Sodium Hyaluronate (Hyaluronic Acid Sodium) CAS 9067-32-7

Sodium Hyaluronate is the sodium salt of hyaluronic acid, a naturally occurring glycosaminoglycan supplied as a white to off-white powder. Its unique polyanionic structure grants exceptional water-binding capacity (up to 1,000 times its weight) and tunable viscoelasticity, making it the gold standard for skincare formulations, ophthalmic surgery, and intra-articular injections. Each shipment includes COA, TDS, and SDS.

  • CAS No: 9067-32-7
  • Synonyms: Hyaluronic acid sodium salt, Sodium hyaluronan, HA
  • EC Number: N/A (Polymer)
  • Molecular Formula: (C14H20NNaO11)n
  • Molecular Weight: 10 kDa to 3,000 kDa (Customizable LMW, MMW, HMW)
  • Appearance: White to off-white hygroscopic powder or granules
  • Purity: ≥ 99.0% (Cosmetic/Food/Pharma Grade)
  • Packaging: 1 kg (2.2 lb) aluminum foil bag; 5 kg (11 lb) fiber drum; 25 kg (55 lb) fiber drum with PE liner. Custom packaging available upon request.
  • Main Applications: Skincare hydration, dermal fillers, ophthalmic viscoelastics, joint health supplements
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Introduction to Sodium Hyaluronate

Sodium Hyaluronate is a high-molecular-weight polyanionic polysaccharide composed of repeating disaccharide units of D-glucuronic acid and N-acetyl-D-glucosamine. Produced primarily via streptococcal fermentation, it forms highly viscous, non-Newtonian aqueous solutions that provide superior lubrication, tissue scaffolding, and moisture retention. Cosmetic formulators and medical device manufacturers rely on it to engineer everything from surface-hydrating serums to surgical viscoelastics.

The primary processing advantage is its precise molecular weight tunability. High Molecular Weight (HMW, >1,000 kDa) forms breathable, moisture-locking films on the skin, while Low Molecular Weight (LMW, <50 kDa) penetrates the stratum corneum for deep dermal repair. The critical storage risk is severe hygroscopicity: once exposed to humid air, the powder rapidly clumps and degrades, losing its rheological properties. Store drums in a climate-controlled warehouse below 25 °C (77 °F) and reseal the PE liner immediately after scooping.

Key Features of Sodium Hyaluronate

  • Exceptional water retention. The dense network of carboxyl and hydroxyl groups binds up to 1,000 times its weight in water, creating a continuous hydration reservoir in topical and injectable formulations.
  • Tunable viscoelasticity. HMW grades exhibit high zero-shear viscosity and pseudoplasticity, providing excellent shock absorption for joint injections and space maintenance in eye surgery.
  • Transdermal penetration (LMW). Oligo-hyaluronic acid (<10 kDa) bypasses the skin barrier to stimulate endogenous collagen synthesis and accelerate wound healing.
  • High biocompatibility. As an endogenous human tissue component, it is non-immunogenic, non-toxic, and fully biodegradable via hyaluronidase enzymes.

Sodium Hyaluronate Chemical & Physical Properties

Property Value
Molecular Formula (C14H20NNaO11)n
Molecular Weight 10 kDa – 3,000 kDa (Customizable via fermentation and degradation)
Thermal Behaviour Decomposes above 200 °C (392 °F). Avoid prolonged heating of aqueous solutions above 60 °C (140 °F) to prevent chain scission.
Solubility in Water Highly soluble (forms clear, viscous gels); insoluble in ethanol, acetone, and organic solvents.
pH (0.1% aqueous solution) 5.0 – 7.5
Transparency (0.1% solution) ≥ 98.0% at 600 nm
Glucuronic Acid Content ≥ 44.0%
Heavy Metals (as Pb) ≤ 10 ppm (Cosmetic); ≤ 2 ppm (Pharma/Injectable)
Protein Content ≤ 0.1% (Minimizes allergic reactions)

Applications of Sodium Hyaluronate

Skincare and cosmetics: Blended at 0.05–0.50% in serums, creams, and hydrogels. HMW grades form a breathable viscoelastic film on the epidermis to prevent transepidermal water loss (TEWL), while LMW grades penetrate to hydrate the dermis and reduce fine lines.

Medical and ophthalmic devices: Used as a 1.0–2.0% viscoelastic solution in cataract surgery to protect corneal endothelium and maintain the anterior chamber. Formulated as intra-articular injections (10–20 mg/mL) to lubricate osteoarthritic joints and absorb mechanical shock.

Food and nutraceuticals: Dosed at 100–200 mg per serving in oral supplements and functional beverages. Clinical data supports its systemic absorption to improve skin moisture and alleviate joint discomfort from within.

Storage & Safety Precautions for Sodium Hyaluronate

  • Storage: Keep tightly sealed in a cool, dry warehouse below 25 °C (77 °F). The powder is extremely hygroscopic; an opened drum left in humid conditions will absorb moisture, clump severely, and suffer microbial contamination. Stack pallets away from exterior walls and use desiccants.
  • Safety: Classified as non-hazardous. Wear standard dust masks and safety goggles when handling dry powder, as fine dust can cause mild respiratory and eye irritation. Wash skin with water after contact.
  • Transport: Sodium Hyaluronate is Non-DG under IATA/IMDG/ADR. Not a marine pollutant. Standard 25 kg (55 lb) drums ship in standard dry containers.
  • QC note: Verify intrinsic viscosity and molecular weight distribution via Gel Permeation Chromatography (GPC/SEC) upon receipt. A drop in solution transparency or uncharacteristic odor indicates microbial degradation or improper drying—reject such lots.

Sodium Hyaluronate FAQ

Q: How do I choose between High and Low Molecular Weight (HMW vs. LMW)?

A: Use HMW (>1,000 kDa) for surface film-forming, lubrication, and thickening (e.g., eye drops, joint injections, topical barrier creams). Use LMW (<50 kDa) or Oligo-HA for deep skin penetration, cellular signaling, and anti-aging serums.

Q: My aqueous solution lost viscosity after a few days. What happened?

A: HA solutions are highly susceptible to microbial contamination and shear/thermal degradation. Always add a broad-spectrum preservative (e.g., phenoxyethanol) to aqueous formulations, avoid high-shear mixing, and do not heat above 60 °C (140 °F).

Q: Is your Sodium Hyaluronate vegan and non-animal derived?

A: Yes. Our product is produced via modern bacterial fermentation (Streptococcus equi) using plant-derived glucose, completely eliminating the risk of animal-source pathogens (e.g., avian flu, BSE) associated with traditional rooster comb extraction.

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