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Herbal Medicines fortheManagement
https://t.me/medicina_free
ofDiseases onVitamin Deficiency
SathiSarkar, AnishKumarDas, andSatheeshKumarNanjappan
Abstract
Vitamins are the key ingredients for the proper function­ing of the body. Though it is needed in very small quanti­ties, this does not reect their role. Except for some vitamins, others will be obtained through diet. If the required quantities are not met by the diet for a long time, then deciency symptoms develop. Untreated deciency symptoms progress to deciency disease or disorder, which can result in death or a very unpleasant life. Herbal remedies are the most ancient form of treatment. Most of the old civilizations have their own natural treatment cul­tures. One of the most signicant advantages of these herbal remedies is their chemical and biological diversi­ties and negligible side effects. Considering these fea­tures, there is interest in shifting from synthetic medicine to herbal or natural remedies. Many of the market surveys show the prominent trend of this shift and predict this natural product industry will be a $100 billion industry. In this context, herbal remedies are also an alternative for countering vitamin deciency and its symptoms. This book chapter focuses on the available herbal remedies for vitamin deciency. Along with that, we focus on the natu­ral sources that contain the highest amount of respective vitamins, which can be used for the future development of herbal remedies, and we also raise awareness for the natu­ral treatment of vitamin deciency. Plants and plant­derived products are an important part of the human diet and a major source of biologically active substances such as vitamins, dietary bre, antioxidants, and cholesterol­lowering compounds. Though there is abundant informa­tion, plant nutrition has not been dened. Trial-and-error methods were used to identify several plant nutrients and health-promoting chemicals. Chromatography, mass
S. Sarkar · A. K. Das · S. K. Nanjappan (*) Department of Natural Products, National Institute of Pharmaceutical Education and Research (NIPER) - Kolkata, Kolkata, West Bengal, India e-mail: satheesh.niperk@nic.in
spectrometry, infrared spectroscopy, and nuclear mag­netic resonance (NMR) allowed quantitative and qualita­tive analyses of plant metabolites around the turn of the century. Plant biologists developed new techniques for detecting and identifying phytochemicals. This section of the chapter discusses the qualitative and quantitative pro­cedures of vitamin analysis. We also discuss different analytical approaches for the analysis.
Keywords
Vitamin deciency · Lifestyle diseases · Herbal medicines
1 Introduction
Vitamins are a group of incredibly complicated organic mol­ecules widely distributed in nature and absolutely required in the human diet. It plays a signicant role in the human body’s normal growth, development, and metabolism. Thirteen vita­mins have been identied as essential to human nutrition and have been split into two categories based on solubility [1]. Fat-soluble vitamins comprise vitamin A, vitamin D, vitamin E, and vitamin K.Water-soluble vitamins comprise vitamin C (ascorbic acid), vitamin B complex, as well as avonoids (vitamin P) (Fig.1). Fat-soluble vitamins are related to fats and are absorbed with dietary lipids. The fat-soluble vitamins are absorbed in a similar way to the lipids. Water- soluble vita­mins are not connected with fats and are unaffected by changes in fat absorption [2]. The biological activity of vari­ous vitamins is linked to a group of structurally related mol­ecules known as vitamers. In most situations, vitamers with the same vitamin have similar qualitative biological attributes to one another, but their potency varies due to tiny changes in their chemical structures. Since the human body cannot syn­thesize vitamins, consuming them through diet is necessary. Vitamin insufciency leads to severe or even deadly disor­ders. Vitamin deciency is linked to certain diseases, such as vitamin A’s link to blindness, vitamin B1’s link to beriberi,
© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2023 A. K. Dhara, S. C. Mandal (eds.), Role of Herbal Medicines, https://doi.org/10.1007/978-981-99-7703-1_17
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Fig. 1 Classication of vitamins
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vitamin B3’s link to pellagra, vitamin B6’s link to anaemia, vitamin C’s link to scurvy, and vitamin D’s link to rickets. Thus, the deciency of vitamins affects the health and well­being of millions worldwide. The decit symptoms can also be treated by replenishing these nutrients [3].
