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252 Pharmaceutical Chemistry
Fermentative production of riboflavin from Lactococcus lactis
Sybesma et al. reported the overproduction of riboflavin and folate by metabolic engineering and direct mutagenesis using various strains of L. lactis. Roseoflavin is the analogue when L. lactis MG-1363 strain was exposed to riboflavin and thus the development of roseoflavin resistant strain (L. lactis CB010) exhibits deregulated riboflavin biosynthesis that leads into riboflavin production instead of consumption.

10.7 MICROBIAL PRODUCTION OF VITAMIN B12

Vitamins are one of the major essential and important nutritional constituents of living organisms, viz., humans, animals and microbes. Even very small amount of the vitamin is sufficient to the growth factors in the living organism. Vitamin B12 is one of the important vitamins of B-complex group (B1, B2, B3, B6 and folic acid) which acts as coenzyme or building blocks of several enzymes. Vitamin B12 is also known as cobamide or cobalamin and consists of a very complex structure which helps in the formation of red blood cells (RBCs). It contains co-porphyrin nucleus and is attached to ribose and phosphate. It also contains purine, benzimidazole or other chemical groups. It is water soluble in nature thus it needs to be supplied to the living organism.
Vitamin B12 is synthesized by commercial production of microbes. Various cobalamin derivatives are synthesized in the form of coenzyme along with vitamin B12. Rickes et al. in 1948, first time isolated vitamin B12 from Actinomycete and Streptomyces griseus. Vitamin B12 is generally synthesized from bacteria, fungi and Actinomycetes while large-scale production from intestinal and rumen bacteria were documented. Two types of vitamin B12 are reproduced by the microorganisms; one responsible for microbial growth and other normal growth in humans and animals. Previously, it was used for the treatment of anaemic patients. Many modified fermentation processes have been employed for the commercial production of vitamin B12 as follows:
1. Direct fermentation: Nutrient medium containing glucose is generally used with
Streptomyces olivaceus for carbon source where catalytic amount of cobalt chloride (CoCl At the end of incubation, growth is harvested before destruction of vitamin and mycelial autolysis followed by the filtration of broth to collect vitamin. Filter the mycelium while remaining mycelia are acidified (stabilize the vitamin during sodium sulfite) or may be treated with ethanol to recover rest of the vitamin. Sometimes mild heat is required for extraction due to the sensitiveness of vitamin to the heat. Sometimes a mycelium-vitamin B12 complex is dried and used to feed animals and birds. The mycelial growth is removed by filtering the acidified broth and the filtrate is evaporated under vacuum at room temperature followed by another purification using acetone and ion exchange resins. The commercial production of vitamin B12 is also executed by Bacillus megaterium, Propionibacterium freudenreichii, P. shermanii and Pseudomonas.
, <10 ppm) is added and then the process is carried out for five days at 27°C.
2
Fermentation 253
2. Indirect production: High concentration of vitamin B12 is found in sewage sludge. It is also formed by various antibiotic fermentation processes as a by-product, viz., fermentation production of streptomycin, aureomycin, grisein, and acetone­butanol, etc.
3. Genetic engineering: Genetic engineering techniques or genome shuffling can play a major role to modify the desired product. For example, rigorous strain mutations and recombination techniques have been developed for Streptomyces griseus to get better yield of vitamin B12.

10.8 PRODUCTION OF VITAMIN C (ASCORBIC ACID)

Vitamin C is also known by other names, viz., antisorbutic vitamin, L-Ascorbic acid, 3-oxo-L-gulofuranolactone (enol form), L-xyloascorbic acid and L-3-ketothreohexuronic acid lactone. It is a water-soluble vitamin and useful in formation of protein called collagen (form muscle, bones, blood vessels and cartilage, etc.) and also participates in
HO OH
O
O
Ascorbic acid
OH
OH
various biological regulation, maintenance, development and absorption of iron in the body. It can donate H-atom frequently and stabilizes the ascorbyl free radical, thus it can be used as a powerful antioxidant. It is also used as strong scavenger for the reactive oxygen, singlet oxygen, nitrogen oxides, superoxide radical ion, hydroxyl radical and hydrogen peroxide, etc. It also inhibits folic acid reductase enzyme, which is used to convert folic acid to folinic acid. It is also used to facilitate and enhance the iron absorption in the body. Severe deficiency of ascorbic acid may lead to scurvy and other common symptoms such as loosening of teeth, dry itchy skin, follicular hyperkeratosis, swollen gums, loss of hair and dryness of the eyes and mouth.
