CG-MCHCL-98 · Chitosan Global

Chitosan Hydrochloride – (Mushroom)

High-Purity, Water-Soluble Mushroom Chitosan for Advanced Formulations

MushroomVeganShellfish-Free

Mushroom Chitosan Hydrochloride (original process) is a water-soluble chitosan salt supplied with pre-protonated amine groups no separate acid-dissolution step in aqueous formulations. A proven, conventional-route material for manufacturers, research laboratories and product developers.

  • Hydrochloride salt form — dissolves readily, simplifies raw-material preparation
  • Original (conventional) process — proven route with batch-to-batch documentation
  • Suitable for solutions, films, coatings and cationic polymer systems
Synonyms: Mushroom Chitosan Hydrochloride, Fungal Chitosan Hydrochloride, Mushroom Chitosan HCl, Water-Soluble Mushroom Chitosan, Fungal-Derived Chitosan HCl, CHCl
Product identity
Water-Soluble Mushroom Chitosan
Biological source
Mushroom
Degree of deacetylation
98.03%
Appearance
White or light-yellow powder
Odor and taste
Characteristic

Properties

PropertyValueTest methodNote
Product identityWater-Soluble Mushroom ChitosanPer batch COACOA product name requires confirmation as Chitosan Hydrochloride
Biological sourceMushroomSupplier documentationNon-shellfish fungal source
Degree of deacetylation98.03%Per batch COACOA specification: 98%
AppearanceWhite or light-yellow powderVisual inspectionComplies
Odor and tasteCharacteristicOrganoleptic assessmentComplies
pH4Per batch COASpecification range: 3–8
Viscosity20 mPa·s specificationPer batch COAResult marked “Complies”
Particle size100% passes 80 meshSieve analysisComplies
Loss on drying7.93%Per batch COASpecification: ≤8%
Water solubilityEasily water solubleSolubility assessmentComplies
Arsenic≤2.0 ppmPer batch COAComplies
Lead≤1.0 ppmPer batch COAComplies
Cadmium≤0.5 ppmPer batch COAComplies
Mercury≤0.5 ppmPer batch COAComplies
Total heavy metals≤20.0 ppmPer batch COAComplies
Total plate count223 CFU/gMicrobiological analysisSpecification: <1,000 CFU/g
Yeast and mold15 CFU/gMicrobiological analysisSpecification: <100 CFU/g
E. coliNegativeMicrobiological analysisComplies
SalmonellaNegativeMicrobiological analysisComplies
Manufacturing dateMarch 3, 2025Batch documentationBatch FQ0250303
Expiry dateMarch 2, 2027Batch documentationStore under recommended conditions

Packaging & Quality

ItemDetail
Available quantities25 g laboratory sample, 1 kg standard pack and commercial bulk quantities
PackagingSealed, moisture-resistant packaging suitable for dry powdered material
Batch documentationBatch-specific Certificate of Analysis available
Quality testingTested for DDA, pH, viscosity, particle size, moisture, heavy metals and microbiological quality
AppearanceWhite to light-yellow fine powder
Particle-size control100% passes through an 80-mesh sieve
Microbiological qualityE. coli and Salmonella negative; total plate count and yeast/mold within COA limits
Heavy-metal controlArsenic, lead, cadmium, mercury and total heavy metals comply with the stated COA limits
Bulk packagingPackaging configuration confirmed according to commercial order quantity
Shelf lifeApproximately 24 months from manufacture when stored under recommended conditions

Tiered Pricing

QuantityPrice / quotePackagingShipping
25 g Sample$67 per sampleSealed 25 g sample packFree USA shipping
1 kg$137 totalSealed 1 kg packUSA price includes the applicable 15% tariff and $60 FedEx shipping
Commercial Bulk OrdersStarting at $62/kg | Request QuoteBulk packaging based on order quantityFreight and final pricing confirmed with quotation

Product Overview

Mushroom Chitosan Hydrochloride for Formulation and Product Development

Choosing a chitosan material involves more than identifying its biological source. Formulators must also consider how the polymer will behave inside the finished system, including its compatibility with other ingredients, solution viscosity, processing conditions and required functional performance.

