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Hawu, O.;  Ravhuhali, K.E.;  Musekwa, M.G.;  Sipango, N.;  Mudau, H.S.;  Mokoboki, K.H.;  Moyo, B. The Viscum Species for Diet and Medicinal Purposes. Encyclopedia. Available online: https://encyclopedia.pub/entry/28730 (accessed on 29 December 2024).
Hawu O,  Ravhuhali KE,  Musekwa MG,  Sipango N,  Mudau HS,  Mokoboki KH, et al. The Viscum Species for Diet and Medicinal Purposes. Encyclopedia. Available at: https://encyclopedia.pub/entry/28730. Accessed December 29, 2024.
Hawu, Onke, Khuliso Emmanuel Ravhuhali, Mutshidzi Given Musekwa, Nkosomzi Sipango, Humbelani Silas Mudau, Kwena Hilda Mokoboki, Bethwell Moyo. "The Viscum Species for Diet and Medicinal Purposes" Encyclopedia, https://encyclopedia.pub/entry/28730 (accessed December 29, 2024).
Hawu, O.,  Ravhuhali, K.E.,  Musekwa, M.G.,  Sipango, N.,  Mudau, H.S.,  Mokoboki, K.H., & Moyo, B. (2022, October 10). The Viscum Species for Diet and Medicinal Purposes. In Encyclopedia. https://encyclopedia.pub/entry/28730
Hawu, Onke, et al. "The Viscum Species for Diet and Medicinal Purposes." Encyclopedia. Web. 10 October, 2022.
The Viscum Species for Diet and Medicinal Purposes
Edit

True mistletoe (of the Viscum species) is a semi-parasitic, perennial browse species that is found attached to its host—a shrub or a tree. It has important pharmaceutical and chemical properties that allow it to be used for a variety of purposes, including livestock production. 

semi-arid protein host parasitic

1. Introduction

Finding inexpensive alternative protein sources such as the Viscum species is necessary since livestock productivity has continued to be severely constrained by the cost of livestock feed. True mistletoe (of the genus Viscum) is a semi-parasitic, perennial browse species that attaches to its host, shrubs or various tree species [1][2]. It is mainly dispersed by frugivorous birds from one host to another [1]. It has fodder value, as well as anthelmintic and therapeutic properties with evergreen leaves [2][3]. The genus Viscum contains many species that are primarily found in America, Africa, Asia, and Europe [4]. The Viscum spp. found in southern Africa include V. verrucosum, V. rotundifolium, V. anceps, V. songimveloensis, and V. combreticola [5][6][7]. They are fodder resources for ruminants, especially during dry periods when good quality forage is scarce [8]. Öztürk et al. [3] highlighted that the Viscum species extract nutrients and water from their host; hence, they are a rich fodder resource for ruminants.
True mistletoes are ingested and preferred by livestock without any reported digestive orders [9]. Even though their ecological importance for birds, medicinal properties, and fodder value for livestock are known, they are still regularly removed from orchards and rangelands/forests due to their detrimental effect on the host plant [10].

2. Description of the Viscum Species

True mistletoe (Viscum spp.) is an evergreen hemiparasitic plant that inhabits trees. Yellowish flowers, small yellowish green leaves, and waxy, white berries characterize this parasitic plant (Figure 1). Some of the species have leaves while some do not have leaves (Table 1). For example, V. album, when on the branch of a host tree, will grow as much as 60–90 cm long with a drooping yellowish evergreen shrub. It has densely packed forking branches that are 5 cm long, leathery, oval- to lance-shaped leaves that are placed in pairs on branches. The bisexual, or unisexual, blooms are arranged in tight spikes and have consistent symmetry [11]. However, some Viscum spp. have smooth, round, green stems that are covered in sessile, yellowish blooms in tiny clusters (Figure 2). The flowers of the Viscaceae family are narrow, tubular, dioecious, with (or without) a corolla, and thus pollinated by insects and the wind [12].
Figure 1. Viscum rotundifolium in Limpopo Province, photo taken by KE Ravhuhali.
Figure 2. Viscum verrucosum Harv. in North West Province, photos taken by O Hawu.
Table 1. Viscum species and their distribution.