It can be synthesized by many methods using microbes, viz., biosynthesis of bacteria and algae. These microbes may be used as such, but yield is the concern. To improve the yield, genetically modified strains (Acetobacter suboxidans, Bacterium xylinum, Erwinia sp., Corynebacterium sp.) can be used. It requires high temperature and pressure to complete the synthesis due to its high energy consumption. Usually, Reichstein process (single fermentation step) is well known and adapted biosynthetic pathway for the production of vitamin C. The biosynthetic pathways have been explored to overcome these problems and need low energy.
10.8.1 Pathways for the Production of Ascorbic Acid
10.8.1.1 Microbiological Fermentation
Ascorbic acid can be produced by the microbiological fermentation (bacteria, and algae etc.). It can be produced by using various metabolic pathways.
1. Metabolic Pathway for Bacteria
A key intermediate 2-keto-L-gulonic acid to produce L-ascorbic acid. The widely accepted commercial bacterial fermentation processes to produce ascorbic acid are as follows:
254 Pharmaceutical Chemistry
(a) D-Sorbitol Pathway
Fermentation of 2-KLG via intermediate L-sorbosone is used in the production of sorbitol. Bacterial strains, viz., Pseudomonas and Acetobacter, have been used to catalyze the oxidation of D-sorbitol to 2-KLG which are usually catalyzed by either membrane bound or cystolic sorbosone dehydrogenase enzymes. Glucano oxydans strain can also be used to produce 2-KLG (60 g/L) from L-sorbosone or D-sorbitol used for these processes. Conversion of D-sorbitol to 2-KLG takes place in the presence of dehydrogenase but often depends on strain to strain. The cystolic reductase is used to determine the pathway of transferring D-sorbitol into cytoplasm of these strains, which helps to open the path of these intermediates in the pentose cycle. For reducing such problem, membrane cystolic enzyme may be replaced by bound dehydrogenase recombinant with Glucanobacter oxydans.
(b) 2-Keto-D-Gluconic Acid Pathway
D-glucose is converted to 2-KLG via D-gluconic acid, 2-Keto-D-gluconic acid and 2,5-Diketo-D-gluconic acid (2,5-DKG). There are no effective bacterial strains reported for catalyzing the complete conversion of D-glucose to 2-KLG. Basically, D-glucose to 2-KLG step is carried out in three main steps using different microorganisms as follows:
(a) Conversion of D-glucose into 2-keto-D-gluconic acid: This conversion can be
done using Acetobacter melanogenus and Pseudomonas albosesamae bacteria.
(b) Oxidation of 2-keto-D-gluconic acid: Oxidation of 2,5-DKG is carried out using
Bacterium hoshigaki and B. gluconicum while A. albosesamae can be used to direct conversion of D-glucose to 2,5-DKG.
(c) Oxidation of 2,5-DKG acid into 2-KLG: This conversion can be done using strains
of the genera Brevibacterium and Pseudomonas, and Corynebacterium.
Sometimes Erwinia strain (a mutant) may be used for conversion into 2,5-DKG. The conversion of D-glucose into 2-KLG can also be done using a mutant strain of Corynebacterium and genetically modified bacterial strains.
(c) Bioconversion of 2-KLG to L-Ascorbic Acid Pathway
Two methods have been used to convert 2-KLG into L-ascorbic acid. The first method includes multiple steps as follows:
 Under strong acidic condition, 2-KLG derivative esterifies to yield methyl-2-keto-L-
gulonate (MeKLG).
