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Article

Feeding Preferences of Domestic and Wild Ungulates for Forage Trees in the Dry Tropics

by
Kenny López Benavides
1,
Lester Rocha
2,
Emmanuel Serrano
3 and
Jordi Bartolomé Filella
4,*
1
Estación Experimental Para el Estudio del Trópico Seco “El Limón”, Facultad Regional Multidisciplinaria de Estelí, Universidad Nacional Autónoma de Nicaragua, Managua P.O. Box 49, Nicaragua
2
Facultad de Ciencia Animal, Universidad Nacional Agraria, Managua P.O. Box 453, Nicaragua
3
Wildlife Ecology & Health Group (WE&H), and Servei d’Ecopatologia de Fauna Salvatje (SEFaS), Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain
4
Small Ruminant Research Group, Department of Animal and Food Science, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain
*
Author to whom correspondence should be addressed.
Sustainability 2022, 14(20), 13430; https://doi.org/10.3390/su142013430
Submission received: 3 September 2022 / Revised: 7 October 2022 / Accepted: 12 October 2022 / Published: 18 October 2022

Abstract

:
Silvopastoralism based on livestock feeding on forage trees is becoming a sustainable alternative to traditional grazing on the open pastures of dry tropical Central America. Four autochthonous trees, Acacia pennatula, Enterolobium cyclocarpum, Gliricidia sepium and Guazuma ulmifolia, and one exotic (Moringa oleifera) tree are the preferred species for these silvopastoral systems. Little is known, however, about the feeding preferences of cattle, sheep and goats for such fodder trees and whether wild ungulates (white-tailed deer, Odocoileus virginianus) feed on these plants. In this work, we conducted several multiple-choice feeding preference tests (cafeteria test) to compare the best choice to feed cattle, sheep, goats and white-tailed deer in these farming systems. Although all ruminant species included the four autochthonous trees and the exotic M. oleifera in their diets, G. ulmifolia was the preferred forage tree by far. The preference for the rest of the trees varied among our ruminant species. When M. oleifera was added to the cafeteria test, it was well accepted by white-tailed deer but little appreciated by their domestic counterparts. The use of these forage trees for livestock feeding is thus interesting not only for sustainable animal production but also to support wild herbivores in the dry tropics of Central America.

1. Introduction

Silvopastoralism is globally becoming a good alternative to traditional extensive production based on herbaceous pastures [1,2]. This farming modality, based on livestock feeding on multiple vegetation layers including trees, is gaining momentum in dry tropical environments where bi-seasonality causes food restrictions for half a year [3]. Forage trees are considered “protein banks” [4] because of the high protein contents of their shoots [5]. These plants are used to direct browsing or to create hedgerows that are recurrently pruned by farmers to maintain active growth of leaves and shoots to help livestock overcome periods of food scarcity [6]. The fast increase in areas of forest cleared or burned to make way for crops for livestock is one of the main causes of deforestation in the tropics [7]. Silvopastoral farming based on forage trees would contribute to the restoration of ranching lands [8]. However, little is known about the feeding preferences of livestock for these fodder trees [9]. This information is crucial for designing new silvopastoral systems but in particular when farming is based on mixed herds in rotation or during simultaneous grazing (i.e., different livestock species grazing at the same place and time) [10]. When domestic ruminants have the same feeding preferences, farming may result in competition for the same resource, increasing feeding time variation [11] and decreasing production [12]. However, when livestock species have contrasted feeding preferences, there is a boosted food resource exploitation and more sustainable farming [13]. These silvopastoral systems also provide food and shelter for native wildlife [14], and thus, understanding food resource partitioning between livestock and free-ranging wildlife would contribute to nature protection.
In Central America, Acacia pennatula (“carbón”), Enterolobium cyclocarpum (“guanacaste”), Gliricidia sepium (“madero negro”) and Guazuma ulmifolia (“guácimo”) are the main native tree species used for such silvopastoral purposes [15,16]. Moringa oleifera (“marango”), originally from northwest India, is also common in the region, where it is used for living fences to delimit paddocks and due to its nutritional properties, great adaptability, rapid growth and resistance to drought [17]. In fact, this fodder tree has been suggested as a key species to mitigate the effects of climate change on livestock production in the dry tropics worldwide [18]. Whether or not M. oleifera trees are influencing the feeding preferences of domestic and wild ungulates for native species remains unknown, and consequently, its use by domestic and wild ruminants.
For more than half a century, cattle and small ruminants (sheep and goats) have been the main extensive livestock of Central America [19]. White-tailed deer (Odocoelius virginianus truei) are also a common dweller in these silvopastoral systems, but in particular during the dry season when annual plants are scarce [20]. There is no information, however, about diet overlap between livestock and white-tailed deer in the dry tropics of Central America [21].
The objective of this work was to determine the preferences of cattle, sheep, goats and white-tailed deer for the main forage tree species of the Central American dry tropics. We also studied the effect of including M. oleifera in the feed rations on the feeding preferences of our ruminant species. The aim was to detect possible variations in preference for each tree species, specifically due to the anatomical, physiological and behavioural differences in the four ruminant species. The results obtained here will be of great interest for the sustainability of silvopastoral systems and their native fauna in Central America.

