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3.13 Ginseng (Panax ginseng., Araliaceae)
Myocardial ischemia–reperfusion (I/R) injury has been pre­vented and treated with Panax ginseng (P. ginseng). The study set out to dene the preventive effects of P. ginseng and its active components against myocardial I/R injury to give clinical evidence and novel perspectives for P. ginseng inves- tigation and utilization in myocardial I/R injury. The study by Chen et al. [39] outlined the pathophysiological pathways underlying myocardial I/R injury and active components of P. ginseng, such as ginsenosides, ginseng polysaccharides, and phytosterols. Prevention and treatment of cardiac diseases using these active components of P. ginseng were broadly outlined, along with preclinical trials of myocardial I/R injury and probable mechanisms of action. The study concluded that active ingredients of P. ginseng might prevent myocardial I/R injury and control oxidative stress- related proteins, inam­matory cytokines, and apoptotic factors.
3.14 Guggul (Commiphora mukul., Burseraceae)
Guggul is one of the most widely used herbs to boost cardiac and vascular health. The cardioprotective potential of C. mukul in rats with myocardial necrosis induced by isoprena­line is already established. C. mukul extract was given for 30 days orally at 100, 200, and 400 mg/kg doses. Isoprenaline (85 mg/kg; s.c.) was given to the animals, control and C. mukul pre-treatment groups consecutively on the 29th and 30th day, at intervals of 24 h. Administration of isoprenaline resulted in a signicant (p < 0.05) rise in superoxide dis­mutase, catalase, glutathione peroxidase, glutathione, and a fall in malondialdehyde. C. mukul increased the myocardial anti-oxidant status and stopped the leakage of lactate dehy­drogenase and creatine phosphokinase-MB from the heart. C. mukul pre-treatment was shown to reduce necrosis, edema, and inammation through histological analysis. According to the data, C. mukul may be a preventative and therapeutic agent against oxidative stress linked to ischemic heart disease due to its anti-oxidant and anti-peroxidative activities. Moreover, a histopathological study revealed that the necro­sis, edema, and inammation were reduced after pre-treat­ment with C. mukul. The current research suggested that C. mukul may be a promising preventive and therapeutic agent against oxidative stress-related ischemic heart disease [40].
3.15 Haritaki (Terminalia chebula., Combretaceae)
The present investigation evaluates the hypolipidemic effect of methanolic bark extract of Terminalia chebula (T. cheb-
ula) against high-fat diet-induced hypercholesterolemia in rats. Atherosclerosis, coronary heart disease, and stroke are cardiovascular diseases for which hypercholesterolemia is a signicant risk factor. The methanolic extract of T. chebula at doses of 200, 400, and 600 mg/kg was utilized to evaluate its anti-hyperlipidemic effect in animals and fasting blood glu­cose levels after treatment with the same doses were assessed using commercially available kits. In the groups of animals treated with T. chebula extract and atorvastatin, the positive control showed a signicant increase in serum levels of high­density lipoprotein (HDL) cholesterol in rats with diet­induced hypercholesterolemia. Also, acute toxicity studies showed no morbidity and mortality at different doses. Thus, the study conrmed the potential of T. chebula to treat hyper- lipidemia [41].
3.16 Henbane (Hyoscyamus niger., Solanaceae)
The research describes the anti-hypertensive and blood ves­sel dilatory properties of the crude extract of Hyoscyamus niger (H. niger) on rats under anaesthetic conditions. It showed dose-dependent (10–100 mg/kg) reduction of BP, rate, and force of atrial contractions in guinea pig atria. In the isolated rabbit aorta H. niger (0.01–1.0 mg/ml) relaxed con­traction induced by phenylephrine (PE, 1 μM) and K+ (80 mM) and it also suppressed the PE (1 μM) control peaks which are usually found in Ca+2 free medium. The vasodila­tor activity of H. niger in endothelium-intact rat aortic prepa­rations was endothelium-independent as it was not opposed by N (omega)-nitro-L-arginine methyl ester. These ndings suggested that Hyoscyamus niger reduced blood pressure by acting as a Ca+2 antagonist [42].