Throughout the history of civilization, herbal medicines have been used to cure human ailments in every possible con­dition. Traditionally herbal medicine has been used in many countries against various diseases. Ancient people believed in and used plants and herbal remedies to heal illnesses. For pri­mary health, 80% of the world’s demography depends on herbal medicine [4]. Herbal medicines are natural products that are isolated from plants. Natural products have attracted interest over millions of years and are consequently being used in modern medicine. Natural products have a wide extent of chemical variety, i.e. they have multi- dimensional structures, and hence biological activities are abundant. Natural products play an increasingly important role as scien­tists continue to discover and rene new medications and lead compounds through various approaches. Therefore, these treatments have evolved from ancient or herbal therapies and natural resources, 90–95% of drugs used to be made from natural sources until high throughput screening was intro­duced to the drug discovery process [5]. Information on the source of new drugs during 1981–2007 species that approxi­mately 50% of the drugs are based on natural products [6]. As herbal medicine contains naturally occurring bioactive con­stituents and nutritive substances, vitamin deciency disor­ders can be cured using herbal medicines.
2 Role ofVitamins intheBody
Vitamins have a crucial role in maintaining health, yet only a tiny amount of them is required each day. Numerous cellular processes rely on them, including cell division and develop­ment, but their primary job is converting food into usable energy.
• Vitamin A helps teeth, bones, soft tissue, mucous mem-
branes, and skin grow and stay healthy.
• Vitamin D is called the “sunshine vitamin” because the body makes it from sunlight. Most people at most lati­tudes need 10–15min of exposure 3 times a week to syn­thesize enough vitamin D.Sun-deprived people may not produce enough vitamin D. Food alone cannot provide enough vitamin D.Vitamin D absorbs calcium. Calcium promotes healthy teeth and bones. It maintains calcium and phosphorus blood levels.
• Tocopherol, or vitamin E, is an antioxidant. It helps in vitamin K usage of the body and erythrocyte production.
• Blood clots cannot form without vitamin K (coagulate). There is evidence from scientic research that it benets bone health.
• Vitamin C (Ascorbic acid) is an antioxidant that helps keep teeth and gums healthy. It enables the body to take in iron and keep its tissues healthy. It is also vital for healing wounds.
• Thiamine (vitamin B1) helps the body’s cells turn carbs into energy. Getting enough carbs is very important in pregnancy or nursing conditions. It is also crucial for a healthy heart and nerve cells.
• Riboavin (vitamin B2) helps the other B vitamins prop­erly function in the body. It is also required for the growth and formation of red blood cells.
• Niacin is a vitamin that keeps skin and nerves healthy. At higher doses, it can also help lower cholesterol.
• Pantothenic acid (vitamin B5) is needed for the body to break down food. It also has something to do with the making of hormones and cholesterol.
• Vitamin B6 makes red blood cells and keeps the brain running well. This vitamin is also an important part of the proteins in the body, which are used in many chemical reactions.
• Folate and vitamin B12 work together to help make red blood cells. It is needed to make DNA, which controls how tissues grow and how cells work. Folate is important for any woman who is pregnant. Spina bida and other birth defects can happen when there is not enough folate in the body. Folate is now added to a lot of foods in the form of folic acid [7].
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Fig. 2 Dietary sources of vitamins
3 Dietary Sources ofVitamins
Vitamins are considered “vital” since the body cannot pro­duce them and must get them from the diet. Vitamin D boosts calcium absorption, whereas iron absorption is enhanced by vitamin C, and the B vitamins collaborate within cells. Most vitamins need to be consumed consistently rather than stored in the body, unlike vitamins A, E, and B12. Eating a variety of foods from the four main food groups such as (1) vegeta­bles and fruits, (2) grain foods, (3) milk and milk products, and (4) legumes, nuts, seeds, sh and other seafood, eggs, poultry and red meat with the fat removed will help to achieve daily vitamin needs [810]. The dietary sources of vitamins are shown in Fig.2.