2. Materials and Methods

2.1. Study Area

The study was carried out at the Experimental Station “El Limón”, of the Universidad Nacional Autónoma de Nicaragua, in Managua, Nicaragua (13°05′31″ N, 86°21′14″ W). This facility is located on the Pacific side of the country at 890 m.a.s.l., with an average annual temperature of 22.3 °C and annual precipitation of 804 mm. The main raining season ranges from May to October. The soil is an acidic (pH: 5.9), clay-loam type with abundant soft rocks and 5.4% organic matter.

2.2. Forage Tree Species

This study’s autochthonous forage tree species are Acacia pennatula, Enterolobium cyclocarpum, Gliricidia sepium and Guazuma ulmifolia. All of them have great livestock interest for their resilience to browsing and their high nutritive value [22]. In addition, the exotic Moringa oleifera was also studied. This tree was introduced in Nicaragua for ornamental purposes back in the 1920s [23] and, as previously mentioned, is currently used for living fences in paddocks. For each tree species, two kilos of mixed fresh foliage from three individuals were collected by hand before starting the trial and stored in plastic bags.

2.3. Animal Species

For our feeding experiments, we used three domestic (cows Bos taurus, goats Capra hircus, and sheep Ovis aries) and one wild (white-tailed deer) ruminant species. Herds of cows and flocks of goats, sheep and white-tailed deer were kept in captivity for research purposes in the Limon station. The herd of cattle was made up of eight brown-Swiss × Brahman crossbred cows, 5–6 years old, lactating in cow–calf system, with a live weight of 382 ± 5 kg. The flock of sheep comprised 17 1–2 years old Pelibuey ewes of 27 ± 1 kg live weight. The flock of goats consisted of 14 8-year-old Anglo-Nubian goats of 49 ± 4 kg live weight.
The selected livestock was the most spread in the study area and completely adapted to local vegetation. Only prime-age or adult animals were used for our trials. Sheep, for example, ranged between 1–2 years old. Age selection for the rest of the breeds was opportunistic but always with adult individuals selected. The herd of nine white-tailed deer included individuals of different sex and age as occurs under free grazing conditions. We allowed animals to feed on the target species for a 5-day adaptation period to avoid biases during our feeding trial [24]. To detect the effect of a new forage species on the feeding behaviour, Moringa leaves were offered directly and without an adaptation period. Animals were kept under veterinary examination during the trials.

2.4. Feeding Trails

Our experiment was based on a set of multiple-choice feeding tests (cafeteria tests, hereafter) [25]. In brief, animals were placed in 3 × 4 m individual boxes to be observed individually. Four cows, six sheep and six goats, different in each season, were observed during the trial. For deer, the herd was kept in a 1052 m2 enclosure without pasture. The plant material consisted of leaves and stems of less than 0.5 cm in diameter, daily collected from the natural forest of the biological station. Plants were distributed in individual feeders easy accessible to animals.
We conducted two types of experiments, one for comparing the feeding preferences of domestic and native ruminants for the native trees and the other to explore the effect of the Moringa tree on the preferences for the native trees; in other words, we fed animals for seven consecutive days with the native species and then added Moringa for seven additional days. These experiments were set up in the dry and wet seasons and lasted 14 consecutive days. Each individual had 15 min for the cafeteria test once a day; food was offered in the morning, from 8:00 to 10:00 am. Regarding rations, we offered 500 g of fresh forage to cattle, 100 g for sheep and goats and 200 g for the flock of white-tailed deer. The amount of forage and the time of feeding were adjusted during the adaptation period. Forages were randomly distributed to avoid biases. After the cafeteria test, animals had free access to pastures of Paspalum notatum, Cynodon plectostachyus, and Hyparrhenia rufa in greenness period and water ad libitum. After testing, the flock of white-tailed deer had also free access to a specific commercial balanced fodder with the following composition: 91.74% dry matter, 14% crude protein, 25% neutral detergent fibre, 9.82% acid detergent fibre, 2.41% acid detergent lignin and 9% minerals.

2.5. Bite-Count Procedure

Bite count is a direct measurement with a long tradition in foraging behaviour research [26,27]. This method has been chosen for its ease of application in the field and because it does not require the estimation of the dry weight that is applied in the determination of preferences based on the difference between intake and rejection. Preferred species receive more bites than rejected items. The observer remained alongside the focal individual recording the number of bites by the offered plants. A bite was identified by seeing the animal removing a bite of forage. Four observers were trained in bite counting until interobserver variability disappeared. Each observer followed only one individual at a time. Total bite counts per individual over meal duration (15 min) were computed and used as the response variable for our statistical analyses.

