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E202 POTASSİUM SORBATE

E202 Potassium Sorbate is the potassium salt of sorbic acid (C₆H₇KO₂). 
E202 Potassium Sorbate is a highly water-soluble, synthetic white crystalline powder widely used as an antimicrobial preservative. 
E202 Potassium Sorbate inhibits molds, yeasts, and select bacteria, effectively extending shelf life in food, cosmetics, and pharmaceuticals.

CAS No.24634-61-5
CBNumber:CB0294184
Molecular Formula:C6H7KO2
Molecular Weight:150.22
MDL Number:MFCD00016546
MOL File:24634-61-5.mol

Synonyms: e202,POTASSIUM SARBATE,SORBIC ACID POTASSIUM SALT,POTASSIUM SORBATE GRANULES,(E,E)-hexadienoic acid, potassium salt,suanjia,FEMA 2921,trans-trans-So,Potassium otassium sorbate

E202 Potassium Sorbate is highly efficient, safe, and nonpoisonous food antioxidants. 
Despite being one of many preservatives available on the market, E202 Potassium Sorbate is one of the best, due to its harmlessness and versatility. 
E202 Potassium Sorbate is largely produced synthetically.

E202 Potassium Sorbate is the potassium salt of sorbic acid, structural formula CH3CH=CH−CH=CH−CO2K. 
E202 Potassium Sorbate is a white salt that is very soluble in water (58.2% at 20 °C). 
E202 Potassium Sorbate is primarily used as a food preservative (E number 202).
E202 Potassium Sorbate is effective in a variety of applications including food, wine, and personal care products. 
While sorbic acid occurs naturally in rowan and hippophae berries, virtually all of the world's supply of sorbic acid, from which potassium sorbate is derived, is manufactured synthetically.

Overview
E202 Potassium Sorbate is petitioned for use in organic livestock production as mold inhibitor. 
Sorbic acid was first discovered in the Mountain Ash Tree (Sorbus aucuparia or Sorbus americana). 
Today most potassium sorbate is made synthetically. 
E202 Potassium Sorbate is a naturally occurring unsaturated fatty acid and is completely safe with regard to health and has the lowest allergenic potential of all food preservatives. 
E202 Potassium Sorbate was also petitioned for use in liquid livestock medications primarily aloe vera juice as a substitute for antibiotics and other various hormones.
The use of chemical food preservatives, except for salts, sugars, spices, vinegar, etc., was not very widespread until the last 200 years. 
Progress in the development of food preservatives has not been steady. 
With a view to developing more effective, simpler, and less expensive means of food preservation, many chemicals having strong antimicrobial properties were initially utilized for food preservation but were subsequently abandoned when their undesirable physiological and biochemical properties were discovered. 
For example, boric acid, salicyclic acid, creosote, and formaldehyde, which were utilized as preservatives in foods during the 19th century, are no longer used. 
On the other hand, sorbic acid (SA), benzoic acid, p-hydroxy benzoic acid esters, and sulfur dioxide have proved very useful in various food preservation applications and their use has been officially permitted in almost all countries of the world

Chemical Properties
Chemically, sorbic acid is a straight chain, alpha beta-unsaturated, trans-trans 2,4 hexadienoic monocarboxylic acid (CH3-CH = CH-CH = CH-COOH). 
E202 Potassium Sorbate has a molecular weight of 112 and a pKa value of 4.75. 
At room temperature sorbic acid is a white crystalline solid with a melting point range of 132°-137°C.
Its solubility in water at 25°C is 0.16% while that of its potassium salt is over 50%.
This higher solubility renders potassium sorbate a preferred form of sorbic acid in foods. In oils, however, sorbic acid is more soluble than the potassium salt.
Sorbic acid was first isolated from oil of unripened rown berries (sorbapple or mountain ash berry) by A. W. Hoffmann in 1859. 
The compound was named after the scientific name of mountain ash {Sorbus aucuparia}, which is the parent plant of rown berry. 
The chemical structure of sorbic acid was elucidated during 1870-1890 and E202 Potassium Sorbate was synthesized in 1900 by Doebner by condensation of crotonalhyde and malonic acid[6].