4 Causes ofVitamin Deciency
Inappropriate eating habits often cause vitamin deciencies. Vitamins are a range of complex compounds found in vari­ous plant and animal-based foods. The daily requirement of vitamins is shown in Table1. There are multiple food sources for each vitamin; some foods are fortied with vitamins. Milk, for instance, has vitamin D added to it and naturally
Table 1 Vitamins and their required quantity
Required quantity Men (intake per
Vitamins Vitamin A Thiamine (B1) 1mg 0.8mg Riboavin (B2) 1.3mg 1.1mg Niacin (B4) 16.5mg 13.2mg Pantothenic acid
(B5) Pyridoxine (B6) 1.4mg 1.2mg Biotin (B7) Folic acid (B9) Cyanocobalamin
(B12) Vitamin C 40mg Vitamin D Vitamin E 4mg 3mg Vitamin K
day) 700μg 600μg
6mg 4mg
30μg 25μg 400μg 2μg
10μg
70μg 60μg
Women (intake per day)
includes calcium (a mineral, not a vitamin). Numerous vita­mins are typically added to cereal, rice, and pasta. While proper vitamin intake from food sources is important, absorption issues can also arise from medical problems. Nutritional vitamin deciency can be caused by any or all of
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Fig. 3 Causes and symptoms of vitamin deciency
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the subsequent factors: inadequate consumption, poor absorption, inadequate use, increased need, increased excre­tion, and increased degradation in the body. The causes and symptoms of vitamin deciency are shown in Fig.3.
4.1 Dietary Risk Factors
Some eating plans are put at risk for vitamin deciencies. Vegans and vegetarians are more likely to be decient in vitamin B12 and biotin since these diets exclude animal sources. There is a possibility of vitamin D deciency if dairy products are avoided. Grain products, typically enriched with vitamins in addition to their natural vitamin content, are scarce in a gluten-free diet. As a result, maintain­ing a gluten-free diet might result in vitamin deciencies, notably in B vitamins such as thiamine and folate. A lack of vitamin E and K can occur on a diet high in processed foods and low in fresh fruits and vegetables [11].
4.2 Sunlight
Foods, including seafood, eggs, and dairy products, are good sources of vitamin D.Sun exposure can also provide vitamin D.Vitamin D insufciency can be brought on by not getting enough sun. Generally, this happens in the winter in areas with a chilly environment [12].
4.3 Medical Illness
A range of diseases can hamper vitamin absorption and metabolism. Vitamin deciencies typically result from vari­ous medical conditions, e.g. alcoholic liver disease, liver fail­ure, kidney disease, chronic diarrhoea, malabsorption syndrome, gastric bypass, inammatory bowel disease, Crohn’s disease, irritable bowel syndrome, and pernicious anaemia [13].
5 Symptoms ofVitamin Deciency
Symptoms of vitamin insufciency range from lethargy to dry skin and hair to low mood to slow healing of wounds. However, many of the symptoms shared by different decits are similar. Most people exposed to low amounts for a while will not see any visible signs until after a few months. The causes and symptoms of vitamin deciency are shown in Fig.3.
5.1 Fatigue andWeakness
Tiredness could be a sign of a vitamin D, B vitamin, or vita­min C deciency. If the body does not acquire enough vita­min D, bones and muscles may suffer, as well as fatigue and weakness. Evidence links vitamin D deciency to weariness,
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and studies show that supplementing with vitamin D can help treat this problem [14]. Anaemia, brought on by a lack of folate, is a common cause of tiredness and weakness. Because of a deciency in healthy red blood cells, oxygen cannot be delivered to the body’s organs and tissues. The body cannot function properly without oxygen, a vital energy source [15].
5.2 Dry Skin andHair
Dry hair and cracked skin are common signs of vitamin A deciency. Vitamins B, C, and D also show similar symp­toms [1618].
5.3 Depression
Vitamins B1, B3, B9, B12, vitamin C, and vitamin D de­ciencies can sometimes cause clinical depression [1921].