3.17 Kalmegh (Andrographis paniculata., Acanthaceae)
Cardiac hypertrophy typically manifests as an expansion of the cardiac muscle and a rise in the volume of muscle cells that occur in response to hemodynamic stress, acute myocar­dial damage, infection, or abnormalities in the genes produc­ing sarcomeric proteins [43]. An herbaceous plant known as Andrographis paniculata (A. paniculata) is often used as a medicinal food. It is used to treat endocrine disorders and hypertension in several regions of Asia as a decoction, pow­der, or tablet. The aqueous A. paniculata extract and its active constituent, andrographolide, have anti-inammatory and anti-apoptotic properties. Three groups of test mice were divided and given different diets standard chow, an obese high-fat diet, or a high-fat diet treated with A. paniculata extract (2 g/kg/day, administered via gavage for a week). The
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results showed that the myocardial inammation pathway­related proteins were elevated in the obese mice, potentially contributing to cardiac hypertrophy and myocardial apopto­sis. The research strongly implies that obese persons may benet from taking supplements containing A. paniculata extract to prevent and treat cardiovascular disease [44].
3.18 Orchid (Orchis mascula., Orchidaceae)
Aziz etal. [45] explored the possible mechanisms of action for the medicinal use of Orchis mascula (OM) as a medica­tion for hypertension and dyslipidaemia. The hydroalcoholic roots extract of OM is used as animal model hypertensive rats (strain: SHR/NCrlBR; hypertensive, non-stroke) and their normotensive controls, Wistar Koyoto (WKY) rats, Sprague–Dawley rats (170–200 g), and rabbits (1.5–2 kg) of either sex used. OM increased acetylcholine-induced relax­ation and improved endothelial dysfunction. It considerably (P < 0.05) in hypertensive rats reduced systolic blood pres­sure. In a dose-dependent manner, the extract of OM at 10 and 30 mg/kg in normotensive anaesthetized rats lowered mean arterial pressure. OM also decreased serum triglycer­ides and high-fat diet and tyloxapol-induced hyperlipidae­mia. In a second model, OM prevented weight gain. OM causes concentration-dependent relaxation of phenylephrine and high K+ (80 mM)-induced contractions in the isolated rabbit aorta. This research demonstrated that OM showd action against hypertension and endothelial-modulating.
3.19 Pushkarmool (Inula racemosa Hook. f., Compositae)
For precordial chest discomfort, Ayurveda recommends Inula racemosa Hook. f. Mangathayaru etal. [46] aimed to investigate how Inula racemosa extract in alcohol (IrA) and hexane (IrH) affects high-fat diet-induced atherosclerosis in guinea pigs. In the aforementioned research, 5 groups were formed with 6 animals in each group and to them, pellets were given as a diet for 90 days along with 0.15% w/w cho­lesterol (positive control), 100 mg/kg of atorvastatin, or 10 mg/kg of atorvastatin acetate and 100 mg/kg of atorvastatin calcium also administered. To the control group, only a pellet diet was given. Compared to the positive control, IrA low­ered total cholesterol, triglycerides, low-density lipoprotein cholesterol, and the atherogenic index while increasing high­density lipoprotein cholesterol. Sesquiterpene lactones in IrH and phenolics in IrA are probably responsible for the reported effects. The outcomes conrmed that I. racemosa has cardioprotective and anti-obesity activity by demonstrat­ing its anti-atherogenic effect.
3.20 Radish (Raphanus sativus., Brassicaceae)
Ghayur et al. [47] described the anti-hypertensive, endothelium- dependent vascular relaxant, and cardiac­modulatory activity of Raphanus sativus seed extract. In the study, Balb/c mice (20–25 g), Sprague–Dawley rats (170– 200 g), and guinea pigs (500–600 g) of either sex were used. The aqueous extract of R. sativus was prepared, and its phy­tochemical testing was performed. Blood pressure was assessed in anaesthetized normotensive rats. It demonstrated that an atropine-sensitive pathway mediated a dose­dependent (0.1–3 mg/kg) decline in rats’ blood pressure and heart rate. The extract reduced the force of contractions and rate in separated guinea pig atria in a dose-dependent manner (0.03–3.0 mg/mL). The aqueous extract reduced the contrac­tions produced by phenylephrine in endothelium-intact rat aortas. In mice, the extract did not show any side effects up to a dose of 10 g/kg. The cardiovascular inhibitory effect of R. sativus was mediated by muscarinic receptor stimulation, which may justify its anti-hypertensive activity [47].