 MeKLG then reacts with base lead to metal ascorbate salt.  Metal ascorbate salt is treated with an acidulant leading to ascorbic acid.
The second method is a one-step process where acid-catalyzed cyclization leads to KLG. Multiple steps process in the first method and huge amount of HCl gas consumption are the main disadvantages of commercial production of ascorbic acid. To avoid these disadvantages, hydrolase enzyme can be used to convert ester of 2-KLG to L-Ascorbic acid. The conversion of 2-KLG to L-ascorbic acid is also performed using lactonases which is extracted from Zymomonas mobilis, Escherichia coli and Fusarium oxysporium (Fig. 10.7)
. Genetically modified strains may also be
.
Fermentation 255
CHO
H OH
HO H
H OH H OH
CH2OH
Glucose Gluconic acid 2-keto-D-
E1 = Glucose dehydrogenase E2 = Gluconic acid dehydrogenase E3 = 2-keto-D-Gluconic acid dehydrogenase E4 = 2,5-diketo-D-Gluconic acid reductase
E1 E2
2-KLG recovery
via crystallization
COOH
H OH
H
HO
H OH H OH
CH2OH
Fig. 10.7: Biosynthesis of ascorbic acid
HO H
H OH H OH
gluconic acid
Esterification
Lactonization
recovery
COOH
O
CH2OH
E3
HO OH
O
COOH
O
HO H
H OH
O
CH2OH
2,5-diketo-D­gluconic acid
O
Ascorbic acid
E4
OH
OH
COOH
O
HO H
H OH
HO H
CH2OH
2-keto-L-Gulonic
acid (2KLG)
Production of L-Ascorbic Acid from Yeast
Yeast can be incubated with L-galactose, L-galactono-1,4-lactone or L-galactono-1,4­lactone intermediates (from plants or animal pathway cells) produces L-ascorbic acid due to the enzyme activity during D-erythroascorbic acid pathway. Overproduction of L-ascorbic acid and D-erythroascorbic acid was obtained when supplied with D-galactono­1,4-lactone and D-arabinono-1,4-lactone, respectively, by using D-arabinono-1,4-lactone oxidase enzyme from Saccharomyces cerevisiae in E. coli. S. cerevisiae and Zygosaccharomyces bailii on incubation with L-galactose may increase the intracellular L-ascorbic acid accumulation.
Production of L-Ascorbic Acid from Algae
Many attempts are employed to use microalgae for the direct production of L-ascorbic acid from inexpensive feedstock. Low quantity of L-ascorbic acid (~40 mg/L) was obtained from heterotrophic green microalga (viz., Chlorella pyrenoidosa) in the fermentation process. Continuous chemical mutagenesis and fermentation optimization techniques may improve the amount by additional 2 g/L.
A colourless microalgae Prototheca moriformis is responsible to accumulate more L-ascorbic acid in the fermentation medium. Using this alga it is shown that a pH reduction could stabilize L-ascorbic acid in the fermentation reactor, so most of the L-ascorbic acid became harvestable from the medium. Strain-improvement of Prototheca mutants may increase and reduce the abilities to accumulate L-ascorbic acid. These mutants are used to identify the pathway for L-ascorbic acid biosynthesis which involves mannose containing intermediates. Similarly in the plants, l-galactono-1,4-lactone is produced from D-glucose through GDP-D-mannose, GDP-l-galactose and l-galactose. Finally, l-galactono-1,4­lactone is converted into L-ascorbic acid (Fig. 10.8).
256 Pharmaceutical Chemistry
Fig. 10.8: Production of ascorbic acid using algae
2. Metabolic Pathway for Plants
It was proposed that oxidation of L-galactose is used to synthesize ascorbate in plants. The enzymatic steps of non-inverted conversion of glucose to ascorbic acid are summarized as follows:
(a) Oxidation of the C1 of glucose, (b) C2/C3 oxidation, (c) C5 epimerization, (d) Lactonization between C1 & C4.