5.4 Easy Bruising andBleeding
Easy bruising and bleeding can be caused by issues with blood coagulation, sluggish healing, or collagen develop­ment. (Collagen strengthens the blood vessel wall.) Signicant vitamin deciencies that can cause easy bruising or bleeding are vitamin C and vitamin K (mainly in neo­nates) [22, 23].
5.5 Poor Wound Healing
In case of poor wound healing, sores take longer to cure. Different vitamins, such as vitamins A, B, C, D, and K, are helpful in this healing process. Some of them promote col­lagen formation, while others aid in the healing of certain cell types or tissues and boost cellular health through the antioxidant action [24, 25].
5.6 Predisposition toInfections
Deciency of some vitamins damages the system and can make it more prone to infections and infectious disorders.
Examples of associated vitamins are—vitamins A, C, and D [26, 27].
5.7 Bone Fracture
Bone health and strength depend on numerous vitamins, including vitamins B6, B9, B12, C, D, and K.There is some debate as to whether or not taking nutritional supplements can reduce the incidence of fractures, even though evidence shows the deciency of these vitamins can reduce bone den­sity and eventually lead to fractures [28].
5.8 Skin Colour Changes
Loss of pigmentation in spots, hyperpigmentation, and over­all pallor are probable outcomes of vitamin deciency­induced alterations to the skin’s hue. Possible causes of hypopigmentation and spotlightening include decits in vita­min D (in light-skinned people).
Darker pigmentation can be due to vitamin B12 and D (in
dark-skinned people). Deciencies that can cause generally pale skin include vitamin C, vitamin B6, B9, and B12 [29]. Specic vitamin deciency diseases for each vitamin are listed in Table2.
Table 2 Types of vitamin deciency diseases
Vitamin Deciency diseases Vitamin A Night blindness, xeropthalmia,
keratomalacia Vitamin D Rickets, osteomalacia Vitamin E Neuromuscular, neurological disorders Vitamin K Reduced blood clotting leading to
excessive bleeding Vitamin B1 (Thiamin) Beri-beri Vitamin B2 (Riboavin) Retarded growth, bad skin Vitamin B3 (Niacin) Pellagra: dermatitis, dementia,
diarrhoea Vitamin B5 (Pantothenic
acid) Vitamin B6 (Pyridoxine) Anaemia Vitamin B7 (Biotin) Alopecia and perioricial dermatitis Folic acid Megaloblastic anaemia Vitamin B12
(Cyanocobalamin) Vitamin C Scurvy
Huntington’s disease
Pernicious anaemia
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6 Deciency Disorders ofVitamins
andTheir Herbal Remedies
6.1 Vitamin A
Vitamin A is a lipid-soluble compound that is a necessary ingredient for human growth, survival, and the maintenance of the immune system, eyesight, and eye health [30]. It is available as a preformed vitamin (retinol) in dairy products, eggs, meat, and sh liver oil like cod liver oil [31]. Provitamin A or beta carotene is another vitamin A in dark green leafy vegetables and deep orange fruits.
6.1.1 Deciency Disorders
Due to various causes, vitamin A deciency and overcon­sumption are common in society, with both conditions result­ing in poor health. However, vitamin A insufciency is still a signicant issue in South Asia and Africa, particularly among preschool-age children and women of reproductive age, most commonly at its nutritional deciency and its adverse health consequences. The most severe clinical effects of vitamin A, like corneal xerophthalmia, severe sickness, and mortality, are most prevalent in older infants and young children of 6–59months. In all groups with vitamin A deciency, pre­ventive supplementation should be given rst attention [32].
A lack of vitamin A results in ocular surface (OS) abnor­malities such as severe dry eye disease (DED), corneal punc­tate keratopathy, and goblet cell loss that progresses until they are absent. Extreme involvement causes keratinization and epithelial metaplasia, leading to xerophthalmia (OS keratinization with Bitot spots) and keratomalacia [33]. Xerophthalmia can also be directly caused by a vitamin A decit. A condition in which the cornea swells up, the con­junctiva (the eye’s covering) dries up, and the eyes get ulcer­ated, known as dry eye disease. Although the cause was unknown, early civilizations’ records and traditions indi­cated that eating animals and sh livers had healing proper­ties. Vitamin A should consequently be administered to everyone who has xerophthalmia.
