolic triggers potentially alleviating the "NADPH steal" phenomenon associated with excessive AKR1B1 flux rather than merely scavenging downstream ROS. Ultimately, this study provides a coherent preclinical foundation linking the phytochemical composition of AFAE to the modulation of the polyol-pathway-mitochondrial axis, underscoring its potential as a biochemical modulator of cellular redox homeostasis.

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Cite This Study

Park et al. (2026) studied this question.

synapsesocial.com/papers/69e4739a010ef96374d8f60chttps://doi.org/10.1002/cbf.70217
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