Production
Potassium sorbate is produced industrially by neutralizing sorbic acid with potassium hydroxide. 
The precursor sorbic acid is produced in a two-step process via the condensation of crotonaldehyde and ketene

Uses
Potassium sorbate is used to inhibit molds and yeasts in many foods, such as cheese, wine, yogurt, dried meats, apple cider, dried fruits, soft drinks and fruit drinks, and baked goods. 
E202 Potassium Sorbate can also be found in the ingredients list of many dried fruit products. 
In addition, herbal dietary supplement products generally contain potassium sorbate, which acts to prevent mold and microbes and to increase shelf life. 
E202 Potassium Sorbate is used in quantities at which no adverse health effects are known, over short periods of time.
Labeling of this preservative on ingredient statements reads as "potassium sorbate" or "E202".
Also, E202 Potassium Sorbate is used in many personal care products to inhibit the development of microorganisms to increase shelf stability. 
Some manufacturers use this preservative as a replacement for parabens.
Also known as "wine stabilizer", potassium sorbate produces sorbic acid when added to wine. 
E202 Potassium Sorbate serves two purposes:
When active fermentation has ceased and the wine is racked for the final time after clearing, potassium sorbate renders any surviving yeast incapable of multiplying. 
Yeast living at that moment can continue fermenting any residual sugar into CO2 and alcohol, but when they die, no new yeast will be present to cause future fermentation. 
When a wine is sweetened before bottling, potassium sorbate is used to prevent refermentation when used in conjunction with potassium metabisulfite. 
E202 Potassium Sorbate is primarily used with sweet wines, sparkling wines, and some hard ciders, but may be added to table wines, which may not maintain their clarity after fining.
E202 Potassium Sorbate also inhibits bacteria, especially Clostridium botulinum. 
Tube feeding of potassium sorbate reduces the amount of pathogenic bacteria in the stomach.
Some molds (notably some Trichoderma and Penicillium strains) and yeasts are able to detoxify sorbates by decarboxylation, producing piperylene (1,3-pentadiene). 
The pentadiene manifests as a typical odor of kerosene or petroleum.

Application
When dissolved in water, potassium sorbate ionizes to form sorbic acid which is effective against yeasts, molds, and select bacteria, and is widely used at 250 ppm to 1000 ppm levels in cheeses, dips, yogurt, sour cream, bread, cakes, pies and fillings, baking mixes, doughs, icings, fudges, toppings, beverages, margarine, salads, fermented and acidified vegetables, olives, fruit products, dressings, smoked and salted fish, confections and mayonnaise. Therefore, E202 Potassium Sorbate is generally used as a powerful food preservative.

Common Applications
Food & Beverage: Used as a mold and yeast inhibitor in cheeses, wine, baked goods, and dried meats.
Cosmetics & Personal Care: Utilized as a mild alternative to parabens to prevent microbial spoilage.