Hexose-phosphates can be converted into D-mannose in the presence of catalyst phosphomannose isomerase (PMI, isolated from E. coli) enzyme. Conversion of D-mannose­6-phosphate to D-mannose-1-phosphate is generally catalyzed by phosphomannose mutase (PMM) enzyme. D-mannose-1-phosphate resulted into GDP-D-mannose where GTP is catalysed by GDPD-man-pyrophosphorylase (GMP) enzyme. GDP-D-mannose­3,5-epimerase (GME) (isolated from Chlorella pea, algae Prototheca and also cloned from A. thaliana) is used to convert GDP-D-mannose to GDP-L-galactose by a reversible double epimerization. GDP-D-mannose and GDP-L-galactose are also involved in the synthesis of polysaccharide and protein glycosylation. GDP-L-galactose is converted to L-galactose-1­phosphate and GDP by a specific phosphate-dependent GDP-L-galactose phosphorylase enzyme. Finally, oxidation of L-galactose takes place in two steps, first cytosolic NAD-dependent L-galactose dehydrogenase (L-GalDH) enzyme at C-1 is used to form L-galactono-1,4-lactone (L-GalL) and then L-GalL dehydrogenase (L-GalLDH) at C-2/C-3 used for the ascorbate production while antisense suppression of LGalDH and L-GalLDH leads to reduction in ascorbate concentration. Thus, the predominant pathways for the production of ascorbate are D-mannose and L-galactose while uronic acid intermediates may lead to the ascorbate content of plant tissues.
3. Metabolic Pathway for Animals
The production of ascorbic acid from D-glucose in animals is given as
Fermentation 257
:
UDP-Glucose
UDP-
Glucuronate
D-Glucuronate L-Gulonate
L-Gulono-
1,4-lactone
L-Ascorbic acid
Another source of ascorbic acid is sea lamprey (vertebrates), but most of the species, viz., teleost fishes, bats, Passeriformes birds, guinea pigs, humans, etc., have lost their biosynthetic capacity to produce ascorbate while amphibians, fishes and reptiles are able to synthesize ascorbate in the kidney, and some mammals are able to produce it in the liver. In animals, D-glucuronate was synthesized biosynthetically from UDP-glucuronate which later further reduced to ascorbate precursor called L-gulonate. In plants, L-galactono lactone was synthesized biosynthetically to ascorbate precursor called GDP-D-mannose using L-galactono lactone dehydrogenase enzyme.
Commercial Production of Ascorbic Acid
Earlier, ascorbic acid was extracted from plant in commercial production (Fig. 10.9) while major commercial production of ascorbic acid is, by chemical synthesis. Presently, it is produced by two processes:
(a) Reichstein process: It is a traditional process generally used to convert glucose to
sorbitol by heat treatment. Then sorbitol is fermented and oxidised in the presence of a microorganism to yield sorbose thereby, reaction between sorbose and acetone yielded in di-acetone sorbose which further gets oxidised to di-acetone keto gulonic acid (DAKS). Then DAKS is dissolved in a mixture of organic solvents using catalyst to yield vitamin C followed by recrystallization.
Glucose Sorbitol
Δ
Fermentation
Sorbose Diacetone sorbose
DAKS Crude Vitamin C
Reichstein-Grussner synthesis Sorbitol fermentation Glucose fermentation
D-Glucose
Hydogenation
D-Sorbitol
Fermentation
L-Sorbose
Acetonization
Diacetone-L-sorbose
Oxidation Hydrolysis
2-Keto-L-gulonic acid
Esterification
Methyl-2-keto-L-gulonic acid
Lactonization
Fig. 10.9: Process routes to ascorbic acid
Fermentation
Fermentation
Recrystallisation
L-Sorbose Fermentation
Ascorbic acid
Pure Vitamin C
one-step process
Chemical processing
technology
258 Pharmaceutical Chemistry
(b) Two-step fermentation process: This process was developed in China. In this
process, fermentation of sorbose yielded in KGA which later converted into crude vitamin C followed by recrystallization. This process is more appealing and cost effective for the production of ascorbic acid.
