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Decoction and Their Biological Activities
REFERENCES
Ahmad, S., Zahiruddin, S., Parveen, B., Basist, P., Parveen, A., Gaurav, Parveen, R., & Ahmad, M. (2021).
Indian Medicinal Plants and Formulations and Their Potential Against COVID-19–Preclinical and Clinical Research. Frontiers in Pharmacology, 11, 578970. doi:10.3389/fphar.2020.578970 PMID:33737875
Ang, L., Lee, H. W., Choi, J. Y., Zhang, J., & Lee, M. S. (2020). Herbal medicine and pattern identification for treating COVID-19: A rapid review of guidelines. Integrative Medicine Research, 9(2), 100407.
doi:10.1016/j.imr.2020.100407 PMID:32289016
Birdi, T., Krishnan, G. G., Kataria, S., Gholkar, M., & Daswani, P. (2020). A randomized open label
efficacy clinical trial of oral guava leaf decoction in patients with acute infectious diarrhea. Journal of
Ayurveda and Integrative Medicine, 11(2), 163–172. doi:10.1016/j.jaim.2020.04.001 PMID:32507357
Carocho, M., Calhelha, R. C., Queiroz, M. R. P., Bento, A., Morales, P., Soković, M., & Ferreira, I. C. F.
R. (2014). Infusions and decoctions of Castanea sativa flowers as effective antitumor and antimicrobial
matrices. Industrial Crops and Products, 62, 42–46. doi:10.1016/j.indcrop.2014.08.016
Chauhan, A., Semwal, D. K., Mishra, S. P., & Semwal, R. B. (2015). Ayurvedic research and methodology:
Present status and future strategies. Ayu, 36(4), 364–369. doi:10.4103/0974-8520.190699 PMID:27833362
Chinchu, J. U., Mohan, M. C., & Kumar, B. P. (2020). Anti-obesity and lipid lowering effects of Varanadi
kashayam (decoction) on high fat diet induced obese rats. Obesity Medicine, 17, 100170. doi:10.1016/j.
obmed.2019.100170
Chongyang, M., Changming, Z., Tian, X., Fang, L., Shuang, Z., Changxiang, L., Qingguo, W., Fafeng,
C., & Xueqian, W. (2019). A Systems Pharmacology-Based Study of the Molecular Mechanisms of San
Cao Decoction for Treating Hypertension. Evidence-Based Complementary and Alternative Medicine,
2019, 1–10. doi:10.1155/2019/3171420 PMID:31354853
Deyno, S., Abebe, A., Tola, M. A., Hymete, A., Bazira, J., Makonnen, E., & Alele, P. E. (2020). Acute
and sub-acute toxicity of Echinops kebericho decoction in rats. BMC Complementary Medicine and
Therapies, 20(2), 1–11. doi:10.118612906-019-2794-z PMID:32020865
Farooqui, A. A., Farooqui, T., Madan, A., Ong, J. H.-J., & Ong, W.-Y. (2018). Ayurvedic Medicine for
the Treatment of Dementia: Mechanistic Aspects. Evidence-Based Complementary and Alternative
Medicine, 2018, 1–11. doi:10.1155/2018/2481076 PMID:29861767
Hu, H., Wang, K., Wang, L., Du, Y., Chen, J., Li, Y., Fan, C., Li, N., Sun, Y., Tu, S., Lu, X., Zhou, Z.,
& Cui, H. (2021). He-Jie-ShenShi Decoction as an Adjuvant Therapy on Severe Coronavirus Disease
2019: A Retrospective Cohort and Potential Mechanistic Study. Frontiers in Pharmacology, 12, 700498.
doi:10.3389/fphar.2021.700498 PMID:34220524
Huang, J., Cheung, F., Tan, H.-Y., Hong, M., Wang, N., Yang, J., Feng, Y., & Zheng, Q. (2017). Identification of the active compounds and significant pathways of yinchenhao decoction based on network pharmacology. Molecular Medicine Reports, 16(4), 4583–4592. doi:10.3892/mmr.2017.7149 PMID:28791364
Koduru, S., Grierson, D. S., & Afola, A. J. (2007). Ethnobotanical information of medicinal plants used
for treatment of cancer in the Eastern Cape Province, South Africa. Current Science, 92(7), 906–908.