3.21 Rhubarb (Rheum palmatum Linn., Polygonaceae)
Evans et al. [48] evaluated the heart-protective actions of emodin via inhibiting histone deacetylase (HDAC)­dependent gene expression; for this reason, they primarily believed that emodin would reduce a pathological increase in cardiac size via prohibition of histone deacetylases enzyme and rhubarb which is rich in emodin would exhibit these effects. The data demonstrated that emodin altered gene expression globally and raised histone acetylation in cardio­myocytes. Additionally, they evaluated that emodin pre­vented hypertrophy induced by phorbol myristate acetate (PMA) and phenylephrine (PE) in newborn rat ventricular myocytes (NRVMs). Lastly, they proved the emodin’s car­dioprotective action by translating it to 10 weeks of age, C57BL/6 male and female mice models who received angio­tensin II (Ang II) they proved its cardioprotective effect. The study lasted 14 days and showed the invitro histone deacety­lase enzyme activity inhibited by emodin and Turkish rhu­barb containing emodin with fast-on, slow-off rates. Emodin partially prevented pathological cardiac hypertrophy by inhibiting histone deacetylase-dependent gene expression modications.
In another study, Gehlken et al. [49] demonstrated the activity of rhubarb containing pectin. Pectin inhibits galectin­3- related endomyocardial brosis. They performed an invitro study, evaluated the inhibitory capacity, and nally identied potent pectin. Compared to the well-known modi-
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ed citrus pectin, ndings showed that modied rhubarb pectin is the highest effective inhibitor of galectin-3. Cardiac brosis induced in mice by angiotensin II (AngII) infusion. In comparison to the control, Ang II infusion showd 4–5 times more brosis signal in the left ventricle tissue. Compared to Ang II alone, brosis decreased by 57% after receiving rhubarb pectin therapy but by 30% with modied citrus pectin. Natural rhubarb pectin, a galectin-3 inhibitor, signicantly reduced myocardial brosis and maintained heart function invivo. It also had a higher inhibitory ability than other pectins.
3.22 Sarpagandha (Rauwola serpentina., Apocynaceae)
By monitoring the structure of the liver and kidney tissues histologically, biochemical markers, and blood pressure in albino rats, the given study was done to examine the thera­peutic effects of Rauwola serpentina on hypertension and hyperlipidaemia. Thirty albino rats were used for the analy­sis, which further separated into 5 groups (6in each). Group 1 regular diet was given; in group 2 high-salt diet with only 8% NaCl and in group 3, atenolol (standard drug control) 50 mg/kg was given. It contains major secondary metabolites such as avonoids, tannin, and alkaloids, which may have therapeutic potential against cardiovascular ailments. Due to the binding action of catecholamine in nerve cells, reserpine shows anti-hypertensive effects. Combined with a high­sodium diet, the methanolic plant extract was administered to groups 4 and 5 at 100 mg/kg body weight and 200 mg/kg body weight daily for four weeks. Compared to G2 and G3, Rauwola serpentina signicantly lowered blood pressure in groups 4 and 5. In conclusion, Rauwola serpentina has therapeutic benets that certainly lowered cholesterol and blood pressure by safeguarding the renal and liver tissues [50].
3.23 Tulsi (Ocimum sanctum Linn., Lamiaceae)
decreased glutathione levels, superoxide dismutase, thiobar­bituric acid reactive elements, and LDH. It also inhibited lipid peroxidation at 25, 50, 75, and 100 mg/kg concentra­tions. The optimum heart-protective effect of O. sanctum was reported in the current investigation at a 50 mg/kg dose. Histopathological ndings supported the preceding out­comes even more. In this way, we presume that O. sanctum may be therapeutically and preventatively useful in manag­ing myocardial infarction [51].
3.24 Viola (Viola odorata Linn., Violaceae)
Siddiqi etal. [52] studied the activity of hydroalcoholic leaf extract of Viola odorata (V. odorata) against hypertension and dyslipidaemia. Sprague–Dawley rats (180–200 g), guinea pigs (450–500 g), and Balb-C mice (20–25 g) of either sex were used in the research. Under anaesthesia, rats exhibit a dose-dependent reduction in mean systemic arterial blood pressure (0.1–1.0 mg/kg). When vasoconstriction was induced by phenylephrine (PE, 1M) and potassium (K+, 80 mM), V. odorata showed a relaxation based on concentration along with a rightward shift of Ca+2 concentration–response curves and suppression of PE (1M) control peaks in Ca++­free medium.
