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Role ofNatural Polysaccharides
https://t.me/medicina_free
intheManagement ofLifestyle Diseases
ShuvamSar, TanmoyBanerjee, AnkitKumar, ArunBaidya, SaptapadiSaha, JayashreeMondal, RituparnaChaki, AmitKumarHalder, andNilanjanGhosh
Abstract
Metabolic syndrome (MetS) affects 20–25% of adults and as many as 19.5–20% of adolescents. MetS negatively impacts multiple physiological processes. Natural com­pounds have an exceptionally bright aspect with a promis­ing alternative to synthetic medications. Plant polysaccharides (PPSs), which are made up of at least ten monosaccharides, exhibit excellent safety and a range of pharmacological actions, such as anti-apoptotic, antihy­perglycemic, antihyperlipidemic, antioxidant, and anti­brotic benets. However, the benets of numerous PPS for metabolic disorders, including gastroesophageal reux disease, cardiovascular disease, chronic renal dis­ease, and pulmonary diseases, are often brought on by a malfunction in the metabolism of lipids, glucose, and peptides. Therefore, the quantity of articles focusing on antioxidative PPSs have steadily increased over the past decade. This chapter outlines numerous attributes and cel­lular mechanisms of several PPS in metabolic disorders. In addition, the interaction of PPS with various genes and proteins involved in molecular signaling pathways is briey elucidated.
Keywords
Metabolic disease · Plant polysaccharides · Inammatory mediators · Molecular signaling · mRNA expressions
S. Sar · T. Banerjee · A. Kumar · A. Baidya · S. Saha · J. Mondal · N. Ghosh (*) Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India e-mail: nilanjanghosh.phamacy@jadavpuruniversity.in
R. Chaki · A. K. Halder Dr. B.C.Roy College of Pharmacy and Allied Health Sciences, Durgapur, India
1 Introduction
Lifestyle diseases occur due to the unhealthy habits of peo­ple which detract them from the regular activities and lead them to a sedentary routine causing various health problems that can be even to some extent lethal. In a broader sense, non-communicable or non-infectious diseases are generally caused due to malfunctioning of metabolism regulator enzymes, eventual accumulation of primary and secondary products of metabolism, and deciency of desired molecules for biochemical reactions. These diseases are known as met­abolic disorders/diseases (MDs) or non-communicable dis­eases (NCDs). So, it can be said that all non-communicable diseases in a sense are metabolic disorders. This chapter focuses on metabolic disorders arising from lifestyle changes in modern days. There might be various forms of metabolic diseases, but the primary causing factor lies between the junction of hyperglycemia and hyperlipidemia. Disturbances in the homeostasis of blood glucose level and free fatty acid (FFAs) level rise as the initiation point of all cardiovascular, hepatic, and nephrological diseases. Diabetes works longer and in a deeper way than hyperlipidemia. Prolonged insu­linemia and hyperglycemia gradually accumulate fat glob­ules in adipose tissues of liver, gastrointestinal viscera, and other parts of body. Concomitantly prolonged deposition of lipid in the abdominal area becomes the factory of glucose through neoglucogenesis and other pathways. Chronic kid­ney/renal disease usually occurs as a consequence of diabetic toxicity leading to death. Similarly, cardiovascular and hepatic metabolic ailment may serve lethal for patients. MDs kill about 40 million people each year, which is nearly 70% of all death around the globe. Thus, meeting this crisis through correct treatment approach is of current interest to researchers [1].
The formation and progression of MDs, such as diabetes, obesity, cardiovascular diseases (CVDs), and non-alcoholic steatohepatitis, are caused by biomolecules such as glucose, protein, fat, vitamins, and minerals in the body that are not metabolized effectively. These MDs are the result of a com-
© 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_21
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plicated interaction between diet, susceptibility, genetics, and epigenetics. MDs are caused, to a massive extent, by social and behavioral risk factors, like smoking, unhealthy diet, less physical activity, reckless alcoholism, and unsur­passable stress in work–life balance. Obesity or rising blood lipids, elevated blood glucose, and raised high pressure are the root causes of numerous deadly problems in the cardio­vascular, respiratory, and renal systems. Many of the risk factors are common for a number of MDs. According to the WHO, smoking causes the deaths of more than seven million people each year, and that gure is expected to rise. Excessive consumption of dietary sodium kills 4.1 million people annu­ally, while alcohol consumption leads to approximately 1.65 million deaths from NCDs. Simple lack of exercise kills 1.6 million people a year [2].