28
EBSCOhost - printed on 2/13/2023 11:18 AM via . All use subject to https://www.ebsco.com/terms-of-use

Decoction and Their Biological Activities
Li, J. Y., Cao, H. Y., Sun, L., Sun, R. F., Wu, C., Bian, Y. Q., Dong, S., Liu, P., & Sun, M. Y. Therapeutic
mechanism of Yīn-Chén-Hāo decoction in hepatic diseases. World J Gastroenterol, 23(7), 1125-1138.
doi:10.3748/wjg.v23.i7.1125
Li, S., Qian, Y., Xie, R., Li, Y., Jia, Z., Zhang, Z., Huang, R., Tuo, L., Quan, Y., Yu, Z., Liu, J., & Xiang,
M. (2019). Protective effects of a combination of ShengMai-Yin and Ganmaidazao decoction in a mouse
model of type 2 diabetes with nonalcoholic fatty liver disease. Journal of Ethnopharmacology. Advance
online publication. doi:10.1016/j.jep.2019.112029 PMID:31216433
Li, Y., Chu, F., Li, P., Johnson, N., Li, T., Wang, Y., & Ding, X. (2021). Potential effect of Maxing Shigan decoction against coronavirus disease 2019 (COVID-19) revealed by network pharmacology and
experimental verification. Journal of Ethnopharmacology, 271, 113854. doi:10.1016/j.jep.2021.113854
PMID:33513419
Luo, H., Tang, Q.-L., Shang, Y.-X., Liang, S.-B., Yang, M., Robinson, N., & Liu, J.-P. (2020). Can Chinese medicine be used for prevention of corona virus disease 2019 (COVID-19)? A review of historical
classics, research evidence and current prevention programs. Chinese Journal of Integrative Medicine,
26(4), 243–250. doi:10.100711655-020-3192-6 PMID:32065348
Luo, Y., Wang, Q., & Zhang, Y. (2016). A systems pharmacology approach to decipher the mechanism
of danggui-shaoyao-san decoction for the treatment of neurodegenerative diseases. Journal of Ethno-
pharmacology, 178, 66–81. doi:10.1016/j.jep.2015.12.011 PMID:26680587
Ma, W. P., Hu, S. M., Xu, Y. L., Li, H. H., Ma, X. Q., Weil, B. H., Li, F. Y., Yu, G. L., Liu, M., & Liu, H.
B. (2020). Haimufang decoction, a Chinese medicine formula for lung cancer, arrests cell cycle, stimulates apoptosis in NCI-H1975 cells, and induces M1 polarization in RAW 264.7 macrophage cells. BMC
Complementary Medicine and Therapies, 20(1), 243. doi:10.118612906-020-03031-1 PMID:32758223
Maheshika, D. J., Perera, P. K., Priyadarshani, G., Perera, H. D. S. M., Dona, L., & Menuka, A. M.
(2019). Comparative Phytochemical Analysis and Antioxidant Activities of Tamalakyadi Decoction
with Its Modified Dosage Forms. Evidence-Based Complementary and Alternative Medicine, 2019,
1–9. doi:10.1155/2019/6037137 PMID:31186663
Manousi, N., Sarakatsianos, I., & Samanidou, V. (2019). Extraction techniques of Phenolic compounds
and other Bioactive compounds from medicinal and aromatic plants. In Engineering Tools in the Bever-
age Industry (pp. 284–314). Elsevier Inc., doi:10.1016/B978-0-12-815258-4.00010-X
Nafiu, M. O., Hamid, A. A., Muritala, H. F., & Adeyemi, S. B. (2017). Preparation, Standardization,
and Quality Control of Medicinal Plants in Africa. Medicinal Spices and Vegetables from Africa.,
doi:10.1016/B978-0-12-809286-6.00007-8
Ren, W., Ma, Y., Wang, R., Liang, P., Sun, Q., Pu, Q., Dong, L., Mazhar, M., Luo, G., & Yang, S. (2021).