3. Adaptation of the Species

Viscum spp. grow on the branches of various tree species. They extract nutrients and water from the host plant for their survival [22]. Although their leaves may photosynthesize, they do so at a slower rate than their hosts [23]. Ahmad et al. [24] highlighted that they contain a functionally low amount of chlorophyll, and their low capability for photosynthesis explains their capability to adapt to dry conditions. They can survive in semi-arid regions, deserts, temperate woodlands, and semi-tropic wetlands [25]. It has been suggested that true mistletoes selectively parasitize host species that are high in nitrogen since nitrogen is frequently a limiting resource for plants [26]. Moreover, in South Africa, the genus Vachellia are the most important hosts of Viscum spp. Clark et al. [27] highlighted that there are just four Viscum species in South Africa that are unique or specific to a single host, which is a relatively low number.

4. Negative Impact and Control of the Viscum Species

It has been extensively researched for years how common Viscum spp. affect woody species, particularly in rangelands and in plantations. Mistletoe inhibits host tree development by reducing carbon absorption and host tree carbohydrates, all of which have an impact on the quality and quantity of woody species produced and the soil’s nutrient cycle [28]. Within its current range, mistletoe abundance has been growing, and the intensification of climatic stress in the form of protracted droughts has increased the rate of tree mortality in mistletoe-infected woody species, thus altering the dynamics of the community [29]. Moreover, true mistletoe spp. induce nutrient and water stress, which, in turn, changes the phyto-hormone profile, as well the defense mechanism of the host plant and causes affected trees to be more susceptible to insect attacks [30]. To overcome such problems, mistletoe spp. infestations should be controlled or managed in the rangelands.
Viscum spp. can be controlled using mechanical, chemical, or biological means. The single most successful approach to eradicate mistletoe in rangelands or forests is mechanical removal of mistletoe by clipping infected branches; however, this requires a large amount of labor and finances [28]. The use of chemicals as a control measure has been documented. Further, injecting a chemical into the trunk of a plant with mistletoe has been proposed [31]. However, this method does not address the root of the infestation and entails the possibility that the dosage will either fail to eradicate the mistletoe or harm the host plant. Livestock browse preferably on mistletoes when available; this, therefore, suggests that livestock can be used as biological agents to control the spread of mistletoe spp. However, it is unknown whether livestock have a comparable preference for mistletoes on plant hosts.

5. Crude Protein and Fiber Fraction of Viscum Species

The high prices of livestock’s more conventional feeds make Viscum spp. a nutritionally suitable feed for ruminants during particularly dry periods. Grasses during this period normally deteriorate and lose their nutritive value. The nutritive value of Viscum spp. usually varies from one host to another due to link-specific nutrient transfer characteristics [32]. Previous studies have reported that Viscum spp. have a crude protein (CP) content of more than 80 g/kg DM, which is considered to be enough for rumen microbes in growing ruminants (cattle, sheep, and goats) [2][33]. This further highlights the importance of Viscum spp. during the dry season, as they address protein deficiencies when the CP content of grasses is between 20 and 60 g/kg DM. Hawu et al. [34] highlighted that low CP content usually decreases feed intake, and adversely affects ruminant growth and productivity.
The fiber content of forage is one of the most vital parameters to consider as this will affect both feed intake and digestibility for ruminants. Viscum spp. contain relatively low fiber concentrations, as shown in Table 2; this is due to their low photosynthesis capacity. Viscum spp. may not produce some more complex carbon materials such as fiber, which are, however, produced by other woody browse species [35]. Consequently, Viscum spp. do not have high acid detergent fiber, neutral detergent fiber, or acid detergent lignin content, thus making them highly digestible. Therefore, the low fiber content in Viscum spp. does not constrain the use of Viscum spp. as a fodder for ruminants that are adept at utilizing forages that are high in fiber.
Table 2. Chemical composition (g/kg DM) of Viscum species.