2 General Pathophysiology
ofMetabolic Diseases
MDs have a continuously progressive pathophysiological state comprising several interdependent phenomena like inammation, ectopic (especially liver and muscle) and vis­ceral obesity, insulin resistance. The inammatory and pre­thrombotic markers, C-reactive protein (CRP), synthesized and secreted by hepatocytes, insulin levels, plasminogen activator inhibitors, leptin, adiponectin, resistin, tumor necrosis factor-α (TNF-α), leptin, monocyte chemoattractant protein-1 (MCP-1), interleukin-6 (IL-6), uric acid (UA) lev­els, and microalbuminuria are considered to better under­stand the molecular scenario of MDs [3]. Obesity, abdominal adiposity, hypertension, and hyperglycemia are common signs of various metabolic diseases. IkB kinase and c-Jun terminal kinase (JNK), two pro-inammatory serine kinases that are activated by FFA buildup, help to release IL-6 from adipose tissue. Additionally, elevated FFA encourages hepatic protein kinase activation, which results in gluconeo­genesis and lipogenesis. These lead to components of MDs
such as IR, lipotoxicity, altered glucose metabolism, and ath­erosclerosis [4]. The evolution of CVDs such as atheroscle­rosis, hypertension, heart failure, and peripheral artery disease can be sped up by IR because it promotes the genera­tion of reactive oxygen species (ROS) and causes an imbal­ance in the enzyme endothelial nitric oxide synthase (eNOS) [5].
3 Plant Polysaccharides andIts
Composition
The most prevalent naturally occurring macromolecular polymer may be found in polysaccharides, which are pro­duced by bacteria, fungus, plants, and even algae [6]. A vari­ety of monosaccharides are combined to form polysaccharide structures, which are joined together by glycosidic linkages. Numerous research suggest that plant polysaccharides (PPSs) exhibit a variety of biological activities including immunomodulation, antineoplasia, anti-inammation, anti­viral, antioxidative, osteogenesis, hypolipidemic and hypo­glycemic effects. Despite PPSs’ potency, there are still signicant drawbacks, including poor targeting, unstable, quick blood clearance rate, and unfocused scope of action, which substantially impair bioavailability and clinical use.
Recent studies have found that PPSs molecular weights can be up to thousands or even millions. Hydrophilic groups such as OH, COOH, and NH2 groups can form bioadhesive layers with epithelial and mucosal tissues [7]. The most com­mon component of polysaccharides is d-glucose. However, d-fructose, d-galactose, l-galactose, d-mannose, l-arabinose, rhamnose, fucose, uronic acid, and d-xylose also can be found as depicted in Fig.1 [8]. Amino sugars are one type of monosaccharide derivative found in polysaccharides. Some plants contain their derivatives (N-acetylneuraminic acid and N-acetylmuramic acid) as well as the monosaccharide acids (glucuronic acid and iduronic acid) [9].
