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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.

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