References

  1. Teodoro, G.S.; van den Berg, E.; Arruda, R. Metapopulation dynamics of the mistletoe and its host in savanna areas with different fire occurrence. PLoS ONE 2013, 8, 65836.
  2. Ramantsi, R.; Mnisi, C.M.; Ravhuhali, K.E. Chemical composition and in vitro dry matter degradability of mistletoe (Viscum verrucosum (Harv.)) on Vachellia nilotica (L.) in North West Province of South Africa. Trop. Agric. 2019, 96, 53–60.
  3. Öztürk, Y.E.; Gülümser, E.; MUT, H.; Başaran, U.; Doğrusöz, M.Ç. A preliminary study on change of mistletoe (Viscum albüm L.) silage quality according to collection time and host tree species. Turk. J. Agric. Forest. 2022, 46, 104–112.
  4. Kleszken, E.; Timar, A.V.; Memete, A.R.; Miere, F.; Vicas, S.I. On Overview of Bioactive Compounds, Biological And Pharmacological Effects Of Mistletoe (Viscum Album L.). Pharmacophore 2022, 13, 10–26.
  5. Okubamichael, D.Y.; Griffiths, M.E.; Ward, D. Host specificity, nutrient and water dynamics of the mistletoe Viscum rotundifolium and its potential host species in the Kalahari of South Africa. J. Arid Environ. 2011, 75, 898–902.
  6. Ndagurwa, H.G.T.; Dube, J.S. Evaluation of potential and effective rumen digestion of mistletoe species and woody species browsed by goats in a semi-arid savanna, southwest Zimbabwe. Anim. Feed Sci. Technol. 2013, 186, 106–111.
  7. Oosthuizen, D.; Balkwill, K. Viscum songimveloensis, a new species of mistletoe from South Africa. S. Afr. J. Bot. 2018, 115, 194–198.
  8. Majeed, M.; Rehman, R.U. Phytochemistry, Pharmacology, and Toxicity of an Epiphytic Medicinal Shrub Viscum album L. (White Berry Mistletoe). In Medicinal and Aromatic Plants; Aftab, T., Hakeem, K.R., Eds.; Springer Nature: Cham, Switzerland, 2021; pp. 287–301.
  9. Abubakar, A.D.; Abubakar, M.; Yerima, J. Response of Red Sokoto Bucks Fed Graded Levels of Mistletoe Leaf Meal. Niger. J. Anim. Sci. Technol. 2021, 4, 74–80.
  10. Kim, C.W.; An, C.H.; Lee, H.S.; Yi, J.S.; Cheong, E.J.; Lim, S.H.; Kim, H.Y. Proximate and mineral components of Viscum album var. coloratum grown on eight different host tree species. J. Forest. Res. 2019, 30, 1245–1253.
  11. Maul, K.; Krug, M.; Nickrent, D.L.; Müller, K.F.; Quandt, D.; Wicke, S. Morphology, geographic distribution, and host preferences are poor predictors of phylogenetic relatedness in the mistletoe genus Viscum L. Mol. Phylogenet. Evol. 2019, 131, 106–115.
  12. Muche, M.; Muasya, A.M.; Tsegay, B.A. Biology and resource acquisition of mistletoes, and the defense responses of host plants. Ecol. Process 2022, 11, 24.
  13. Patel, B.P.; Singh, P.K. Viscum articulatum Burm. f.: A review on its phytochemistry, pharmacology and traditional uses. J. Pharm. Pharmacol. 2018, 70, 159–177.
  14. Adeneye, A.A. Subchronic and chronic toxicities of African medicinal plants. In Toxicological Survey of African Medicinal Plants; Kuete, V., Ed.; Elsevier: Amsterdam, The Netherlands, 2014; pp. 99–133.
  15. Aparicio Martínez, A.; Gallego Cidoncha, M.J.; Vázquez, C. Reproductive biology of Viscum cruciatum (viscaceae) in southern Spain. Int. J. Plant Sci. 1995, 156, 42–49.