Research Advance on QingfeiPaidu Decoction in Prescription Principle, Mechanism Analysis and Clinical
Application. Frontiers in Pharmacology, 11, 589714. doi:10.3389/fphar.2020.589714 PMID:33584265
EBSCOhost - printed on 2/13/2023 11:18 AM via . All use subject to https://www.ebsco.com/terms-of-use
29

Decoction and Their Biological Activities
Rodrigues, A. M., Vieira, P. L., Madeira, P., Pacheco, R., Florencio, M. H., Ascensao, L., & Marques, M.
L. (2020). Phenolic profile and biological activities of decoctions from Santolina impressa, a Portuguese
endemic species. Journal of Herbal Medicine, 21, 100335. Advance online publication. doi:10.1016/j.
hermed.2020.100335
Sasidharan, S., Chen, Y., Saravanan, D., & Sundram, V.L., & Latha. (2011). Extraction, Isolation and
characterization of bioactive compounds from plant’s extracts. African Journal of Traditional, Comple-
mentary, and Alternative Medicines, 8(1), 1–10. PMID:22238476
Sebai, H., Jabri, H-A., Souli, A., Rtibi, K., Selmi, S., Tebourbi, O., El-Benna, J. & Sakly, M. Antidiarrheal and antioxidant activities of chamomile (Matricaria recutita L.) decoction extract in rats. Journal
of Ethnopharmacology, 152(2), 327-332. doi:10.1016/j.jep.2014.01.015
Shi, S. Y., Zhou, Q., He, Z. Q., Shen, Z. F., Zhang, W. X., Zhang, D., Xu, C. B., Geng, J., Wu, B. S., &
Chen, Y. G. (2020). Traditional Chinese medicine (Liang-Xue-Di-Huang Decoction) for hemorrhoid
hemorrhage: Study Protocol Clinical Trial (SPIRIT Compliant). Medicine, 99(16), e19720. doi:10.1097/
MD.0000000000019720 PMID:32311960
Sun, X., Xue, D., Zhang, K., Jiang, F., & Li, D. (2021). Acrid-release and bitter-downbearing therapy
and banxia xiexin decoction regulate Wnt/β-catenin pathway, inhibit proliferation and invasion, and induce apoptosis in gastric cancer cells. American Journal of Translational Research, 13(6), 6211–6220.
PMID:34306360
Wang, X., Saud, S. M., Zhang, X., Li, W., & Hua, B. (2019). Protective effect of Shaoyao Decoction
against colorectal cancer via the Keap1–Nrf2–ARE signaling pathway. J. Ethnopharm. doi:10.1016/j.
jep.2019.111981
Xu, J., Wang, R., You, S., Zhang, L., Zheng, P., Ji, G. & Liu, B. (2020). Traditional Chinese medicine
Lingguizhugan decoction treating non-alcoholic fatty liver disease with spleen-yang deficiency pattern:
Study protocol for a multicenter randomized controlled trial. Trials, 21(1), 512. . doi:10.1186/s13063-
020-04362-7
Yang, C., Lv, X. D., Pang, L. J., Wang, L. L., Cong, G. Q., & Zhang, H. Y. (2020). Analysis of novel
coronavirus pneumonia treatment with Chinese herbal compound. Hainan Yixueyuan Xuebao, 26(13),
961–966. doi:10.13210/j.cnki.jhmu.20200515.002
Yang, R., Liu, H., Bai, C., Wang, Y., Zhang, X., Guo, R., Wu, S., Wang, J., Leung, E., Chang, H., Li, P.,
Liu, T., & Wang, Y. (2020). Chemical composition and pharmacological mechanism of Qingfei Paidu
Decoction and Ma Xing Shi Gan Decoction against Coronavirus Disease 2019 (COVID-19): In silico
and experimental study. Pharmacological Research, 157, 104820. doi:10.1016/j.phrs.2020.104820
PMID:32360484
Yao, Y., Zhang, X., Wang, Z., Zheng, C., Li, P., Huang, C., Tao, W., Xiao, W., Wang, Y., Huang, L., &
Yang, L. (2013). Deciphering the combination principles of Traditional Chinese Medicine from a systems pharmacology perspective based on Ma-huang Decoction. Journal of Ethnopharmacology, 150(2),
619–638. doi:10.1016/j.jep.2013.09.018 PMID:24064232
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Zhang, H., Wang, W-R., Lin, R., Zhang, J-Y., Ji, Q-L., Lin, Q-Q. & Yang, L-N. (2010). Buyang Huanwu
decoction ameliorates coronary heart disease with Qi deficiency and blood stasis syndrome by reducing
CRP and CD40 in rats. doi:10.1016/j.jep.2010.04.017
Zhang, K., Zeng, X., Chen, Y., Zhao, R., Wang, H., & Wu, J. (2017). Therapeutic effects of Qian-Yu
