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Home > Biochemical Engineering > Saccharides (Find 2381 items)

anemarsaponin B

(139051-27-7)
Anemarsaponin B is a steroidal saponin isolated from the rhizomes of A. asphodeloides (Liliaceae). Anemarsaponin B decreases the protein and mRNA levels of iNOS and COX-2. Anemarsaponin B reduces the expressions and productions of pro-inflammatory cytokines, including TNF-a and IL-6. Anemarsaponin B inhibits the nuclear translocation of the p65 subunit of NF-κB by blocking the phosphorylation of IκBα. Anemarsaponin B also inhibits the phosphorylation of MAP kinase kinases 3/6 (MKK3/6) an

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NECA

(35920-39-9)
A potent adenosine receptor agonist.Inhibits platelet aggregation and is centrally active in vivo

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Glycopeptides, sulfoglycopeptides

(54182-59-1)
Sulfated glycopeptide belongs to a kind of polysaccharide peptide modified by sulfuric acid esterification, and its molecular weight is about 900 000 ~ 1 000 000 D. Because it can significantly inhibit pepsin without affecting the amount of gastric juice and acidity of gastric juice, it has been used medically for the treatment of stomach, duodenal ulcer and gastritis, and is used for gastric and gastric mucosal ulcers. A powerful stomach protector for treatment. Existing research reports show t

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D-Ribulose

(488-84-6)
Ribulose is a ketopentose, a monosaccharide containing five carbon atoms and a ketone functional group. It is synthesized in the pentose phosphate pathway and plays a role in the formation of various bioactive compounds. It is a structural isomer of ribose and exists as two enantiomers, D-ribulose and L-ribulose. A double phosphate ester of D-ribulose, ribulose-1,5-bisphosphate combines with carbon dioxide at the beginning of photosynthesis.[Cayman Chemical]

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D-Glucosaminic acid

(3646-68-2)
A useful starting material for the synthesis of aldonic acids containing a free carboxylgroup and having all hydroxyl functions esterified with a simple carboxylic acid are well established deriviatives

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(+)-Mannoheptulose

(3615-44-9)
Mannoheptulose occurs naturally in avocado fruit.

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L-Gulose

(6027-89-0)
L-Gulose is an aldohexose sugar. L-Gulose very rarely occurs in nature but has been found in archaea, bacteria and eukaryotes. L-Gulose is not fermentable by yeast. L-Gulose also serves as a direct precursor of L-ascorbic acid in plant cells.

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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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