  16. Smith, D.; Barkman, T.J.; de Pamphilis, C.W. Hemiparasitism. In Encyclopedia of Biodiversity, 2nd ed.; Scheiner, M.S., Ed.; Elsevier Inc.: Amsterdam, The Netherlands, 2001; pp. 70–78.
  17. Besri, M. Viscum cruciatum: A threat to the olive production in the Moroccan Rif Mountains. IOBC WPRS Bull. 2005, 28, 169.
  18. Sunil Kumar, K.N.; Puneeth, V.S.; Tamizh, M.M.; Rubeena, M. Monograph on quality standards of Viscum angulatum B. Heyne ex DC. Indian J. Nat. Prod. Resour. 2021, 11, 320–332.
  19. Wiens, D.; Tölken, H.R. Viscaceae. In Flora of Southern Africa; Leistner, O.A., Ed.; Botanical Research Institute: Pretoria, South Africa, 1979; Volume 10, pp. 43–56.
  20. Sosnovsky, Y.; Krasylenko, Y.; Nachychko, V. Viscum meyeri (Viscaceae)—A new name for Viscum anceps, an old-established mistletoe species endemic to southern Africa. Phytotaxa 2021, 523, 284–290.
  21. Wiens, D.; Barlow, B.A. Translocation heterozygosity in southern African species of Viscum. Bothalia 1980, 13, 161–169.
  22. Anselmo-Moreira, F.; Teixeira-Costa, L.; Ceccantini, G.; Furlan, C.M. Mistletoe effects on the host tree Tapirira guianensis: Insights from primary and secondary metabolites. Chemoecology 2019, 29, 11–24.
  23. Al-Rowaily, S.L.; Al-Nomari, G.S.; Assaeed, A.M.; Facelli, J.M.; Dar, B.M.; El-Bana, M.I.; Abd-ElGawad, A.M. Infection by Plicosepalus curviflorus mistletoe affects the nutritional elements of Acacia species and soil nutrient recycling in an arid rangeland. Plant Ecol. 2020, 221, 1017–1028.
  24. Ahmad, S.; Mir, N.; Sultan, S. White-berry mistletoe (Viscum album L.): A hemiparasitic plant: Occurrence and ethnobotanical use in Kashmir. J. Pharmacog. Phytochem. 2018, 7, 1831–1833.
  25. Türe, C.; Böcük, H.; Aşan, Z. Nutritional relationships between hemi-parasitic mistletoe and some of its deciduous hosts in different habitats. Biologia 2010, 65, 859–867.
  26. Okubamichael, D.Y.; Griffiths, M.E.; Ward, D. Host specificity in parasitic plants—Perspectives from mistletoes. AoB Plants 2016, 8, plw069.
  27. Clark, N.F.; McComb, J.A.; Taylor-Robinson, A.W. Host species of mistletoes (Loranthaceae and Viscaceae) in Australia. Aust. J. Bot. 2020, 68, 1–13.
  28. Szmidla, H.; Tkaczyk, M.; Plewa, R.; Tarwacki, G.; Sierota, Z. Impact of common mistletoe (Viscum album L.) on Scots pine forests—A call for action. Forests 2019, 10, 847.
  29. Griebel, A.; Watson, D.; Pendall, E. Mistletoe, friend and foe: Synthesizing ecosystem implications of mistletoe infection. Environ. Res. Letters 2017, 12, 115012.
  30. Griebel, A.; Metzen, D.; Pendall, E.; Nolan, R.H.; Clarke, H.; Renchon, A.A.; Boer, M.M. Recovery from Severe Mistletoe Infection After Heat- and Drought-Induced Mistletoe Death. Ecosystems 2022, 25, 1–16.
  31. Bhat, K.A.; Akhtar, S.; Dar, N.A.; Bhat, M.I.; Bhat, F.A.; Rizwan, R.; Horielov, O.; Krasylenko, Y. Mistletoe Eradicator-A Novel Tool for Simultaneous Mechanical and Chemical Control of Mistletoe. J. Vis. Exp. 2022, 181, e63455.
  32. Ndagurwa, H.G.T.; Dube, J.S. Nutritive value and digestibility of mistletoes and woody species browsed by goats in a semi-arid savanna, southwest Zimbabwe. Livest. Sci. 2013, 151, 163–170.