2.6. Statistical Analysis

Since our bite counts were zero-inflated and over-dispersed, we used a zero-inflated Negative Binomial Generalized Linear Mixed Model (ZbGLMM) approach using the “glmmTMB” 1.1.3 version package [28] in R statistical software [29]. To avoid model overparameterization, in both the count and zero components, the fixed effect terms were the tree species, the season, the ruminant species, and the tree species × season and the tree species × ruminant species interactions. Additionally, the random effect terms were the animal identity, the feeding days, and the animal identity nested within season. Non-significant terms were removed using a stepwise model selection based on the Akaike Information Criterion (AIC). Multiple comparisons were conducted using the Tukey test, and the effect sizes were significant at α = 0.05.

2.7. Chemical Composition and Nutritive Value

The chemical components of forages are considered one of the major determinants of diet preference [30,31]. For this reason, the chemical composition and nutritive value of the foliage of the five tree species considered was obtained from an exhaustive literature review. The Internet network search engines used were Isi Web of Knowledge and Google Scholar. In them, the scientific names of each species were crossed with the following terms: chemical composition, crude protein, detergent acid fibre, detergent neutral fibre, detergent acid lignin, organic matter digestibility, total phenols, condensed tannins and energy content.

3. Results

Consumption, in terms of bite counting, of the four native fodder trees by ruminant species is summarised in Table 1 and Table 2.
Our ZbGLMM revealed that our bite counting depended on the ruminant species and the plant offered (Table 3). In general terms, plant consumption varied among our four native tree species, with A. pennatula the preferred tree, followed by G. ulmifolia, G. sepium and finally E. cyclocarpum (Table 1). The most consumed species was G. ulmifolia, but the rest of the preferences varied between animals. Goats gave more bites to this species and less but similar numbers to the other three species. Sheep also gave a higher number of bites to G. ulmifolia, but the fewest numbers were given to G. sepium. Cows ate more G. ulmifolia and A. pennatula and much less E. cyclocarpum and G. sepium. Finally, white-tailed deer browsed more in G. sepium and G. ulmifolia than in A. pennatula and E. cyclocarpum.
When the exotic tree was added to the four native species, the probability of selection was modified accordingly (A. pennatula = G. ulmifolia > G. sepium > E. cyclocarpum > M. oleifera, p < 0.05). We observed the same pattern in the probability of browsing among animal species and the number of bites during both seasons when M. oleifera was offered. Table 2 shows the consumption values after the introduction of the exotic tree, M. oleifera, in the multiple-choice test. Goats and sheep continued to eat more bites overall. Goats maintained the highest G. ulmifolia consumption among the other native species, and M. oleifera was the least consumed. In this phase of the trial, sheep showed a pattern similar to that of goats. Cows also maintained their consumption pattern, incorporating M. oleifera in the group with the least consumed. In the case of white-tailed deer, M. oleifera and E. cyclocarpum were incorporated into the group of the most consumed species, and A. pennatula was less browsed than the rest.