Mushroom Chitosan Hydrochloride manufactured through the original (conventional) process is intended for manufacturers, research laboratories and product developers working with aqueous formulations. Its hydrochloride salt form provides a practical alternative when the acid-dissolution requirements of native chitosan would complicate processing or interfere with other ingredients.

For a broader explanation of its chemistry and commercial uses, visit our Mushroom Chitosan Hydrochloride technical guide.

How the Hydrochloride Form Changes Chitosan’s Behavior

Chitosan contains primary amino groups along its polymer backbone. The charge state of these groups changes according to the surrounding chemical environment. This behavior affects how chitosan disperses, dissolves and interacts with other materials.

Native chitosan generally requires a separate acidification step to protonate its amino groups. In Chitosan Hydrochloride, the polymer is supplied in a salt form in which the amine groups have already been associated with hydrochloride ions.

From a formulation perspective, this can reduce the number of preparation variables that must be managed before the chitosan is introduced into an aqueous system.

However, the word “water-soluble” should not be interpreted as a guarantee of identical performance in every formula. Practical behavior may still be influenced by:

  • Polymer concentration
  • Molecular-weight distribution
  • Degree of deacetylation
  • Solution pH
  • Mixing speed and hydration time
  • Water temperature and quality
  • Ionic strength
  • Surfactants, proteins and salts
  • Other positively or negatively charged ingredients

For a detailed comparison of the two material formats, read Chitosan Hydrochloride vs Native Chitosan.

You can also review our Water-Soluble Mushroom Chitosan formulation guide before beginning compatibility testing.

When Should a Formulator Consider Chitosan Hydrochloride?

The material may be worth evaluating when a project requires chitosan to be incorporated into a primarily water-based process without introducing a separate acid-dissolution stage.

Common formulation objectives include:

  • Producing a uniform polymer solution
  • Simplifying raw-material preparation
  • Limiting unnecessary pH adjustment
  • Developing cationic polymer systems
  • Creating films, coatings or hydrogel networks
  • Studying interaction with negatively charged substances
  • Investigating mucoadhesive delivery platforms
  • Preparing sprayable agricultural or industrial formulations

The hydrochloride form is not automatically superior to native chitosan or other water-compatible derivatives. The correct selection depends on what the polymer must accomplish after it enters the formulation.

For example, a formulation that already operates under controlled acidic conditions may work effectively with native chitosan. A system requiring different charge behavior or a broader pH-processing window may instead benefit from evaluating Carboxymethyl Chitosan or another modified derivative.

Understanding Cationic Polymer Interactions

Once the amino groups of chitosan are protonated, the polymer can carry a positive charge. This cationic character allows it to interact with negatively charged surfaces, molecules, particles and polymers.

These interactions help explain why chitosan-based materials are studied in areas such as:

  • Adsorption and flocculation
  • Polyelectrolyte complex formation
  • Surface coating
  • Encapsulation
  • Particle development
  • Mucosal adhesion
  • Film formation
  • Controlled-release matrices

Charge interaction does not ensure a successful finished formulation. Excess salts, strong pH changes or incompatible anionic ingredients can reduce clarity, alter viscosity or cause precipitation.

A small compatibility trial should therefore be conducted with the actual water source, additives and processing conditions planned for the final product.

Scientific reviews have described the relationship between chitosan’s physicochemical properties and its pharmaceutical behavior, including solubility, stability and polymer interactions. See the peer-reviewed review on the stability of chitosan in pharmaceutical and biomedical applications for additional technical context.

Pharmaceutical and Drug-Delivery Research

Chitosan and its salt forms are widely investigated as functional excipients and polymeric components in pharmaceutical research. Their cationic and polymer-forming characteristics make them relevant to systems where adhesion, encapsulation or controlled release is being explored.

Potential research formats include:

  • Oral delivery matrices
  • Buccal and mucosal systems
  • Nasal formulations
  • Ocular delivery research
  • Nanoparticles and microparticles
  • Hydrogels
  • Polymeric films
  • Coated carriers
  • Sustained-release systems

Molecular weight, viscosity, concentration and degree of deacetylation can influence swelling, adhesion, drug release and processing. A formulation should therefore be developed around a defined material specification rather than relying only on the general name “Chitosan Hydrochloride.”