  33. Jibril, J.A.; Gazali, Y.M.; Dantani, M.; Alamin, H.; Zannah, B.B. Performance of Balami Rams Fed Graded Levels of Mistletoe Leaves (Viscum album) and Sorghum Stover in Semi-Arid Zone of Borno State, Nigeria. Niger. J. Anim. Sci. Technol. 2020, 3, 25–31.
  34. Hawu, O.; Ravhuhali, K.E.; Mokoboki, H.K.; Lebopa, C.K.; Sipango, N. Proximate analysis, in vitro dry matter degradability and palatability index of legume residues and maize straws for ruminants. Legume Res. 2022, 45, 601–607.
  35. Watson, L.H.; Owen-Smith, N. Phenological influences on the utilization of woody plants by eland in semi-arid shrubland. Afr. J. Ecol. 2002, 40, 65–75.
  36. Atalay, A.İ. Determination of nutritive value and anti-methanogenic potential of mistletoe leaves (Viscum album) grown on different host. Int. J. Agric. Forest. Life Sci. 2020, 4, 120–123.
  37. Madibela, O.R.; Boitumelo, W.S.; Letso, M. Chemical composition and in vitro dry matter digestibility of four parasitic plants (Tapinanthus lugardii, Erianthenum ngamicum, Viscum rotundifolium and Viscum verrucosum) in Botswana. Anim Feed Sci Technol. 2000, 84, 97–106.
  38. Madibela, O.R.; Mabutho, S.; Sebolai, B. Dry matter and crude protein degradability of four parasitic plants (Mistletoes) associated with browse trees in Botswana. Trop. Anim. Health Prod. 2003, 35, 365–372.
  39. Ishiwu, C.N.; Obiegbuna, J.E.; Aniagolu, N.M. Evaluation of chemical properties of mistletoe leaves from three trees (avocado, African oil bean and kola). Niger. Food J. 2013, 31, 1–7.
  40. Szurpnicka, A.; Kowalczuk, A.; Szterk, A. Biological activity of mistletoe: In vitro and in vivo studies and mechanisms of action. Arch. Pharmacal. Res. 2020, 43, 593–629.
  41. Ohikhena, F.U.; Wintola, O.A.; Afolayan, A.J. Proximate composition and mineral analysis of Phragmanthera capitata (Sprengel) Balle, a mistletoe growing on rubber tree. Res. J. Bot. 2017, 12, 23–31.
  42. Drury, S. Herbal remedies for livestock in seventeenth and eighteenth century England: Some examples. Folklore 1985, 96, 243–247.
  43. Iso, I.E.; Kennedy, O.O.O. Growth performance, carcass and meat quality of rabbits fed mistletoe leaf meal diet. J. Livest. Sci. 2021, 12, 220–228.
  44. Letso, M.; Thela, N. The substitution of a parasitic plant (Viscum verrucosum) for lucerne hay in sheep diets. Int. J. Livest. Res. 2013, 3, 33–41.
  45. Madibela, O.R.; Jansen, K. The use of indigenous parasitic plant (Viscum verrocosum) in reducing faecal egg counts in female Tswana goats. Livest. Res. Rural Dev. 2003, 15, 9.
  46. Kim, J.H.; Kim, D.W.; Kang, K.H.; Jang, B.G.; Yu, D.J.; Na, J.C.; Kim, S.H.; Lee, D.S.; Suh, O.S.; Choi, K.D.; et al. Effects on dietary Korean mistletoe on performance and blood characteristics in broilers. Korean J. Poult. Sci. 2007, 34, 129–136.
  47. Saleh, I.; Maigandi, S.A.; Hudu, M.I.; Abubakar, M.I.; Shehu, A.U. Uses and chemical composition of Misletoe (Viscum album) obtained from different species. Dutse J. Agric. Food Sec. 2015, 2, 8–12.
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