6.1.2 Herbal Medicine forVitamin ADeciency
6.1.2.1 Antioxidants
Night blindness, cataract, and glaucoma can all be treated with herbal remedies. Since oxidative stress plays a crucial role in the pathogenesis of several common eye ailments, numerous studies have proven that herbal medications include a variety of antioxidants that may be effective for eye protection.
6.1.2.2 Carotenoids
The xanthophyll family of carotenoids, which includes lutein and zeaxanthin, is frequently found in tomatoes, Chinese wolfberries, and carrots. Additionally, lutein protects the retina from the oxidative stress brought on by diabetes [34].
6.1.2.3 Omega 3 Fatty Acid
Since oxidative stress has a major role in the pathogenesis of numerous common eye ailments, several studies have proven that herbal medications include a variety of antioxidants that may be effective for eye protection, which are essential fatty acids, crucial for maintaining good health. However since the body cannot synthesize them, they must be consumed through diet. Algal oil, axseed oil, and sea buckthorn seed are typical plant sources [35]. Numerous studies have been conducted on these omega-3 fatty acids’ role in maintaining eye health.
6.2 Vitamin D
The fat-soluble vitamin 1a-25-dihydroxyvitamin D3 (vita­min D) is essential for human health and plays a role in bone metabolism, immunological function, and calcium homeo­stasis. Vitamin D is abundant in sh liver oils and several saltwater species, including herring, salmon, and sardines. The food chains from plankton are likely the source of the vitamin D found in sh liver.
6.2.1 Deciency Disorders
Two metabolic bone illnesses, i.e. osteomalacia in adults and rickets in children, are known to be triggered by a lack of vitamin D [36]. Vitamin D insufciency correlates to various chronic medical disorders, including osteoporosis, myopa­thy, lung illness, increased inammation, and lowered immu­nity [37].
The lack of vitamin D has also been related to several cardiovascular risk factors [15]. Vitamin D deciency can increase the generation of reactive oxygen species and the G protein RhoA by boosting the synthesis of renin and angio­tensin II. Insulin resistance and metabolic syndrome are brought about by inhibiting intracellular glucose transporter pathways [17]. A typical ricket symptom is decreased Ca and P in the organic matrix of bone and cartilage. Since all three nutrients are essential for healthy bone production, the indi­cations and symptoms are identical to those of a deciency of Ca, P, or both. Osteoporosis is characterized by a loss in bone mass that can cause fractures with just minor damage. Rickets is caused by improper growth plate mineralization
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and is almost always found in developing youngsters. On the other hand, osteomalacia is caused by improper mineraliza­tion of the prefabricated osteoid and occurs in both adults and children in addition to rickets [36, 38]. When the bone mass is too low, skeletal integrity and mechanical support can no longer be preserved, and fractures can happen with little to no damage.
There are three different types of treatment for vitamin D deciency: supplementation, natural ultraviolet B radiation, and sunshine. Every form of treatment has potential draw­backs and advantages [39]. Based on these ndings, foods like milk and butter are now irradiated with UV light to increase their vitamin D content, and so help eliminate rick­ets as a major health problem around the world.
6.2.2 Herbal Medicine forVitamin D Deciency
For osteomalacia and rickets, Bladderwrack (Fucus vesicu­losis) is used. Comfrey decoction and tincture Calendula
(Marigold) are also used to treat osteomalacia and rickets. As an alternative to Comfrey, fenugreek seeds might be utilized. Fenugreek and St John’s Wort tablets and capsules benet from treating osteomalacia and rickets. Herbs like Chamomile, Dandelion, Clivers, Horsetail, Meadowsweet, Coltsfoot, Mistletoe, Plantain, Scarlet Pimpernel, Silverweed, Toadax, and Shepherd’s Purse can be consumed as teas, powders, tablets, or capsules. A herbal combination of Comfrey, Horsetail, Kelp, Lobelia, Marshmallow root, Oats, and Parsley root can also be used for the treatment. Along with this, exposure to sunlight is a supportive treatment option for vitamin D deciency disease [40]. Osteomalacia is also treated using tablets or capsules prepared from Bamboo gum, Black Cohosh, Echinacea, Kelp, and Prickly Ash.