In tyloxapol-induced dyslipidaemia, V. odorata reduced total cholesterol and triglyceride levels. A high-fat diet­induced dyslipidaemia model reected increased high­density lipoprotein cholesterol and signicant reduction of total cholesterol, atherogenic index, low-density lipoprotein cholesterol, and preventing weight gain. As per the result, drug extract showed a decrease in blood pressure results probably due to pathways like inhibition of Ca+2 inux via membranous Ca+2 channels, the release of Ca+2 from intra­cellular stores and nitric oxide-mediated pathways. Inhibition of synthesis, absorption of lipids, and anti-oxidant activities are responsible for decreased body weight and anti­dyslipidaemic activity of the extract. The study provided pharmacological justication for using V. odorata as an anti- hypertensive and anti-dyslipidaemic medication.
Ocimum sanctum has therapeutic potential with anti-oxidant characteristics, yet, nothing is known about its cardioprotec­tive efcacy against myocardial infarction. Isoproterenol was administered at a dose of 85, 200, and 300 mg/kg twice at intervals of 24 h to induce myocardial infarction changes in anti-oxidant markers, lactate dehydrogenase (LDH), and morphological and histological alterations were analysed. Aqueous alcoholic extract of O. sanctum signicantly
4 Active Phytoconstituents forCVD
In addition to medicinal plants, several phytoconstituents are present in the medicinal plants showing very high cardiopro­tective activity. Table1 represents detailed information on different phytoconstituents isolated from the specic parts of the medicinal plant, their dose, specic model, and use with the mechanism of action.
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[53]
A study supported the utilization of
allicin as an effective therapeutic
agent for pathophysiological
abnormalities that may be related to
or linked with cardiac and renal
model for kidney
disease
40 mg/kg Rats were used as a
[54]
algorithms
The blood pressure in SHR-CP rats
was lowered, and endothelial
hypertensive rat
40 mg/kg Spontaneously
[55]
dysfunction was mitigated by
trans-cinnamaldehyde
Angiotensin-converting enzyme
model
Cyclosporine-induced
10 and 15
[56]
There was the potential for
activity, acetylcholinesterase,
butyrylcholinesterase, and arginase
activity were all considerably
decreased by caffeine and
hypertension in rat
model
mg/kg,
respectively
andrographolide to serve as a
chlorogenic acid
myocardial infarction
20 mg/kg/day Isoproterenol-induced
[57]
medicine that can help to protect
heart tissue in the case of myocardial
infarction
Arjunolic acid prevents myocardial
necrosis-related damage
in rats
has been driven by
isoproterenol in rats
15 mg/kg Myocardial necrosis
[58]
According to the study’s ndings,
rutin and digoxin can potentially treat
cardiovascular problems since it can
Ischemic–
reperfusion-induced
myocardial infarction
100 mg/kg
and 500 μg/
kg,
[59]
counteract I/R-induced myocardial
functional alterations
A potential treatment approach for
cardiac protection over myocardial
infarction is provided by the
anti-inammatory, protective effect
against oxidation, anti-stress, and
BDNF modulatory action by
induced by
isoproterenol
respectively
50 mg/kg Myocardial infarction
(continued)
rosmarinic acid in comorbidly
depressed rats
Act by reducing the
vasoconstrictor effects of
angiotensin II, oxidative stress,
Pharmacological
activity Mechanism of action Dose Animal model Study outcome References
Anti-
hypertensive
Name of medicinal
plant and parts used
for extraction
diallyl disulde
and increasing the expression of
Nrf2, as well as by upregulating
the AT1R and downregulating the
Keap1 protein
2+
By promoting nitric oxide release
via the nitric oxide synthase
pathway
By downregulating activities of
an angiotensin-I converting
enzyme, acetylcholinesterase,
butyrylcholinesterase, and
arginase
Mostly through L-type Ca
Anti-
hypertensive
Anti-
hypertensive
currents
+
Lowering the levels of
myeloperoxidase, lipid
channel inactivation and an
elevation in cardiac transient
outward K
infarction
peroxidation, ascorbic acid,
Myocardial
necrosis
bark
-ATPase activity
+
-K
glutathione, ceruloplasmin, and
+
glutathione peroxidase
Due to its potential to scavenge
free radicals and inhibit
Na
Through increasing the activity of
infarction
glutathione, superoxide
dismutase, interleukin-10,
infarction
brain-derived neurotrophic factor,
and other cardioprotective
molecules
Name of the
isolated compound
Table 1 Phytoconstituents reported for cardiovascular diseases
Allicin Synthesized from
Trans-
cinnamaldehyde
Caffeic acid and
chlorogenic acid
Andrographolide Myocardial
Arjunolic acid Terminalia arjuna/
Rutin and digoxin Myocardial
Rosmarinic acid Myocardial
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[60]
The study revealed a concentration-
dependent effect of the vaccine
against myocardial infarction through
the proposed mechanism