OH
OH
HO
HO
Fucose
Role ofNatural Polysaccharides intheManagement ofLifestyle Diseases
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HO
D-Glucose
D-Mannose
OHO
OH
O
OH
OH
OH
OH
HO
D-Fructose
O
HO
OH
L-Arabinose
OHHO
OH
OH
HO
O
OH
OH
HO
OH
OH
OHO
D-Galactose
O
OH
OH
OH
D-Xylose
OH
O
OHOHOH
L-Galactose
OH
OH
OH
Rhamnose
OH
O
OH
OHO
HO
OH
OH
Fig. 1 Structures of components of polysaccharides
4 Management ofLifestyle Disorders
Using Natural Polysaccharides
4.1 Hyperglycemia
Hyperglycemia is the name of the condition or symptom caused by diabetes mellitus, which is characterized by insuf­cient insulin secretion, IR, or reduced sensitivity of the tar­get organs to insulin when it is secreted normally, followed by consequences of MDs. β cells of the pancreas secrete insulin, but due to the lack of sensitivity of target organ cells, insulin cannot bind to the corresponding receptors upon the cells, and as a result, the secreted insulin stays in the blood for long, causing hyperinsulinemia. However, when the body cannot maintain normal blood sugar level through the feed­back mechanism in insulin-glucagon concentration, they develop type 2 diabetes mellitus (T2DM). Hyperglycemia is the main among MDs that in turn gives rise to several other organ system disorders, like chronic renal failure (CRF), car­diac diseases, hyperlipidemia, nervous system diseases, etc. That is why hyperglycemia is known as the silent killer. One of the main stimulators of T2DM is obesity alone, particu­larly abdominal adiposity. Consumption of high-fat­containing foods, fast foods made with highly saturated oils, lack of exercise, and an overall sedentary lifestyle are the
underlying causes of abdominal accumulation of fats. In case of abdominal fat, lipid is deposited within adipocyte cells of adipose tissue, in the abdominal area which works as source of calorie supply in fasting [10]. But when adipocyte cells accumulate lipids more than their normal capacity, due to high-fat diet intake and sedentary lifestyle, they lead to hepatic and systemic insulin resistance through interlukin-6 (IL-6) and other adipose-specic cytokines [11]. This is very clear that no other metabolic diseases are so directly linked to lifestyle than hyperglycemia. Not only fatty foods, fast food consumption, and irregularity in having breakfast, lunch, and dinner also lead to the development of hypergly­cemia. That is why modern views portray hyperglycemia and hyperlipidemia as linked to each other, as their further com­plications also progress simultaneously (summarized in Fig.2).
Polysaccharides acting against hyperglycemia with their sources and probable mechanisms of action are hereby sum­marized in Table1.
4.2 Hyperlipidemia
Hyperlipidemia is the second-most prevalent metabolic dis­order that has been occurring from the dawn of modern days,
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Fig. 2 Interlink between hyperglycemia, obesity, hypertension, and CVDs and action of natural polysaccharides on them
mostly due to the high intake of fatty foods and consequently the gradual rise in FFAs, triglycerides (TGs), cholesterol,
absorption. Thus, lowering the intestinal absorption of cho­lesterol is another way to avoid hyperlipidemia [29].
and low-density lipoprotein (LDL-C) levels and decreasing high-density lipoprotein (HDL-C) cholesterol levels. This
4.2.1 Polysaccharides Against Hyperlipidemia
occurs due to unhealthy lifestyles including high-fat diet and other lifestyle behavioral factors. Evidence indicates that smoking can disrupt lipid metabolism. Surprisingly, eating betel nuts increases the risk of hyperlipidemia as well as increasing the likelihood of obesity because it increases hun­ger by blocking GABA receptors. Cardiovascular disorders including atherosclerosis and coronary heart disease are caused by persistent hyperlipidemia [27]. With the constant changes in lifestyle, environment, and food habits, more and more people suffer from this and its consequences. Therefore, downregulating serum lipid levels is the ultimate way to pre­vent the risk of hyperlipidemia. Additionally, aberrant adipo­kine synthesis, including that of adiponectin and leptin, is linked to hyperlipidemia [28]. Cholesterol, after being
4.2.1.1 Cyclocarya Polysaccharide
The “sweet tea tree” is another name for the species Cyclocarya paliurus (Batal) Iljinskaja. By slowing fatty acid production and degrading fatty acids, Cyclocarya paliurus polysaccharide (CPP) has been found to reduce FFAs in KKAy mice. In addition, there is evidence that CPP causes an increase in the expression of adipose triglyceride lipase (ATGL) and peroxisome proliferator-activated receptor (PPAR) and a relative decrease in FFAs and hepatic 3-hydroxy-3-methyl glutaryl-Coenzyme-A (HMG-CoA) mRNA. Downregulating the expression of HMG-CoA reductase prevents the liver’s production of new cholesterol, hence lowering blood cholesterol levels [30].