Research on chitosan and chitosan chlorhydrate has demonstrated how polymer selection and formulation variables can influence drug-release systems. One example is this published study concerning chitosan and chitosan chlorhydrate matrices.

For more application-specific information, read our guide to chitosan for drug-delivery systems.

This material should be treated as a formulation ingredient or research material. Suitability for a pharmaceutical product must be established through the applicable quality, safety and regulatory review.

Cosmetics and Personal-Care Formulations

Mushroom Chitosan Hydrochloride can be evaluated as a functional polymer in aqueous cosmetic and personal-care development.

Possible formulation categories include:

  • Facial serums
  • Skin-conditioning products
  • Hair conditioners
  • Shampoos
  • Scalp products
  • Leave-on hair formulations
  • Water-based polymer films
  • Cosmetic coating systems

The polymer’s performance can change substantially when combined with surfactants, preservatives, salts and charged active ingredients. In particular, anionic components may interact with cationic chitosan and affect product clarity or stability.

Before scale-up, formulators should assess:

  • Dispersibility in the selected water phase
  • Final formulation pH
  • Short- and long-term viscosity
  • Compatibility with the surfactant system
  • Preservative effectiveness
  • Centrifuge and freeze–thaw stability
  • Appearance, odor and sensory characteristics

Our Chitosan in Cosmetics resource provides further background on its use in personal-care product development.

Agricultural and Crop-Care Formulations

Water-compatible chitosan formats may be evaluated for agricultural systems in which the material needs to be diluted, sprayed or combined with other formulation components.

Research and product-development areas include:

  • Seed-treatment formulations
  • Foliar applications
  • Root-zone delivery
  • Plant-defense elicitor research
  • Post-harvest coatings
  • Agricultural films
  • Crop-input formulation development

Application results cannot be predicted from chitosan type alone. Crop species, growth stage, concentration, water chemistry, application frequency and environmental conditions can all influence performance.

A practical evaluation program should begin with a controlled jar or bench test, followed by a limited greenhouse or field trial. The formulation should also be checked for nozzle compatibility, sediment formation and storage stability.

See Chitosan for Plant Defense and Crop Protection Systems for more detailed agricultural guidance.

Water Treatment and Industrial Processing

The positive charge associated with dissolved chitosan has made chitosan-based polymers relevant to water-treatment and industrial-separation research.

Potential evaluation areas include:

  • Suspended-solid aggregation
  • Flocculation
  • Dye-removal systems
  • Sludge conditioning
  • Metal-ion interaction
  • Surface modification
  • Industrial coatings
  • Polymer blends
  • Wastewater-treatment research

Treatment performance depends on the chemistry of the water being processed. Turbidity, pH, temperature, salt concentration, organic matter and the charge density of suspended particles can all affect the required polymer dose.

For this reason, dosage should be established through a jar test or comparable bench-scale evaluation rather than transferred directly from an unrelated water system.

Read Chitosan Hydrochloride for Water Treatment for a more focused discussion of its role as a water-compatible cationic polymer.

Food, Coating and Packaging Research

Chitosan-based polymers have been studied in food-related research involving edible films, protective coatings, active packaging and ingredient-delivery systems.

A potential research application does not mean that every available Chitosan Hydrochloride grade is automatically suitable for food manufacturing. Buyers must confirm:

  • Intended-use regulatory status
  • Ingredient-grade documentation
  • Purity requirements
  • Heavy-metal limits
  • Microbiological limits
  • Allergen documentation
  • Residual processing substances
  • Country-specific labeling requirements

Any food-contact or ingestible application should be reviewed against the regulations of the market in which the final product will be sold.

A Practical Laboratory Evaluation Workflow

A controlled preliminary trial provides more useful information than choosing a grade based only on a general product description.

Step 1: Define the formulation objective

Determine whether the chitosan is expected to provide charge interaction, adhesion, film formation, viscosity modification, encapsulation or another function.

Step 2: Review the current documentation

Confirm that the batch documentation addresses the parameters relevant to the project. Request additional information if a critical result is not included.