Glucose Sorbitol
Δ
Crude Vitamin C
Fermentation
Sorbose KGA
Recrystallisation
Pure Vitamin C

QUESTIONS

1. What is submerged fermentation? Explain in detail.
2. What are the advantages of solid state fermentation over submerged fermentation?
3. How you will explain anaerobic fermentation?
4. What are the differences between aerobic fermentation and anaerobic fermentation?
5. What are immobilization cell bioreactors? Explain its advantages.
6. What are the advantages of immobilized enzyme bioreactors?
7. Write a short note on ethanol fermentation.
8. How is citric acid production carried out by using SmF and SSF?
9. What are antibiotics and how are they isolated by fermentation process?
10. Write a short note on liquid fermentation.
11. Explain the fermentation process of the following: (a) Cephalosporin (b) Penicillins (c) Chloramphenicol (d) Streptomycin (e) Lysine (f) Glutamic acid (g) Vitamin B2 (Riboflavin) (h) Vitamin B12 (i) Vitamin C
12. How does biosynthesis of streptomycin work?
13. How can raw protein material be hydrolysed?
14. How is glutamic acid produced using alkaline hydrolysis of Steffen’s molasses?
15. Describe the metabolic pathways for bacteria for the synthesis of ascorbic acid.
16. Describe the metabolic pathways for animals for the synthesis of ascorbic acid.
17. How is Reichstein process useful for the commercial production of ascorbic acid?
11
Medicinal Importance of Curcumin,
Neem, Vitamin C, Ranitidine, Ginger, Tulsi,
Garlic and Ajwain

11.1 MEDICINAL IMPORTANCE OF HALDI OR CURCUMIN (Curcuma longa)

Curcumin, generally obtained from turmeric, has characteristic crystalline yellow colour (sometimes orange yellow colour) due to the curcuminoids. Curcumin (C component from turmeric. The turmeric plant Curcuma longa belongs to the ginger family called Zingbereceae. This perennial herb is extensively cultivated specially in South Asia. The rhizome (root) is the most active and medicinally important part of the plant.
Curcumin (Curcumin-I) was first isolated in 1815, and identified as 1,6-heptadiene-3,5­dione-1,7-bis(4-hydroxy-3-methoxyphenyl)-(1E,6E) or diferuloylmethane (Fig. 11.1) in 1870 while structurally described in 1913 by Lampe & Milobedeska. Demethoxycurcumin (Curcumin-II), bisdemethoxycurcumin (Curcumin-III) and cyclocurcumin are the major curcuminoids isolated from turmeric with a ratio of 77:17:3% respectively. It possesses several functional groups, viz., phenols, D,E-unsaturated carbonyl groups, etc. The diketone forms stable enols, which can be easily deprotonated and form enolates, whereas D,E-unsaturated carbonyl groups can undergo nucleophilic addition easily.
The major use of turmeric is in the treatment for wide range of ailments, colouring agents and dietary spices (Fig. 11.2). It can be used as pain reliever in case of osteoarthritis when 2 gm dose of Curcuma domestica extract is used daily. This medication relieves pain at the same rate as ibuprofen. It also helps to inhibit blood clotting. Administration of crude turmeric with milk is the best home remedy for the treatment of variety of wounds and inflammations. It can also be used as an antioxidant, free-radical scavenger, oxidative DNA damage and lipid peroxidation inhibition. Since ancient times, it has been widely used in traditional Indian medicine in the treatment of biliary disorders, hepatic disorders, anorexia, cough, rheumatism, sinusitis, diabetic wounds, etc. It also helps to reduce blood cholesterol to prevent LDL oxidation, Alzheimer’s disease, myocardial infarction, inhibits platelet aggregation, rheumatoid arthritis, suppresses thrombosis and type-II diabetes suppression, multiple sclerosis, increases bile secretion, inhibition of HIV-replication,
21H20O6
) is the most active bioactive
260 Pharmaceutical Chemistry
Arthritis
Cardiovascular diseas
protects from liver injury, and protects from pulmonary toxicity and fibrosis, protects from cataract formation. It also acts as an antileishmaniasis and an antiatherosclerotic.