absorbed from the intestine, is transported through the chylo­micron to the liver. The cholesterol absorption route is cru­cial for treating hyperlipidemia because of the intimate connection between lipid metabolism and cholesterol
4.2.1.2 Pleurotus Mycelia Polysaccharides
The polysaccharides are extracted from mycelia of Pleurotus eryngii var. tuoliensis, a medicinal mushroom that belongs to
the family Pleurotaceae of the phylum Basidiomycota. It has
Role ofNatural Polysaccharides intheManagement ofLifestyle Diseases
https://t.me/medicina_free
Table 1 Polysaccharides acting against hyperglycemia
Plant polysaccharide Biological source Research model Action on parameters Remarks References Codium fragile
sulfated polysaccharide (CFSP)
Alhagi polysaccharide (neutral Aps-1, acidic Aps-2 and 3)
Polysaccharides from Adlay seeds (PAS)
Acanthopanax polysaccharide (ASP)
Grifola polysaccharides
Astragalus polysaccharide
Cordyceps polysaccharide
Fructus polysaccharide
Tea polysaccharide Camellia sinensis L.High-fat diet and
The protein-bound polysaccharide from pumpkin fruits (PBPP)
Codium fragile alga
Alhagi pseudalhagi
Coix lacryma jobi L., commonly known as adlay
Acanthopanax senticosus
Grifola frondosa KK-ay mice
Dried roots of Astragalus membranaceus
Fruiting bodies of Cordyceps sinensis
Fructus corni
Pumpkin fruits Alloxan-induced
Alloxan-induced diabetic rats
In vitro Antioxidant effects in DPPH
8weeks old ICR male mice
Alloxan-induced diabetes mice
Hep G2 cells
Fat-fed streptozotocin­treated T2DM rats
Streptozotocin and nicotinamide induced diabetic male Wistar rats
Streptozotocin­induced diabetic rats RIN-m5f cells (in vitro)
streptozotocin­induced male Kunming mice
Sprague-Dawley rats
Decrease in blood glucose and intestinal amylase levels Enhanced antioxidant enzymes activity
and ABTS assays α-Glucosidase inhibition and ABTS scavenging activity by APs-3
Decreased blood glucose and insulin levels Reduced plasma levels of amyloid β42 and glycated hemoglobin (HbA1c) Increased expression of glucagon-like peptide-1 (GLP-1) and superoxide dismutase (SOD) activity
Lowered fasting blood glucose level and blood insulin level
Lowered blood glucose and reversed insulin resistance Enhanced glucose uptake
Decreased plasma glucose level
Improved response in OGTT and lowered post-prandial blood glucose level
Lowered blood glucose level and reversed insulin resistance
Hypoglycemic action Hypoglycemic action
Hypoglycemic action [21]
Increased glucose tolerance and lowered α-amylase activity Improved lipid prole
Hypoglycemic activity through free radical scavenging action
Not a very potent anti-diabetic Good antioxidant Signicant hypolipidemic action
Hypoglycemic action by α-glucosidase inhibition and insulin sensitization Increased phosphorylated-AktSer473 Synthesis of intracellular glycogen through the Akt/ GSK-3 pathway
Normalized insulin-induced PKB-Ser473 phosphorylation and GLUT-4 translocation in skeletal muscle Reduced PTP1B protein level and activity in the muscle, but not in the liver along with NF-kB activation
α-Amylase and α-glucosidase inhibition
Increased insulin secretion and promoted pancreatic β-cell proliferation
through PI3Kp85/p-Akt/ GLUT4 signaling pathway
[12]
[13]
[14]
[15]
[16]
[17]
[18]
[19]
[20]
(continued)
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Table 1 (continued)
Plant polysaccharide Biological source Research model Action on parameters Remarks References Nigella seed
polysaccharide
Polysaccharides from Hovenia (Guaizao)
Sargassum polysaccharides
Suillellus polysaccharides
AAMP-N Armillaria mellea
Nigella sativa seed
Hovenia dulcis
Sargassum fusiforme
Suillellus luridus
fruiting body
High-fat diet and streptozotocin­induced Kunming mice
Streptozotocin­induced diabetic male Sprague­Dawley rat
High glucose and high-fat diets fed T2DM mice
Streptozotocin­induced diabetic male ICR mice
Db/db mice Hepa 1–6 cells
Lowered fasting blood glucose (FBG), glycosylated serum protein (GSP), TG, TC, LDL-C, Malondialdehyde (MDA), TNF-α, IL-6, and IL-1β Insulinemia. Raised HDL-C, total antioxidant capacity (T-AOC), SOD, catalase (CAT), and p-AKT and GLUT4 expression
Lowered FBG.Higher body weight, and liver glycogen levels Insulinemia
Improved insulin resistance. Fasting blood glucose (FPG) and fasting insulin (FINS) were signicantly decreased Lowered insulin resistance (IR) Expression of Glut-2in pancreatic tissue is increased
Blood glucose level reduced to normal Decline in insulin level
Signicantly reduced blood glucose level Antagonized insulin resistance
Hypoglycemic action was done by PI3Kp85/p-Akt/ GLUT4 pathway
Hypoglycemic mechanisms may include balancing the regeneration and apoptosis of β-cells and activating liver glycometabolism-linked Signaling pathways in diabetic rats
Increased insulin sensitivity [25]
