Flavonoids from <i>Elsholtzia ciliata</i> restore redox electron flow and metabolic signaling via PTP1B inhibition in muscle and liver cells.
Flavonoids from Elsholtzia ciliata inhibited PTP1B with IC50 values below 5.4 µM, showing potential for restoring metabolic balance in vitro, but their clinical relevance remains unproven.
Where it sits
this study against the rest of the nad+ (nicotinamide adenine dinucleotide) corpusSummary and findings
The study evaluated the efficacy of flavonoids from Elsholtzia ciliata as PTP1B inhibitors in reversing hormonal resistance and redox imbalances in muscle and liver cells. Four flavonoids were tested, with EC2 showing the strongest activity in normalizing redox imbalances. Notably, all compounds inhibited PTP1B with IC50 values less than 5.4 µM.
Abstract
PTP1B is a key negative regulator of insulin and leptin signalling and a promising therapeutic target for metabolic dysfunction, yet no clinically approved inhibitor exists due to selectivity and bioavailability challenges. To identify novel natural PTP1B inhibitors from <i>Elsholtzia ciliata</i> and evaluate their efficacy in reversing hormonal resistance and redox imbalances in skeletal muscle and hepatic models. Four flavonoids (EC2-EC5) were assessed via PTP1B inhibition assays, molecular docking, glucose uptake, qRT-PCR, and NAD(H)/NADP(H) quantification in palmitate-treated C2C12 myotubes and Hepa1c1c7 hepatocytes. All compounds potently inhibited PTP1B (IC<sub>50</sub> < 5.4 µM). EC2 showed the strongest activity and normalised redox imbalances, while EC5 exhibited the highest binding affinity and restored multi-hormone responsiveness, potentially through PTP1B inhibition combined with AMPK pathway engagement. EC2 and EC5 represent promising natural PTP1B inhibitors partially restoring metabolic homeostasis and multi-hormone responsiveness <i>in vitro</i>, highlighting their potential for insulin resistance and metabolic syndrome.
Background
This paper addresses the role of flavonoids in metabolic signaling and redox balance, particularly focusing on PTP1B inhibition in muscle and liver cells. Prior research has indicated that flavonoids can influence metabolic pathways, but the specific mechanisms and effects on redox electron flow were not fully elucidated. Understanding these interactions is crucial for exploring potential metabolic benefits of dietary flavonoids.
Methods
Not reported in abstract.
Results
Not reported in abstract.
Interpretation
Not reported in abstract.
Key findings
- Not reported in abstract.
Limitations
- Not reported in abstract.