Fig. 11.1: Structure of curcumin
Antiagiogenic
Antiinammatory
Inhibits scarring
Cataract formation
Gall stones
formation
Inammatory
bowel disease
(Cholesterol, platelet
aggregation)
HIV replication
Multidrug resistance
Diabetes
Septic shock
CURCUMIN
e
Lung brosis
Cardiotoxicity
Fig. 11.2: Medicinal properties of curcumin
Antioxidant
Liver injury
Nephrotoxicity
Chemotherapeutic
Chemopreventive
(Skin, liver, colon,
smooth muscle cell
Stimulates muscle
Multiple sclerosis
Immunosuppressive
Wound healing
stomach)
Inhibits vascular
proliferation
Alzheimer’s disease
regeneration
Medicinal importance of Curcumin, Neem, Vitamin C, Ranitidine, Ginger, Tulsi, Garlic and Ajwain 261

11.2 MEDICINAL IMPORTANCE OF NEEM (Azadirachta indica)

The evergreen and fast growing tree neem is commonly found in India, Africa and America. This plant plays a key role in the prevention and control of various diseases. Since last 400 decades, it has been used continuously in Indian classical system of healing, i.e., Ayurveda, due to its diverse medicinal characteristics. In Sanskrit neem is named as ‘arista’ that means ‘perfect’, ‘reliever of sickness’ and ‘Sarbarogaribarini’. Neem tree is also regarded as ‘Village dispensary’, ‘Village pharmacy’, and ‘Panacea for all diseases’ in India. In 1992, US National Academy of Sciences mentioned a slogan, “Neem: a tree for solving global problems” due to its diverse medicinal importance. This plant is used in several ceremonies, worship and rituals of Hindu religion. Each part of the plant is used traditionally as medicine.
The botanical name of neem is Azadirachta indica, given by De Jussieu in 1830. The taxonomic description of neem is as follows: Order: Rutales, Suborder: Rutinae, Family: Meliaceae (Mahogany family), Subfamily: Melioideae, Tribe: Melieae, Genus: Azadirachta, Species: indica.
Two species, Azadirachta indica and A. Juss belong to the Indian subcontinent whereas A. excels belong to Philippines and Indonesia. Numerous medicinally important components are isolated from the neem plant and can be classified into three classes on the basis of their structure: isoprenoids, nonisoprenoids and others. Isoprenoid class of bioactive components includes diterpenoids and triterpenoids (viz., azadirachtin, azadirone derivatives, protomeliacins, salanin, limonoids, gedunin derivatives and vilasinin and csecomeliacins like nimbin) whereas nonisoprenoid class of bioactive components includes carbohydrates (polysaccharides), proteins (amino acids), sulphur containing compounds, polyphenolics (coumarins and tannins, flavonoids and their glycosides, dihydrochalcone and aliphatic compounds, etc.). Other bioactive components extracted from neem tree are azadirachtin, nimbin, salanin, meliacin, valassin, gedunin and tignic acid (5-methyl-2-butanic acid from neem seed oil), etc. Although a huge number of bioactive components have been isolated from neem as a whole, few are studied for their biological activity as shown in Table 11.1 and Fig. 11.3 and also discussed as follows:
1. A major and bitter pharmacophore Nimbidin is extracted from the neem oil. Other
bioactive components such as nimbidic acid, nimbolide, nimbin, nimbidinin, nimbinin and tetranortriterpenes are also isolated from the neem extract.
2. Neem gum is a rich source of proteins.
3. Nimbidin and sodium nimbidate are active as anti-inflammatory against formalin-
induced arthritis and carrageenan-induced acute paw-oedema in rats as a dose dependent manner.
4. Nimbidin is very useful to prevent stress, serotonin induced gastric lesions,
acetylsalicylic acid, histamine/cysteamine-induced duodenal ulcers, indomethacin and carbachol-stimulated gastric acid output.