Phosphorylation of insulin receptor and AKT
S. Sar et al.
[22]
[23]
[24]
[26]
been proved that zinc-containing polysaccharides show anti­oxidant properties. Additionally, it has been demonstrated that natural alkali-extractable (AlMZPS) and acidic (AcMZPS) compounds both dramatically raise HDL-C lev­els and lower blood levels of LDL-C, VLDL-C, TC, and TG, therefore establishing their hyperlipidemic effects [31].
4.2.1.3 Ulvan
Ulvan polysaccharide (PU3) has been isolated from Ulvan pertusa, a green alga. The administration of PU3 has shown
inhibition of lipid peroxidation in hyperlipidemic mice by increasing and activating antioxidant enzymes. PU3 lessen risk factors rising from interrelation between oxidative stress and hyperlipidemia [32].
4.2.1.4 Morchella Polysaccharides
Morchella esculenta polysaccharides (EnMPS and MPS fractions) from Morchella mushroom is a large complex car­bohydrate. Following administration of both fractions, higher HDL-C and lower LDL-C values were seen, indicat-
ing a possible inhibition against hyperlipidemia-derived liver damage. These 2 fractions also have protective action against oxidative stress-induced hyperlipidemic complications. EnMPS has been found to enhance the antioxidant enzyme activities and reduced the myeloperoxidase (MPO) content, both invivo and invitro experiments [33].
4.2.1.5 TDGP-3 Polysaccharides
Traditional Chinese medicine uses a kind of Vitaceae plant called Tetrastigma hemsleyanum Diels et Gilg (TDGP3). A lipid metabolic pathway that is out of balance might result from too many free radicals and the subsequent oxidative stress, which can result in hyperlipidemia. In vivo, TDGP-3 has demonstrated strong antioxidant activity, lowering LDL­C, TC, and TG levels while raising HDL-C levels [34].
4.2.1.6 Pine Needle Polysaccharide (PNP)
Pine needle polysaccharide (PNP), extracted from the Pinus massoniana tree has shown hypolipidemic and antioxidant
effects. High-fat diets can increase the production of free
Role ofNatural Polysaccharides intheManagement ofLifestyle Diseases
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radicals and weaken the antioxidant defense system. Because oxidized-LDL-C, which is intimately linked to the develop­ment of hyperlipidemia, is produced when reactive oxygen species (ROS) oxidize LDL-C.PNP increases antioxidant enzymes and non-enzymatic antioxidants, reducing oxida­tive damage in mice subjected to HFD [35].
4.2.1.7 Selenium Modied Lachnum Polysaccharide
Lachnum is a saprophytic fungus with various biological actions. SeLEP-1b, an organically modied selenium con­taining Lachnum polysaccharide, effectively reduced lipids and protected the liver. SeLEP-1b had shown hypolipidemic action probably by reducing the expression of the genes for fatty acid synthase (FAS) and adipocyte fatty acid binding protein (aP2), which are involved in TG production and lipid storage in adipocytes. Another possibility is that SeLEP-1b, which downregulates the liver x receptor ligands known as the major regulators of lipid metabolism, increased lipid metabolism and broke down the fat and cholesterol in the liver. The HMG-CoA reductase enzyme in the liver may be inhibited to reduce cholesterol production, which would be the third possible cause [36].
4.2.1.8 Prunella Polysaccharides
The Prunella vulgaris L. (Labiatae family) plant is the source of the Prunella vulgaris polysaccharides, which are also referred to as “self-heal” in Western herbal therapy. PVPs markedly decrease plasma TC, TGs, and LDL-C levels and increased HDL-C in high-fat/high-cholesterol (HFHC) diet­fed mice. PVPs also lowered MDA and TNF-α levels in hyperlipidemic rats and stimulated glutathione peroxidase (GSH-Px), indicating its antioxidant property [37].
