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Home > Biochemical Engineering > Saccharides (Find 132 items)

Cellulose

(9004-34-6)
1. High purity cellulose powders for partition chromatography.
2. ACCEL-101 is most widely used for direct compression tableting and wet granulation.ACCEL-102 has similar compression properties to ACCEL-101. However, it has larger particle size and therefore, may be of value in improving the flow if fine powders.ACCEL

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Carboxymethyl Cellulose

(9000-11-7)
CMC dissolves in water can significantly increase the viscosity of the solution, has the functions of thickening, dispersing, emulsifying, suspending, protecting colloid, etc., and is physiologically harmless. It is obtained in the production of food, medicine, daily chemical, petroleum, paper, textile, construction and other fields widely used.

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Chitosan

(9012-76-4)
1. Forms gels with multivalent anions. Gives clear solutions that dry to strong, clear films.
2. Ideal for wound healing and hemostasis; biosurgery and ophthalmology; scaffold and cell therapy; and drug delivery and vaccines
3. Flocculant, protein precipitation, encapsulating agent and aqueous thickener.
4. Also available in pharma grade

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Carrageenan

(9000-07-1)
Pharmaceutic aid (suspending agent); pharmaceutic aid (viscosity-increasing agent). Carrageenan is a gum that is a seaweed extract obtained from red seaweed chondrus crispus (also known as irish moss), gigartina, and eucheuma species. chondrus crispus yields kappa and lambda carra- geenans. gigartina yields kappa and lambda carrageenans. eucheuma yields kappa and iota carrageenans. it exists as various salts or mixed salts of a sulfate ester. it is classified mainly as kappa, iota, and lamb

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Cellulose acetate

(9004-35-7)
Coatings Coatings for glass Coatings for paper/paperboard Consumer electronics Electrical Food packaging Food-contact applications Pressure sensitive tape Wood sealers

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Chitin

(1398-61-4)
A naturally occuring fibre found in the shells of shellfish. Used for the analysis of chitinase

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Cytidine diphosphate

(63-38-7)
ChEBI: A pyrimidine ribonucleoside 5'-diphosphate having cytosine as the nucleobase.

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Calcium L-threonate

(70753-61-6)
L-Threonic acid calcium salt is the salt of L-Threonic acid, a naturally occurring compound that can be found in the leaves of Pelargonium crispum. L-Threonic acid is also the degradation product of Dehydroascorbate (DHA), a metabolite of Vitamin C.

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Cellobiose

(528-50-7)
D-(+)-Cellobiose is commonly used as a carbohydrate indicator for intestinal permeability in Crohn’s disease and malabsorption syndrome. When treated with sulfuric acid and acetic anhydride, cellulose generates cellobiose tetraacetate, which is soluble in nonpolar solvents and cannot engage in hydrogen bonding. Bacteriology.

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Cellulose acetobutyrate

(9004-36-8)
Used as leveling agent and film forming material for making high transparency, weather resistance plastic film base, film and various coatings

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Saccharides, also called sodium saccharin, is the oldest sweetener. Saccharides was discovered by American scientists in 1878 and was quickly accepted by the food industry and consumers. The sweetness of saccharin is 300 to 500 times that of sucrose. It is not metabolized and absorbed by the human body and is stable in the production of various foods.

Frequently Asked Questions

What are saccharides and how are they classified?

Saccharides, also known as carbohydrates, are organic compounds composed of carbon, hydrogen, and oxygen. They are classified based on the number of sugar units: monosaccharides (e.g., glucose, fructose), disaccharides (e.g., sucrose, lactose), oligosaccharides (3–10 units), and polysaccharides (e.g., starch, cellulose). Understanding saccharide classification is essential for applications in food, pharmaceuticals, and biotechnology.

What are the common industrial uses of saccharides?

Saccharides are widely used across multiple industries:1. In food and beverage production as sweeteners, thickeners, and stabilizers.2. In pharmaceuticals as excipients, drug delivery agents, or active ingredients.3. In cosmetics for moisturizing and skin-conditioning properties.4. In biotechnology as fermentation substrates for producing biofuels and enzymes.Their versatility makes them critical raw materials in many manufacturing processes.

How do I choose a reliable saccharide supplier for industrial use?

Selecting a reliable saccharide supplier involves evaluating several key factors:1. Compliance with international quality standards such as ISO, GMP, or FCC.2. Purity and consistency of the saccharide products offered.3. Certifications for food-grade, pharmaceutical-grade, or technical-grade materials as needed.4. Supply chain reliability, including packaging, logistics, and scalability.5. Technical support and documentation (e.g., COA, MSDS).Partnering with a certified and experienced supplier ensures product safety and process efficiency.

What is the difference between reducing and non-reducing saccharides?

Reducing saccharides have a free aldehyde or ketone group that can act as a reducing agent in chemical reactions—common examples include glucose and maltose. Non-reducing saccharides, like sucrose, lack a free reactive group because their anomeric carbons are involved in glycosidic bonds. This distinction affects their reactivity in analytical tests (e.g., Benedict’s test) and their behavior in food processing or pharmaceutical formulations.

Are natural and synthetic saccharides interchangeable in formulations?

Natural and synthetic saccharides may not always be interchangeable due to differences in purity, stereochemistry, regulatory status, and functional performance. For example, naturally derived lactose is commonly used in tablets as a filler, while synthetic alternatives might not meet pharmacopeial standards. Always verify compatibility with your application requirements, regulatory guidelines (e.g., USP, EP), and end-user safety before substitution.

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