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Disodium disuccinate astaxanthin (Cardax): antioxidant and antiinflammatory cardioprotection
Samuel F Lockwood1, Garrett J Gross
1Hawaii Biotech, Inc., 99-193 Aiea Heights Drive, Suite 200, Aiea, HI 96701, USA. slockwood@hibiotech.com
Insights
Disodium disuccinate astaxanthin (DDA) demonstrates significant cardioprotective effects against experimental infarction in multiple animal models. Its antioxidant and anti-inflammatory mechanisms, coupled with favorable pharmacokinetics, suggest potential clinical utility for cardiovascular indications.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Biochemistry
Background:
- Disodium disuccinate astaxanthin (DDA) has shown cardioprotective effects in various animal models of experimental infarction.
- Its efficacy has been demonstrated through both parenteral and oral administration routes.
Purpose of the Study:
- To investigate the cardioprotective mechanisms and potential clinical utility of disodium disuccinate astaxanthin (DDA).
- To evaluate the pharmacokinetic profile and safety of DDA in mammalian models.
Main Methods:
- DDA was administered via parenteral and oral routes in rat, rabbit, and canine models of experimental infarction.
- Cardioprotective effects were assessed by measuring myocardial salvage.
- Mechanisms of action were explored through antioxidant activity assays, evaluation of serum complement modulation, and assessment of C-reactive protein (CRP) and membrane attack complex (MAC) levels.
- In vitro studies investigated the binding of DDA to human serum albumin (HSA).
Main Results:
- DDA demonstrated significant myocardial salvage in canine models, reaching 100% with a 4-day subchronic dosing regimen.
- A single intravenous dose of DDA provided substantial cardioprotection when administered before coronary occlusion.
- The primary cardioprotective mechanism involves direct scavenging of superoxide anions, with additional anti-inflammatory contributions.
- DDA exhibits favorable ADME properties, allowing rapid entry into cardiac tissue and a significant half-life.
Conclusions:
- Disodium disuccinate astaxanthin (DDA) possesses potent cardioprotective properties mediated by antioxidant and anti-inflammatory actions.
- Its ability to bind to HSA enhances formulation stability.
- Favorable pharmacokinetics and a well-documented safety profile of astaxanthin suggest potential clinical applications for DDA in cardiovascular diseases.
Abstract:
Disodium disuccinate astaxanthin (Cardax), DDA) has cardioprotective effects in the rat, rabbit, and canine models of experimental infarction. It is highly effective by parenteral administration in subchronic and acute dosing regimens. Unpublished data in rats suggest that oral cardioprotection is also readily achievable. DDA-induced myocardial salvage in the canine can reach 100% with a 4-day subchronic dosing regimen. At a single i.v. dose DDA is cardioprotective, when given 2 h before experimental coronary occlusion, but the protection is on the average two-thirds of that achieved with the subchronic regimen in dogs. In conscious animals DDA has no effects on hemodynamic parameters. The primary mechanism of cardioprotection appears to be antioxidant activity involving direct scavenging of superoxide anion, the lynchpin radical in ischemia-reperfusion injury. In addition, modulation of serum complement activity, as well as the reduction in the levels of C-reactive protein (CRP) and the membrane attack complex (MAC) in infarcted tissue suggest a significant antiinflammatory component in the mechanism of cardioprotective action of DDA. Stoichiometric binding of the meso-form of the compound to human serum albumin (HSA) has been demonstrated in vitro. This binding capacity overcomes the supramolecular assembly of the compound in aqueous solution, which by itself improves the stability and shelf life of aqueous formulations. Non-esterified astaxanthin readily enters cardiac tissue after either oral or parenteral administration, providing a reservoir of a cardioprotective agent with a significant half-life due to favorable ADME in mammals. Due to the well-documented safety profile of non-esterified astaxanthin in humans, disodium disuccinate astaxanthin may well find clinical utility in cardiovascular indications in humans following successful completion of preclinical and clinical pharmacology and toxicology studies.
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