myocardial infarction
in rats
10 mg/kg Isoproterenol-induced
[61]
The research outcomes indicated that
6 mg/kg Chronic myocardial
[62]
vitexin is a cardioprotective
compound that could serve as a
valuable alternative to traditional
treatment for individuals suffering
from coronary heart disease
Taxifolin is an active component
against ISO-induced myocardial
ischemia/reperfusion
injury model
cardiac injury
50 mg/kg Isoproterenol-induced
[63]
injury and probably other heart-
related problems
Arjunic acid has a cardioprotective
Cobalt chloride-
8 μg/mL
[64]
activity by reducing mitochondrial
damage, apoptosis, hypoxia injury,
and damage from oxidative stress
Hesperidin may be used
therapeutically to alleviate
atherosclerosis and atherosclerosis
associated with metabolic disruption,
induced hypoxia in
rats
the LDL receptor,
high-fat diet-induced
atherosclerosis
200 mg/kg Using mice lacking
[65]
This work provided a novel
according to the established data
results
0.1% (w/w) Atherosclerosis-prone
[66]
understanding of the mechanisms by
which quercetin protects from
atherosclerosis
It was anticipated that using
zingerone as an active ingredient
could help prevent and treat
[67]
diet-induced atherosclerosis and its
health consequences
Salvianolic acid B may slow the
development of atherosclerosis,
)
/
mice model
apolipoprotein
E-decient (ApoE
diet-induced
atherosclerosis in
Wistar rat
20 mg/kg High cholesterol
analysis
30 ug/mL Done by invitro
according to ndings. Its potential to
modulate the YAP/TAZ/JNK
signalling pathway is associated with
anti-atherosclerosis capabilities
Pharmacological
activity Mechanism of action Dose Animal model Study outcome References
Name of medicinal
plant and parts used
for extraction
Name of the
Table 1 (continued)
isolated compound
Cardioprotective potential via
lowering oxidative stress,
excessive autophagy, and
regulating apoptosis by triggering
the PI3K/Akt/mTOR signalling
infarction
Vasicine Myocardial
excess, and suppressing
2+
pathway
Act via improving the anti-
cardiac apoptosis
oxidant defence system, reducing
Ca
myocardial
ischemia
Vitexin Chronic
Taxifolin may act by mediating
the Nrf2/HO-1 pathway,
injury
Taxifolin Myocardial
capacity and reducing the activity
of proteins involved in apoptosis
decreasing reactive oxygen
species, inammation, and death
of cells
Arjunic acid Cardioprotective via improving the anti-oxidant
in H9c2 cardiomyocytes
Hesperidin reduces
atherosclerosis by improving
insulin resistance, and lipid
Anti-
atherosclerotic
Hesperidin
proles, inhibiting the production
of macrophage foam cells and
having an anti-oxidative impact
Through minimizing oxidative
stress, macrophage pyroptosis
and associated mechanism
promote NRF2 activation by
competitively binding to the
Arg483 site of KEAP1
Anti-atherosclerotic effect by
modulating lipid gene expression
Anti-
atherosclerotic
Quercetin
Anti-
atherosclerotic
Zingerone
and promoting anti-oxidant
potential
The yes-associated protein/TAZ/
JNK signalling pathway controls
both the production of oxidized
low-density lipoprotein and
inammation, which are both
inhibited as part of the
Anti-
atherosclerotic
Salvianolic acid B
mechanism
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[68]
The ndings concluded that
pre-incubation with sophocarpine
mitigated the cytotoxic effects, DNA
fragmentation, and apoptosis
Completed by invitro
analysis
100 μg/mL
[69]
triggered by ox-LDL in endothelial
cells in a dose-dependent approach
A study indicates that crocin
enhanced the expression of
connexin-43in an experimentally
induced ischemic injury, which had a
myocardial infarction
caused by arterial
ligation
50 mg/kg Rat model for
[70]
preventative effect on the arrhythmia
The study revealed the
pharmacological potential of potent
anti-coagulant fraction/clerobrase
as a naturally obtained active agent
for the prevention and/or
management of cardiovascular
disorders linked to blood clotting
thrombus in mice by
employing carrageen
using supportive
invitro and invivo
analysis
100 mg/kg Formation of
By the modulation of NF-B
signalling, sophocarpine lowered
vascular endothelium apoptosis
and inammatory responses
induced by oxidized low-density
lipoprotein
expression
atherosclerotic
Sophocarpine Anti-
Crocin Anti-arrhythmic By decreasing Connexin-43
inuenced by brinogenolytic
action as well as anti-platelet
activity
Anti-coagulant The anti-coagulant impact is
Clerodendrum
colebrookianum/
leaves
Clerobrase from
anti-coagulant
fraction
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5 Conclusion
In conclusion, we have attempted to represent cumulative data of all the medicinal plants’ investigation strategies for various CVDs and their specic mode of action against a particular disease. Thus, the chapter will act as a referential source for scientic and general people to utilize natural resources to prevent conventional drugs’ side effects in com­bating different cardiovascular diseases.