6.3 Vitamin E
Different lipid soluble components were rst identied in 1922 by Evans and Bishop and were later grouped under the label “vitamin E” [41]. The vitamin E group together, known as chroman-6-ols or tocochromanols, is divided into tocoph­erols (α, β, γ, and δ tocopherols) and tocotrienols (α, β, γ, and δ tocopherols) that are present in food containing vitamin E as a whole [42]. Plants synthesize tocopherol and tocotrienol from homogentisic acid. Only α tocopherol satises the human vitamin E needs, even though these forms have anti­oxidant properties but cannot be transformed into one another [43]. Vegetable oils are one of the primary dietary sources of vitamin E.Vitamin E may also be found in nuts in reasonable amounts. For instance, vitamin α T is primarily present in peanuts, almonds, and sunower seeds, whereas vitamin γ T is the main vitamin E in walnuts, pecans, pista­chios, and sesame seeds [44, 45]. Compared to other oils,
soybean, sunower, maize, walnut, cottonseed, palm, and wheat germ oils have comparatively greater vitamin E con­centrations (more than 50mg of vitamin E/100g oil) [43,
46].
For a diet high in vitamin E to work well, it must also be abundant in foods high in these other nutrients. α-Tocopherol is the predominant form of vitamin E in the circulation, although γ-tocopherol is consumed in relatively higher amounts from the diet than α-tocopherol due to the preferen­tial binding afnity of the α-tocopherol transfer protein (α-TTP) for tocopherol. Transfer of α-tocopherol to the plasma membrane involves α-TTP [47].
In order to prevent lipid peroxidation and shield cell membranes from oxidative damage, vitamin E is the rst line of defence [48]. Different experiment reports show that a combination of tocopherols had a higher inhibitory impact than alpha-tocopherol alone on lipid peroxidation in human erythrocytes. Its ability to scavenge peroxyl radicals also safeguards the polyunsaturated fatty acids in plasma lipopro­teins and membrane phospholipids [49]. It has been discov­ered that although gamma-tocopherol captures and neutralizes the existing free radicals, the production of new free radicals is mainly prevented by alpha-tocopherol. Several ailments and diseases, including cancer, ageing, arthritis, and cataracts, have been related to oxidation. As a result, vitamin E may aid in the prevention or postponement of chronic disorders caused by reactive oxygen species molecules.
It has been discovered that elevating the level of alpha­tocopherol in endothelial cells prevents platelet aggregation and causes the endothelium to produce prostacyclin. This impact was brought on by the dysregulation of the vascular cell adhesion molecule (VCAM-1) and the intracellular cell adhesion molecule (ICAM-1), which reduced the adherence of blood cell constituents to the endothelium. Additionally, when vitamin E activates cytosolic phospholipase A2 [50] and cyclooxygenase 1 [51] in the arachidonic acid cascade, more prostacyclin is released, which acts as a signicant vasodilator and inhibitor of platelet aggregation in humans [52]. Protein phosphatase 2A is activated by vitamin E, which increases PKC-dephosphorylation and reduces pro­tein kinase C (PKC) activity. Vitamin E has also been shown to inhibit PKC in a number of different cell types, which has been shown to inhibit platelet aggregation, reduce the prolif­eration of monocytes, macrophages, neutrophils, and vascu­lar smooth muscle cells, and reduce the production of superoxide in neutrophils and macrophages [42, 53].
6.3.1 Deciency Disorders
Vitamin E insufciency creates a specic neurological ill­ness. It typically results from malabsorption aggravating chronic cholestasis, abetalipoproteinemia, celiac disease, or cystic brosis [54]. Malabsorption is a common cause of