decoction and its three extracts on carrageenan induced chronic prostatitis/chronic pelvic pain syndrome
in rats. BMC Complementary and Alternative Medicine, 17(75), 1–11. doi:10.118612906-016-1553-7
PMID:28122556
Zhang, Q.-W., Lin, L.-G., & Ye, W.-C. (2018). Techniques for extraction and isolation of natural products:
A comprehensive review. Chinese Medicine, 13(1), 20. doi:10.118613020-018-0177-x PMID:29692864
Zhang, Y. & Zhang, S. (2008). Inhibition effect of Guizhi-Fuling-decoction on the invasion of human
cervical cancer. doi:10.1016/j.jep.2008.07.044
Zhou, W., Cheng, X., & Zhang, Y. (2016). Effect of Liuwei Dihuang decoction, a traditional Chinese
medicinal prescription, on the neuroendocrine immunomodulation network. Pharmacology & Therapeu-
tics, 162, 170–178. Advance online publication. doi:10.1016/j.pharmthera.2016.02.004 PMID:26896567
Zuo, H., Zhang, Q., Su, S., Chen, Q., Yang, F. & Hu, Y. (2018). A network pharmacology-based approach to analyse potential targets of traditional herbal formulas: An example of Yu Ping Feng decoction.
Scientific Reports, 8(1), 11418. doi:10.1038/s41598-018-29764-1
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Chapter 3
Role of Medicinal Plants and
Herbs in Veterinary Medicine
Bhumika Varshney
Mangalayatan University, India
Sumit Malik
Shoolini University, India
Ajeet Singh
https://orcid.org/0000-0002-4393-8889
Gurukul Kangri University, India
Nikhil Mehta
Kurukshetra University, India
ABSTRACT
Ethnoveterinary medicine is a branch of ethnobotany concerned with the study of traditional remedies.
Ethnoveterinary methods are as old as domestication of numerous livestock species when it comes to
animal healthcare. Herbal medicine has experienced a variety of conceptual modifications over time,
yet its tone has stayed mostly same from antiquity to the present. Antibacterial, antifungal, insecticidal,
and antioxidant action has been demonstrated for plants. Herbal treatment strives to not only cure the
underlying cause of the illness, but also to reverse aberrant symptoms and restore the animals’ health
and vigour.
INTRODUCTION
Medicinal plants have been used as a source of healing in local communities all over the world for
thousands of years. Nonetheless, for around 85 % of the world’s population, it is still significant as a
primary healthcare technique, and as a drug discovery resource, with 80% of all synthetic medicines
derived from them (Bauer & Brönstrup, 2014; Singh & Navneet, 2016, 2017a).It is unsurprising that
people have utilised the same plant remedies for the animals in their care for as long as humans have been
DOI: 10.4018/978-1-6684-5129-8.ch003
Copyright © 2022, IGI Global. Copying or distributing in print or electronic forms without written permission of IGI Global is prohibited.
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Role of Medicinal Plants and Herbs in Veterinary Medicine
Figure 1. Administering liquid medicine with a bamboo bottle is an aspect of the old Chinese-Japanese
art of horse healing.
linked with animals. Thus, for most of history, the evolution of veterinary botanical medicine, the earliest
kind of veterinary medicine, has paralleled the progress of human medicine. Indeed, herbal medicine
has experienced a lot of conceptual transformations throughout history, but its tone has remained substantially unaltered from antiquity to the present. Herbal medicine is holistic, empiricist, and vitalist in
attitude, and some herbalists believe that it should stay such even while contemporary medicine attempts
to embrace the use of herbs as “drugs” in search of the “active ingredient.” This “scientism,” which may
verge on reductionism, is essentially a new philosophy in the context of herbal medicine (Pešić, 2015).