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Role ofLifestyle Modification andDiet
https://t.me/medicina_free
inthePrevention ofCancer
MoumitaChatterjee , SharmisthaGanguly , andSubhajitDutta
Abstract
Cancer is a multifactorial disease that is still leading the chart in terms of mortality rate. Almost 90% of the can­cers are sporadic in nature, with only 10% being genetic and inherited in an autosomal dominant manner. Although accumulated evidence suggests a drop in mortality rates in recent years, we are still far away from fully under­standing the pathophysiological mechanisms associated with such complex phenotypes. Moreover, anti-cancer medications possess a plethora of mild aftereffects with­out much relief. Hence, there is a need to explore the natu­ral protective mechanisms that can limit the mortality rate with minimal or no adverse consequences. This book chapter entails a story citing different natural mechanisms that can lower the risk of developing different types of cancer. We focussed on lifestyle modications and changes in nutritional diet that can modulate different regulatory players associated with cancer signalling axes. We have presented an avalanche of evidence ranging from molecular mechanisms to implications of different natural diets in cancer, thereby providing a strong correlation between lifestyle modications and their mitigation. Through this chapter, readers will understand the mitigat­ing roles of low bre, omega-3- and omega-6 fatty acids, red meat, ax seeds, fruits, and vegetables in protecting different cancer types ranging from breast to lung to pros­tate carcinoma. Finally, the clinical evidence of lifestyle
M. Chatterjee V.Sivaram Research Foundation, Bangalore, Karnataka, India
S. Ganguly University Department of Botany, Ranchi University, Ranchi, Jharkhand, India
S. Dutta (*) Functional Genomics and Metabolism Research Unit, Department of Biochemistry and Molecular Biology, University of Southern Denmark, Odense, Denmark
Ronin Institute for Independent Scholarship, Montclair, NJ, USA e-mail: subhajit@bmb.sdu.dk
modications will establish a positive association between reduced cancer progression with increased chances of survival.
Keywords
Lifestyle modication · Diet · Cancer
1 Introduction
Cancer is a group of diseases characterized by the unchecked invasion and growth of aberrant cells. Normal cells become cancer cells through a multistep process involving changes to both the metabolic phenotype and molecular signature. The “metastasis” or the concluding phase of the invasion process can be lethal [1]. The International Agency for Research on Cancer’s GLOBOCAN 2020 estimated the status of cancer incidencence as well as mortality of cancer patients (Fig.1a,
b). They predicted around new 19.3 million cases worldwide
(18.1 million excluding non-melanoma skin cancer) and reported more than 10 million deaths from cancer (9.9 mil­lion excluding non-melanoma skin cancer). Female breast cancer has surpassed lung cancer as the most commonly diagnosed malignancy, with an estimated 2.3 million new cases (11.7%). Colorectal (10.0%), lung (11.4%), stomach (5.6%), and prostate (7.3%) cancers are next in line. Lung cancer remained the most common type, with an estimated
1.8 million deaths (18%). It was then followed by colorectal
(8.3%), liver (9.4%), female breast (6.9%) cancers, and stomach (7.7%) [2]. In the last few years, immuno-oncology and targeting actionable changes in oncogene-driven tumours have revolutionized cancer treatment paradigms. Both can­cer remedy sectors carry on with signicant obstacles. Evaluating the curative impact of druggable genomic altera­tion in biomarker-driven clinical trials is hampered because they are not only heterogeneous but also represent small sub­sets of patients in some tumour types. Even though the use of NGS (next-generation sequencing) technologies for molecu­lar pre-screening in clinical research is growing, difculties
© 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_8
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