Antimicrobial effect
Antimicrobial properties of sorbic acid were discovered independently in 1939 and 1940 by Muller and Gooding in Germany and the USA, respectively. 
After this discovery, sorbic acid and its salts were tested and used in a variety of consumer products for inhibition of yeast and molds and certain bacteria. 
But its use as a food preservative had to wait until 1950 when commercial production commenced. 
Initially sorbates were known to be effective inhibitors of yeast and molds, and less so of bacteria. In 1974 Tompkin et al. 
reported that addition of 0.1 % potassium sorbate to uncured sausages delayed the growth of Salmonella spp. and Staphylococcus aureus as well as growth and toxin production by Clostridium botulinum. 
Following these findings, extensive studies were undertaken on the potential use of sorbic acid or its salts as antibotulinal agents and preservatives in various types of meats and meat products. 
These compounds were tested in combination with low levels of sodium nitrite for the preservation of cured meats and the reduction of potentially carcinogenic nitrosamine in products such as bacon. 
Most recently sorbic acid has played a very important role in the development of intermediate-moisture foods. 
The water activity of these foods is low enough to control the growth of bacteria but not growth of yeast and molds; therefore, sorbic acid is used as a very effective antimycotic agent in these products. 
Sorbic acid and its salts are also being used as one of the various "hurdles" employed to control microbial growth in intermediate moisture foods.
Unfortunately, grain and feed provides an ideal environment for molds to proliferate. 
Raw materials or feeds in bulk storage are rich sources of energy, proteins and moisture and, thus, are highly conducive to mold growth. 
Potassium sorbate is the potassium salt of sorbic acid, and is much more soluble in water than the acid. 
Potassium sorbate will produce sorbic acid once E202 Potassium Sorbate is dissolved in water and is the most widely used food preservative in the world. 
E202 Potassium Sorbate is effective up to pH 6.5 but effectiveness increases as the pH decreases. 
E202 Potassium Sorbate has about 74% of the antimicrobial activity of the sorbic acid, thus requiring higher concentrations to obtain the same results that pure sorbic acid provides. 
E202 Potassium Sorbate is effective against yeasts, molds, and select bacteria, and is widely used at 0.025 to 0.10 % levels in cheeses, dips, yogurt, sour cream, bread, cakes, pies and fillings, baking mixes, doughs, icings, fudges, toppings, beverages, margarine, salads, fermented and acidified vegetables, olives, fruit products, dressings, smoked and salted fish, confections and mayonnaise. 
Maximum level allowable by law is 0.1%. 
E202 Potassium Sorbate  is important to know that the addition of sodium benzoate and/or potassium sorbate to a food product will raise the pH by approximately 0.1 to 0.5 pH units depending on the amount, pH, and type of product. 
Additional adjustment of the pH might be needed to keep the pH at a safe level.

Immunomodulatory effect
While one recent study reported that potassium sorbate can contribute to the activation of inflammatory pathways, other studies indicate that sorbate is primarily anti-inflammatory in vivo and acts to downregulate many immune signaling pathways responsible for inflammation, glial cell activation, switching of T-helper cells, modulation of regulatory T cells, cell-to-cell contact, and migration. 
These latter, anti-inflammatory effects of sorbate would appear to resemble those of sodium salicylate, the active metabolite of the well-known nonsteroidal anti-inflammatory drug aspirin (acetylsalicylic acid). 
In mouse microglia, sorbate inhibits NF-kappaB activation, modulates the mevalonate pathway, and suppresses the activation of p21ras. 
Recently, sorbate administration was shown to induce the expression of TGF-beta in splenocytes and also to upregulate regulatory T cells during experimental autoimmune encephalomyelitis, a mouse model of multiple sclerosis (MS). 
Interleukin 4 (IL-4) is known to improve the clinical manifestations in this animal model of MS, and the administration of sorbate to human subjects has been shown to induce IL-4 production in their peripheral blood mononuclear cells. 
Sorbate might therefore deserve consideration as a useful candidate for conjunctive therapy in treating MS, the most common human demyelinating disease of the central nervous system.