Evidence shows that Ayurveda, which originated in India, was possibly the first medicinal system.
The use of medicinal herbs in the treatment of people and animals is mentioned in the Rig Veda, the
earliest source of human knowledge, written between 4500 and 1600 BCE. The “Nakul Samhita,” published about the same time, was possibly the first book on the use of herbs in the healing of animals.
Animal husbandry chapters such as “Management and Feeding” may be found in ancient texts such as
the Skandh Puran, Devi Puran, Harit, and others. Palkapya (1000 BC) and Shalihotra (2350 BC) were
well-known veterinarians who specialised in elephant and horse care (Unknown, 2004). King Asoka
(274-236 BC) commissioned individuals to cultivate herbs for use in the care of ill and elderly animals
(Wynn & Fougère, 2006). Ricinius, pepper, lily, and valerian are among the medicines described in early
Ayuvedic literature of the CharakaSamhita (200 BC-AD 200). Vasant Lad characterises the foundation
of Ayurveda (“life science”) in a way that mirrors the Tao of Chinese medicine and the humours of
Greek medicine:
In 3700 BC, a Chinese monarch called Shen Nong composed one of the earliest known and longest
surviving Materia Medica. Shen Nong (the Divine Farmer) is regarded as the legendary founder of
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Role of Medicinal Plants and Herbs in Veterinary Medicine
Chinese herbal medicine. Hundreds of plants are said to have been tasted by him, identifying those that
may be used as cures, and characterising their qualities. As a result of his work, several plants are now
commonly utilised in treatment, and information has been passed down through oral tradition for generations. His herbal Materia Medica book included herbal Materia Medica for both humans and animals. It’s
worth noting that it talked about the antifever effects of Artemesia annua (Chinese wormwood), which
has recently been proved to be particularly efficient against malaria (Yang, 1997).
When compared to the Egyptians, the ancient Greek and Roman societies advanced veterinary science in comparable but slightly distinct paths. The “Hippiatrika” is one of the first writings we come
across that mentions Roman practitioners and their study of horses (Walker, 1991). Around 500 BC,
the name “Hippiatros” was used in Greece to designate to horse physicians (Swabe, 1999). The horse
was important in Greek and Roman civilization because members of society relied on it for military and
commercial purposes. Earlier (between 383 BC and 322 BC), Aristotle, known as the “Father of Veterinary Medicine,” was a powerful figure in Greek culture. Aristotle’s publications covered a wide range
of topics, including physiology, comparative anatomy, and disease.In works such as HistoriaAnimalium,
De Partibus Animalium, De Generatione Animalium, and Problematicum, he contrasted animal and
human anatomy, physiology, and illness (Zerobin, 1998). Hippocrates had a significant impact on both
veterinary and herbal medicine (460-377 BC). He developed the humoral theory and authored Corpus
Hippocraticum, in which he described over 200 plants.
Herbal medicine is being employed as a whole system of treatment by herbalists and as a supplementary therapy by medical experts. Regardless of how herbs fit into the practise of medicine, there is
typically some guiding theory at work for their prescription. According to modern herbalists, there are
three major principles that underpin herbal use: (i)scientific herbal medicine, or Phytotherapy—this is
often reductionistic, researching herbs and illnesses in isolation in order to comprehend them as molecular interactions that can be studied more easily than complete systems. Evidence-based therapies
are commonly used by phytotherapists; (ii) Heroic—in this theory, disease is generally viewed as an
accumulation of poisons that worsens with age. The treatment focuses on detoxification and limiting
one’s exposure to pollutants. The herbs utilized in this tradition are potent, beginning with laxatives,
diuretics, and diaphoretics (iii) Traditional medicine—The most comprehensive of the traditions. Wise
Woman medicine, Native American medicine, Chinese medicine, and other cultural medical systems
are examples of traditional medicine and views the organism, restoring health with basic herbs, physical
exercise, diet, and mental support (Babu et al., 2017; Singh et al., 2017).
APPLICATIONS OF SELF-MEDICATION
Health-maintenance programmes are adaptable, but they are not without flaws. The capacity to properly
self-medicate necessitates a complex combination of intrinsic behavioral skills and refinement gained
via learning (experience). It is not proper to abandon sick animals, even if they are free roaming, in the
expectation that they would find a method to self-medicate, especially naive or domesticated animals.