4.2.1.9 Apostichopus Polysaccharides
Apostichopus japonicus polysaccharide (AJP) is obtained from sea cucumber Apostichopus japonicus Selenka (also identied as Stichopus japonicus Selenka). HDL-C levels were raised, while TC, TG, and LDL-C levels signicantly decreased, following AJP administration, which proves the biosynthesis and uptake of cholesterol. To modulate choles­terol metabolism, AJP interacts with lipids and functions as a carrier, improving the transit and excretion of serum lipids. AJP can also act as bile acid synthesis stimulators. Synthesis of bile acids depletes hepatic cholesterol [38].
4.2.1.11 Helvella Polysaccharides
The treatment of high doses of Helvella polysaccharides (HLP), obtained from Helvella leucopus, also named Bachu mushroom, partially delayed the uprising serum LDL-C level, and HDL-C decrease. The effect was comparable to atorvastatin treatment, correlated with the reduction in serum TGs [40].
4.2.1.12 Ganoderma Polysaccharides
The primary active ingredients of Ganoderma lucidum (GL), a Chinese herbal remedy that has been used for millennia in Asia, are Ganoderma lucidum polysaccharides (GLP), which, depending on the dose, show immunoregulatory, antioxidant, and hypolipidemic effects [41].
4.2.1.13 Quinoa Polysaccharide
The Incas is formerly referred to the Andean pseudo-cereal quinoa (Chenopodium quinoa Willd., family Amaranthaceae) as the “mother of all grains.” Quinoa seed eating has been linked to reduce blood TG and LDL-C levels invivo [42].
4.2.1.14 Holothuria Polysaccharides
Holothuria leucospilota polysaccharides (HLP), obtained from dry black sea cucumbers. Alleviated high-fat diet induced hyperlipidemia. HLP is difcult to digest in the upper gastrointestinal tract, so in the large intestine it is con­verted to short-chain fatty acids (SCFAs) by gut microbiota and regulates lipid metabolism. HLP has been reported to suppress acetyl-CoA carboxylase (ACC) and fatty acid translocase CD36 expressions to inhibit lipid accumulation in liver cells, thereby secretion of excess leptin and adipo­nectin from adipocytes was inhibited. Leptin and adiponec­tin stimulate inammatory factors and insulin secretion is elevated, leading to IR.HLP also downregulated the expres­sions of TNF-α and NF-kB, which directly alleviated hyper­lipidemia [43].
4.2.1.15 Rice Bran Polysaccharide
Rice bran polysaccharide (RBP) is got from the rice (Oryza sativa L.) milling. RBP-mediated modulation of expressions
of PPARs, ACC, FAS, sterol regulatory element-binding pro­tein 1 (SREBP-1C), sirtuin 1(SIRT1) in HFD-induced mouse model implies that RBP might be candidate for adjuvant therapies for hyperlipidemia [44].
4.2.1.10 Termitomyces Polysaccharides
Two fractions, EIPS and AIPS are hydrolysis products of intracellular polysaccharide from the fruiting bodies of Termitomyces albuminosus, also known as “Chicken Mushroom” or “Jizong” in China. Treatment EIPS lowered the serum lipids and restored lipid metabolic disturbances induced by high-fat emulsion [39].
4.2.1.16 Pleurotus Polysaccharides
In a zebrash hyperlipidemia model, it has been demon­strated that polysaccharides from the fruiting bodies (PEPE) of Pleurotus eryngii (king oyster mushroom) may reduce the lipid level during the lipid absorption phase. Although it has considerable toxicity, it can signicantly reduce the amount of oxidized LDL-induced foam-cell production in murine macrophage cells (RAW264.7) [45].
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4.3 Hypertension
Long-term hypertension results in ultimate organ failure and is dened as an increase in blood pressure (BP) that is more than systolic 130–139/diastolic 85–89 mmHg. Arterial hypertension is a major risk factor because of its conse­quences like coronary heart disease, left ventricular hyper­trophy, and renal diseases. The involvement of target organs (i.e., heart, brain, and kidneys) implies the severity and fatal­ity of the outcome. In addition to mediating vasodilation, the endothelium releases nitric oxide (NO), which controls leu­kocyte adherence to endothelial cells and lowers the produc­tion of peptides that constrict blood vessels and raise blood pressure. Hypertension results from reactive oxidative stress signaling, which also causes vascular inammation and per­sistently elevated vascular tone [46].