Step 3: Prepare a small trial solution

Introduce the powder gradually under continuous agitation. Avoid adding a large amount at once, as this may create localized clumping and uneven hydration.

Our Chitosan Hydrochloride Mixing Guide provides a starting framework for laboratory preparation.

Step 4: Record the processing conditions

Document:

  • Water type
  • Batch size
  • Polymer concentration
  • Mixing equipment
  • Mixing speed
  • Hydration time
  • Temperature
  • Initial and final pH
  • Final appearance
  • Observed viscosity

Step 5: Conduct compatibility testing

Add other ingredients individually where practical. Monitor for cloudiness, separation, precipitation, color change or unexpected viscosity development.

Step 6: Test the finished formulation

Evaluate the properties that matter to the intended application, rather than assuming that successful dissolution establishes final-product performance.

How to Select the Right Grade

The required Chitosan Hydrochloride grade should be selected using measurable criteria.

Evaluation factor Why it matters
Intended function Defines whether charge interaction, coating, adhesion or polymer-network formation is required
Molecular weight Can affect viscosity, diffusion, film behavior and ease of processing
DDA Influences the number of available amino groups and resulting polymer behavior
Viscosity test conditions Allows meaningful comparison between suppliers and batches
Working concentration Affects mixing requirements and finished-solution viscosity
Formulation pH Influences charge state, stability and ingredient compatibility
Ionic strength May change polymer conformation and interaction with charged ingredients
Documentation Supports technical, quality and regulatory evaluation
Scale Determines packaging, processing equipment and commercial supply requirements

When comparing quotations, ensure that viscosity values were measured at the same concentration, temperature and test conditions. A viscosity number without its test conditions provides limited value.

Mushroom, Shellfish or Insect-Origin Chitosan HCl?

Biological origin can affect sourcing preferences, labeling strategy and supply-chain requirements, but it does not replace technical qualification.

A purchasing comparison should consider:

  • Confirmed biological source
  • Batch-to-batch consistency
  • Molecular-weight range
  • Degree of deacetylation
  • Viscosity
  • Purity profile
  • Required certifications
  • Traceability
  • Available documentation
  • Commercial quantity and lead time
  • Total delivered cost

Process route is a further selection factor: this grade is manufactured using the original (conventional) process, while a green-process fungal grade is evaluated separately for sustainability-driven programs.

For projects that do not require fungal origin, compare this material with Shellfish Chitosan Hydrochloride.

For an insect-derived option, review Black Soldier Fly Chitosan Hydrochloride.

You can also read our direct comparison of BSF and Mushroom Chitosan Hydrochloride.

Documentation to Request Before Commercial Scale-Up

The specification displayed on a product page provides an initial reference, while the current batch documentation should guide technical qualification.

Depending on the intended use, buyers may need to request:

  • Batch-specific Certificate of Analysis
  • Safety Data Sheet
  • Technical Data Sheet
  • Source declaration
  • Allergen statement
  • Manufacturing-flow information
  • Country-of-origin documentation
  • Microbiological results
  • Heavy-metal results
  • Residual-solvent or processing-aid information
  • Regulatory or quality certifications
  • Packaging and shelf-life information

A requirement that is essential to a regulated formulation should be confirmed in writing before purchase.

Why Source from Chitosan Global?

Chitosan Global supports manufacturers, laboratories and product developers in comparing chitosan materials by functional requirement rather than product name alone.

Buyers can request assistance with:

  • Selecting an appropriate chitosan derivative
  • Comparing fungal, marine and insect sources
  • Reviewing available technical documentation
  • Identifying sample and commercial-order pathways
  • Discussing application-specific specifications
  • Requesting commercial-volume pricing

If you are comparing Chitosan Hydrochloride with another derivative, contact the Chitosan Global technical team and include your intended application, required quantity, target concentration, preferred source and critical specification limits.

Evaluate Mushroom Chitosan Hydrochloride for Your Project

Use the available purchasing options to begin a laboratory evaluation, or request a commercial quotation for a larger requirement.

Before ordering, identify the function the polymer must perform and the batch parameters that matter most to your formulation. This makes it easier to determine whether Mushroom Chitosan Hydrochloride or another chitosan derivative is the appropriate technical fit.