The greater the number of opportunities for animals to understand the consequences of their behaviors,
the better. Domestication has not chosen individuals based on their capacity to self-regulate, and the
domestic setting frequently gives minimal chance for trial and error, exposure to potentially harmful
bioactive compounds, or gaining knowledge through other people’s observations. Nonetheless, consider-
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Role of Medicinal Plants and Herbs in Veterinary Medicine
Figure 2. Chimpanzee sucks on the bitter pith of Vernoniaamygdalina (bitter leaf) in Tanzania. (Courtesy
Michael Huffman)
ing the scarcity of studies in this field, the examples shown here show that domestic animals maintain
a surprising breadth of self-medicating abilities.
Understanding how animals seek to self-medicate is critical if we are to create optimal self-regulation
circumstances. Hedonic feedback can explain a lot of the self-medication we witness. This guarantees
that animals rarely seek to eat very harmful chemicals and instead favor ones that provide immediate
positive feedback. When it comes to finding relief from discomfort, hedonic feedback guarantees that
animals employ safer, less potent “treatments” and only on rare occasions succumb to the harsher, frequently more poisonous medicines. This suggests that long-term moderate self-regulation will be more
prevalent than spectacular therapeutic efforts including heavy drugs. Individuals are prone to intoxication
and even addiction when they consume drugs that give a “feel good component.” Although not covered
in this article, both intoxication and addiction occur in both wild and domestic species. The fact that an
animal rapidly eats a drug does not imply that the substance is safe to take in infinite quantities.
Chimpanzees and humans have equivalent taste preferences. They favour sweet dishes to bitter ones.
Vernonia amygdalina, often known as bitter leaf, is a tiny plant found in Tanzania’s Mahale Mountains.
Most indigenous animals are effectively kept away by its intense bitterness, while introduced domesticated
goats are unable to recognise the hazards; as a result, another frequent name for this plant is “goat killer.”
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Role of Medicinal Plants and Herbs in Veterinary Medicine
When ill, local chimps seek out this bitter, deadly plant, meticulously stripping off the outer layers of
shoots and chewing and sucking the juicy bitter pith. Locals see the plant as a powerful remedy, using it
to cure malarial fever, stomachaches, schistosomiasis, amoebic dysentery, and other intestinal parasites.
USES MEDICINAL PLANTS IN ZOONOTIC DISEASES
Gastrointestinal Disorders
The gastrointestinal system was the primary target of EVM, accounting for 28 % of total Ethnoveterinary
therapy. The most commonly utilised species were Malvasylvestris L., Vitisvinifera L., and Matricari-
achamomilla L. Apart from Mercurialisannua L., which has historically been employed as an anti-con-
stipation agent, numerous plant species appear to be potential gastrointestinal agents (Vanderbrouckeet
al., 2010). EVM herbs including wormwood (Artemisia absinthium L.), elderberry (Sambucusnigra
L.), yarrow (Achilleamillefolium L.), and linseed (Linumusitatissimum L. seeds) may help with gastro-
intestinal issues such colic, indigestion, tympani, and meteorism. On the one hand, they’re well-known
in human phytotherapy for treating identical ailments (Mayer et al., 2014). Chewing willow by sheep
enhances salivary output (Gieseckeet al., 1976), which might lead to rumination reactivation, according
to EVM reports from Italy and Turkey. However, further pharmacological study is needed to back up
these claims. The same may be said about garlic (Allium sativum L.), which is most widely used as an
antiparasitic but has also been reported as a gastrointestinal agent by EVM in Italy. Garlic was recently
studied in sheep to see whether it may help with digestion (Patraet al., 2011), however more fundamental
research is needed to back up this claim. In terms of anti-diarrheal, EVM advocates a diverse range of
plants, with no continuous repeat of the same species. Because of their tannin content, Quercus ilex L.
and Hordeumvulgare L. may be beneficial (Favre et al., 1993), but more phytochemical understanding
and standardised preparations are needed for clinical studies in ruminants.
Malvasylvestris L.