Health concern
Until recently, the extensive use of sorbate salts for large-scale food and drink preservation was regarded as completely safe. 
Claims to this effect are often still issued by the organizations that represent the soft drink industry. 
Such statements reflect the long history of apparently safe use of these preservatives and a safety testing that has largely focused on the maximum levels of these compounds that could be tolerated without adverse effects in the diet of laboratory animals. 
The maximum levels of benzoate and sorbate permitted in food and drinks are based on these studies. 
Ever since these original safety tests, there have been dramatic advances in the technologies available to investigate damage to cells and tissues, providing opportunities for much deeper investigation of the effects of these additives and the consequences of their long-term, large-scale dietary consumption. 
Indeed, we are now aware of mechanisms of damage to biological systems that were completely unknown at the time of much of the original safety testing of these preservatives. 
There are more and more concerns regarding the safety use of sorbate.
Sorbic acid and potassium sorbates have a very low mammalian toxicity. 
There is a general consensus that they are intrinsically devoid of carcinogenic activity, but have the potential to undergo a conversion to potential mutagens. 
In tests on Syrian hamster embryo fibroblasts, Chinese hamster ovary cells, or bone marrow cells, no genotoxic or cell-transforming activity was detected with freshly prepared sodium sorbate solution. 
However, products of sodium sorbate with genotoxic and cell-transforming properties were formed under conditions of heating and storage. 
Sorbate can undergo oxidation to 4,5-oxohexanoate and oxidized potassium sorbate can react with ascorbic acid in the presence of ferrous iron. 
Much attention has been focused on the reactions between sorbate and nitrite at pH2-4.2, conditions that mimic the gastric environment. 
Among the products of such reactions are the mutagenic agents 1,4dinitro-2-methylpyrrole and ethylnitrolic acid.
There is one report of hepatoma arising from the feeding of mice on a diet of very high (15% w/v) sorbic acid, this being correlated with a depletion of the levels of reduced glutathione (GSH) in the mouse liver. 
Causation of this hepatoma was attributed to the oxidative stress caused by the depleted GSH pool, together with the gradual production of various mutagens in the intestine, mutagens that following their absorption were transferred to the liver where they were, in turn, metabolically activated to carcinogenic compounds.
There are also concerns regarding the effect of sorbate on the mitochondrial function. 
The study of artificial phospholipid bilayer membranes has revealed that sorbate cause significant increases in membrane conductance and proton permeability, mainly by acting as lipid soluble anions at neutral pH and as proton carriers when the pH approximates to the pK of the acid. 
The action of sorbate on membranes is thought to be exerted mainly through a disruptive effect on membrane structure. 
This weak acid has a pronounced effect on mitochondrial function, generating a decreased electron flow from substrate dehydrogenases to ubiquinone that in turn increases free electron “leakage” from the respiratory chain, electrons that then combine with molecular oxygen to produce superoxide (O2•−). 
A number of other moderately lipophilic compounds of food and drink relevance, notably ethanol and certain plant essential oils, including the widely used menthol generate ROS in a similar manner.

Safety & Storage
Safety: Generally recognized as safe (GRAS) by the FDA and the WHO, with an acceptable daily intake (ADI) of up to 25 mg/kg body weight. 
Pure bulk powder can be an irritant to skin, eyes, and the respiratory tract.
Storage: Because E202 Potassium Sorbate is subject to oxidation and moisture absorption, E202 Potassium Sorbate must be stored in well-closed, airtight containers, protected from light and moisture.

Potassium sorbate Properties
Melting point: 270 °C
Density: 1,361 g/cm3
vapor pressure: <1 Pa (20 °C)
FEMA: 2921 | POTASSIUM SORBATE
storage temp.: 2-8°C
solubility: H2O: 1 M at 20 °C, clear, colorless to faintly: yellow
form: Powder
pka: 4.69[at 20 ℃]
color: White to light cream
Odor: Odorless
PH Range: 8 - 11 at 580 g/l at 20 °C
PH: 7.8 (H2O, 20.1℃)
Water Solubility: 58.2 g/100 mL (20 ºC)
Merck: 14,7671
BRN: 5357554
Solubility: Highly soluble in water (58.2% at 20 °C); moderately soluble in propylene glycol and ethanol.
Mechanism: It halts microbial metabolism by disrupting enzymatic functions. 
E202 Potassium Sorbate works optimally in mildly acidic to neutral environments.
Stability: Stable. Incompatible with strong oxidizing agents.
InChI: 1S/C6H8O2.K/c1-2-3-4-5-6(7)8;/h2-5H,1H3,(H,7,8);/q;+1/p-1/b3-2+,5-4+;
InChIKey: CHHHXKFHOYLYRE-STWYSWDKSA-M

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