For specification questions, documentation requests or bulk purchasing support, contact Chitosan Global.

Applications

Pharmaceutical Formulation Research

Evaluated for mucoadhesive delivery systems, nanoparticles, hydrogels, controlled-release matrices and other water-based pharmaceutical research.

Learn more

Cosmetics and Personal Care

Suitable for evaluation in water-based serums, moisturizers, shampoos, hair conditioners, scalp formulations, films and cosmetic polymer systems.

Learn more

Agricultural Formulations

The water-soluble format can be evaluated for foliar sprays, seed treatments, plant-defense formulations and post-harvest coating systems.

Learn more

Food and Nutraceutical Research

May be evaluated in edible coatings, active packaging, ingredient-delivery systems and food-preservation research, subject to grade and regulatory requirements.

Learn more

Water Treatment

Its cationic polymer behavior supports research involving flocculation, suspended-particle removal, dye treatment, metal-ion interaction and sludge conditioning.

Learn more

Films, Coatings and Polymer Systems

Can be evaluated as a functional polymer in water-based films, coatings, hydrogels, particles and polyelectrolyte networks.

Learn more

Directions for Use

Add gradually to clean water while mixing continuously. Allow sufficient hydration time and confirm complete dissolution before adding other formulation ingredients. Begin with a small laboratory trial because concentration, pH, ionic strength and other ingredients can affect solution behavior.

Storage and Handling

Keep the container tightly sealed and store in a cool, dry, well-ventilated location away from moisture, heat and direct sunlight. Prevent contamination and use clean, dry handling equipment. Follow the current SDS and batch-specific COA.

Safety Information

Signal Word
Refer to the current product SDS
Hazard Classification
No official hazard classification has been confirmed from the supplied COA. Review the current product-specific SDS before handling or industrial use.
Hazard Codes
Refer to the current product-specific SDS
Precautionary Statements
Avoid generating or inhaling airborne powder. Avoid contact with eyes. Wear suitable protective gloves, safety glasses and respiratory protection when dust may be generated. Wash hands thoroughly after handling.
Storage Class
Dry powdered material — refer to SDS for official storage classification

Documentation

PDF

Material Safety Data Sheet / Safety Data Sheet

Document pending. Please contact us if you need this document before ordering.

Protocols and Articles

Mushroom Chitosan Hydrochloride

Technical overview of fungal-derived Chitosan Hydrochloride, its aqueous behavior, functional properties and potential application areas.

Frequently Asked Questions

What is Mushroom Chitosan Hydrochloride?

Mushroom Chitosan Hydrochloride is a water-soluble salt form of fungal-derived chitosan. It offers easier aqueous processing than native chitosan, which normally requires dilute acidic conditions for dissolution.

Is this product water soluble?

Yes. The supplied COA identifies the material as easily water soluble. Actual dissolution behavior may still vary with concentration, pH, temperature, molecular weight and other formulation ingredients.

What is the degree of deacetylation?

The supplied batch COA reports a degree of deacetylation of 98.03%, against a stated specification of 98%.

Is it derived from shellfish?

No. The supplied COA identifies mushroom as the biological source. Confirmation of the exact mushroom species should be obtained from the supplier documentation.

How is it different from native mushroom chitosan?

Native mushroom chitosan normally requires dilute acidic conditions to dissolve. The water-soluble hydrochloride form is designed for easier incorporation into aqueous formulations.

What applications can it be used for?

It can be evaluated for pharmaceutical research, cosmetics, food systems, agricultural formulations, water treatment, films, coatings, hydrogels and industrial polymer systems. Suitability must be confirmed for the intended application and regulatory market.

Are samples available?

Yes. A 25 g laboratory sample and a 1 kg standard pack are currently available. Commercial-volume orders require a bulk quotation.

Is a Certificate of Analysis available?

Yes. Batch-specific COA documentation is available. Buyers requiring a specific DDA, viscosity, molecular weight or regulatory specification should request confirmation before ordering.

How should the product be stored?

Keep it tightly sealed in a cool, dry place and protect it from moisture, excessive heat, direct sunlight and contamination.