The principal components responsible for mallow’s medicinal benefits are mucilaginous heteropolysaccharides, which are found mostly in the leaves (6.0-7.2 %), flowers (3,8-7,3 %), and roots (7,5 %).
Leaves and aerial parts were usually provided orally and were thought to be beneficial in cases of numerous digestive disorders, such as abdominal colic, tympanism, reactivation of rumination in small and
large ruminants, nonspecific digestive issues, diarrhoea, and constipation (Mayer et al., 2014; Singh &
Navneet, 2017b).
Matricariachamomilla L.
A sesquiterpene-containing essential oil and flavones are the main components of chamomile flowers.
Chamomile flowers and aerial parts were mostly used in EVM as a decoction or infusion to alleviate
cattle digestion issues and colic discomfort. Scientific literature and veterinary phytotherapy textbooks
and manuals (Wynn & Fougère, 2006; Mayer et al., 2014) support the usage.
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Role of Medicinal Plants and Herbs in Veterinary Medicine
Dermatological Disorders
Plant species that have been indicated for the treatment of dermatological problems, notably wound
and ulcer preparations, may also could treat claw disorders.EVM lists three herbs that are effective
against cow ringworm. Ilex aquifulium L. and Rhamnuscatharticus L. appear to have a more ceremonial
function, but Lupinusalbus L. is the sole plant that may be applied directly to the skin. Although cow
ringworm isn’t as common as human ringworm, it’s nonetheless a serious zoonotic fungal illness that
need treatment (Havlickovaet al., 2008).In EVM (Full form), Broadleaf Plantain (Plantago major L.)
was widely discussed as a vulnerary medicine. Veterinary phytotherapy books and manuals, as well as
phytochemical investigations, appear to support its medical use. As a result, because there is presently
little clinical research concerning veterinary usage, a specific veterinarian assessment would be required.
Mallow and St. John’s wort (Hypericumperforatum L.), both well-known in EVM and listed as vulnerary medications in scientific literature, are examples of this (Mayer et al., 2014). Although respiratory
diseases are not a major problem in organic dairy farming, they are a major cause of antibiotic usage
in conventional farms (Sivulaet al., 1996) and in other livestock species such as chickens and pigs. In
EVM, the most common respiratory agents are mallow and chamomile. Antimicrobial characteristics
may justify their usage, although more research into the impact on the respiratory system is needed.
Inhaling chamomile oil has been shown to have positive effects in people (Salleret al., 1990). Given the
particular toxicity of cardiac glycosides contained in the plants, the widespread usage of Helleborussp.
in EVM comes as a surprise (Slifmanet al., 1998).Helleborus spp. roots or branches are put beneath the
skin of ill animals in Italy, Romania, Serbia, and Turkey to cure respiratory disorders. Hellborus has
been used as an immunostimulant (Nueleanu, 2008; Maior&Dobrotă, 2013).
Scrophulariacanina L.
This plant species has been used to heal dermatological issues, as well as cuts and ulcers, as well as claws
and hoofs, according to EVM. Iridoid glycosides, a component of Scrophulariaceae, may have a function
as active principle, however there is little published evidence (Stevenson et al., 2002; Tundiset al., 2014).
Pinushalepensis L.
According to contemporary study, the traditional usage of has a scientific basis, conifer resins for wound
and ulcer therapy. The needles, twigs, and buds of the Aleppo pine have antibacterial action against a
variety of bacterial diseases (Sipponenet al., 2008; Sipponenet al., 2012; Clark et al., 2014)
Antiparasitic Products
The cost of treating ruminants with anthelmintics in Europe is estimated to be over EUR 53 million per
year (Ayazet al., 2008). The rise in drug resistance necessitates new approaches in both conventional and
organic agriculture. Furthermore, gastrointestinal parasites pose a significant risk, particularly to organic
sheep and goat production (Mayer et al., 2014).EVM identifies white lupin (Lupinusalbus L.) and cade
(Juniperusoxicedrus L.) as the most potential anti-parasitic plants against ectoparasites. White lupin
seeds are cooked and applied to the skin of animals, most likely owing to the alkaloid’s richness of the
bitter variants of this plant (e.g., lupanin) (Wasilewko&Buraczewska, 1999), and are apparently useful
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