Hyperglycemia and hyperlipidemia directly or indirectly cause hypertension. Although most of the causal factors lie in lifestyle habits. A sedentary lifestyle, lack of physical exercise, consumption of food with high salt, sugar, and oil content, smoking, alcoholism, regular stress at work and social life, and lack of deep enough sleep widen the scope for hypertension to occur [47].
4.3.1 Polysaccharides Used Against
Hypertension
4.3.1.1 Cordyceps Polysaccharides
Caterpillars are parasitized by a fungus called Cordyceps sinensis. Systolic and diastolic blood pressure (SBP and DBP) were demonstrated to be susceptible to reduction by C. sinensis polysaccharides (CSP1) in spontaneously hyperten-
sive rats. Additionally, it increased NO, lowered the levels of epinephrine, noradrenaline, endothelin-1 (ET-1), and angiotensin II (Ang-II), and repressed the release of TGF-I and CRP [48].
4.3.1.2 Watermelon Rinds Polysaccharide
Watermelon polysaccharides (WMRP) are extracted from Citrullus lanatus rinds by hot water. WMRP exhibited ACE­inhibitory action in a dose-dependent fashion probably by the galacturonic acid present in the extract. The acidic pH might have denatured the ACE enzyme also [49].
4.3.1.3 White Mulberry Fruit Polysaccharides
In Sprague-Dawley rats, white mulberry fruit polysaccha­rides (WMFPs) from the mulberry (Morus alba) of the fam­ily Moraceae have been demonstrated to boost NO production and relax blood vessels. After receiving WMFP treatment, rats’ mean artery pressure (MAP) decreased by more than 10%, establishing a NO dependent pathway [50].
4.3.1.4 Althea Polysaccharides
Water-soluble acidic bioactive polysaccharides are present in the whole plant Althea rosea is also known as “saze posh.” The dose-dependent ACE-inhibitory effect of Althea poly­saccharides has been seen in studies. Plant mucilages can reduce blood pressure by lowering endothelial dysfunction and decreasing inammation in the vasculature, through the blockage of HMGCoA formation [51].
4.3.1.5 Sodium Alginate Oligosaccharides
A ber-rich polysaccharide called alginate is obtained from seaweeds like kombu and giant kelp. Dahl S rats treated with sodium alginate oligosaccharide demonstrated a dose­dependent attenuation against salt-induced hypertension. The BP signicantly declined after alginate administration and was maintained throughout the experiment [52].
4.3.1.6 Undaria Polysaccharide
An Undaria pinnatida (Qundaicai) brown alga fucoidan- rich sulfated polysaccharide showed signicant anti­hypertensive effects on vascular relaxation both invivo and invitro. Along with reducing blood pressure in chronically hypertensive rats receiving L-NAME treatment, this medica­tion also protects the thoracic aorta’s histological structure through activating the Akt/eNOS pathway. Fucoidan reduced the elevated inducible nitric oxide synthase production and systemic inammation in those animals [53].
4.3.1.7 Other Polysaccharides
Polysaccharide from Xin-Ji-Er-Kang (XJEK), the Chinese medicine, exerts protection against L-NAME-induced hyper­tensive mice and Ang II-induced damage in human umbilical vein endothelial cells (HUVECs) and it might be done by improving endothelial function and the inammation in blood vessels [54]. Cystoseira crinita sulfated polysaccha­ride shows anti-hypertensive action through ACE inhibition [55]. By triggering the eNOS/NO signaling pathway, astrag­alus polysaccharides decreased the MPA pressure in rats with monocrotaline-induced pulmonary arterial hyperten­sion [56]. Acidic polysaccharides from Gastrodia rhizome, Chickpea water-soluble polysaccharide, Cymodocea nodosa sulfated polysaccharide, Momordica charantia polysaccha- ride, polysaccharides from Ephedra alata, Almond and Pistachio not only alleviate vasoconstriction by downregu­lating angiotensin II, but also decreased vasodilator bradyki­nin metabolism by blocking kininase II [57]. Polysaccharide as the active constituent of Dendrobium ofcinale can reverse metabolic hypertension in rats by activating the intestinal SCFAs-GPCR43/41 pathway [58]. Acidic polysaccharides from Gastrodia elata Blume rhizome have shown a reduc- tion in hypertension and improved serum lipid levels [59].