4. Discussion

In this work, we experimentally evaluated the feeding preferences of domestic and wild ruminants for native and exotic fodder trees of the dry tropics of Central America. All of the ruminants consumed the four species of native trees to a greater or lesser extent. In addition, all of them incorporated M. oleifera into their diets, despite being an exotic species. The fact that none of them were completely rejected is probably due to their high nutritional value. The acceptance of these woody forages would be explained by their high sugar and protein contents and their low concentrations in secondary compounds. This is shown in Table 4, which contains the bibliographic review of the chemical composition of the foliage of the five species considered. All of them show a high CP content, not only above the maintenance threshold 7% of DM, but also above the necessary threshold for animal production (milk or meat) of 13.5% dry matter, as suggested by Van Soest and NRC [32,33].
Preference is positively related to palatability [58], and palatability is the relationship between the food’s traits and animal post ingestive feedback [59]. Taking this into account, it is worth noting the preference for G. ulmifolia by the four herbivore species. It could be explained because G. ulmifolia presents a high in vitro digestibility similar to that of Medicago sativa [60], high energy value, low tannin content and lack of saponins (Table 4). Differences between animal preferences appeared in the rest of the species and could be related to the interaction between animal type and the chemical composition of the foliage. In that sense, cows and sheep are considered grazers, which means they are not very selective eaters [61]. Contrarily, goats are concentrate selectors that selectively browse the most palatable and nutritious plant species. The same goes for the subspecies of white-tailed deer from Nicaragua (O.v. truei), typical browsers of forest environments [62]. In addition, goats and white-tailed deer possess several distinct detoxification pathways to prevent toxicity of plant secondary compounds [63,64], and this could explain a greater preference for the species that appear more rejected by the cows. On the other hand, the other three native trees belong to the Fabaceae family, generally rich in protein but also secondary antinutritional compounds (Table 4). Acacia pennatula is rich in terpenes, coumarins and flavones [65]. Leaves of E. cyclocarpum contained saponins and tannins and high lignin content values. G. sepium is generally considered to be one of the most digestible tropical leguminous forages, although it contains moderate amounts of saponins and coumarins [32] that could provide a bitter taste. In relation to M. oleifera, the leaves contain saponins and, although they contain low values of lignin and considerable amounts of CP, these are mostly insoluble [66]. In addition, Qwele et al. [67] reported a certain amount of polyphenols.
The preference for Guazuma ulmifolia among the four animal species allowed us to conclude that competition phenomena could occur if the animals coexist and the resource is limited. This competition could be greater in the case of mixed herds of sheep and goats, as both follow a very similar pattern of preferences. Instead, white-tailed deer show a preference for G. sepium, in addition to G. ulmifolia, not observed in the other animals, and the same occurs in the case of cows with A. pennatula. This means mixed herds of cows with goats or cows with sheep, both with the presence of white-tailed deer, could be a better option in terms of resource partitioning and, consequently, for the sustainability of the ecosystem.
The incorporation of M. oleifera did not imply any change in the order of preference among the domestic animals, which incorporated it in the last position. However, its introduction did affect the order of preference of the native white-tailed deer. In this case. M. oleifera becomes a preferred species and also increased the consumption of E. cyclocarpum. Therefore, it can be concluded that the introduction of an exotic fodder tree could be of interest for animal production, but one has to be prudent if the objective is the sustainable management of domestic livestock in coexistence with wildlife.

Author Contributions

Conceptualization, K.L.B., L.R., E.S. and J.B.F.; methodology, K.L.B. and J.B.F.; software, L.R.; formal analysis, L.R.; investigation, K.L.B., L.R., E.S. and J.B.F.; resources, K.L.B. and J.B.F.; writing—original draft preparation, J.B.F.; writing—review and editing, K.L.B., L.R., E.S. and J.B.F.; supervision, K.L.B., L.R., E.S. and J.B.F. All authors have read and agreed to the published version of the manuscript.

Funding

This research was funded by a Scholarship Contract from the Fund for Research Projects (FPI), number 05201604, announcement 2016–2018, regarding the project Herbiborism on the main forage trees of the Central American dry tropics of the National Autonomous University of Nicaragua/UNAN-Managua. It also received the financial support of the Autonomous Solidarity Foundation of the Universitat Autònoma de Barcelona (FASXXX). E. Serrano has a Ramón y Cajal contract (RYC-2016-21120) granted by the Spanish Ministry of Economy and Competitiveness (MINECO).

Institutional Review Board Statement

The animal study protocol was approved by the Ethics Committee of the National Autonomous University of Nicaragua/UNAN-Managua.

Informed Consent Statement

Not applicable.

Data Availability Statement

Not applicable.

Acknowledgments

Our thanks to Joel Exequiel Cardoza Aguilar, Faustino Antonio Peralta Jarquín, Alberto García Caballero, Bruno Barragán Portillo and Daniel Querol Carranza for supporting the field work and data collection.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Hall, J.S.; Ashton, M.S.; Garen, E.J.; Jose, S. The ecology and ecosystem services of native trees: Implications for reforestation and land restoration in Mesoamerica. For. Ecol. Manag. 2011, 261, 1553–1557. [Google Scholar] [CrossRef]
  2. Esquivel-Mimenza, H.; Ibrahim, M.; Harvey, C.A.; Benjamin, T.; Sinclair, F.L. Pod Availability. Yield and Nutritional Characteristics from Four Fruit Bearing Tree Species Dispersed in Pastures as a Complementary Feed for Animal Production in the dry tropics. Livest. Res. Rural Dev. 2014, 26. Available online: http://www.lrrd.org/lrrd26/9/esqu26164.html (accessed on 23 August 2021).
  3. Sánchez-Romero, R.; Balvanera, P.; Castillo, A.; Mora, F.; García-Barrios, L.E.; González-Esquivel, C.E. Management strategies, silvopastoral practices and socioecological drivers in traditional livestock systems in tropical dry forests: An integrated analysis. For. Ecol. Manag. 2020, 479, 118506. [Google Scholar] [CrossRef]
  4. Camero, A.; Ibrahim, M. Protein Banks of Erythrina Berteroana and Gliricidia Sepium. Agroforestería En Las Américas 1995, 2, 31–33. Available online: https://www.cabdirect.org/cabdirect/abstract/19970601417 (accessed on 23 August 2021).
  5. Shelton, H.M. Tropical forage tree legumes in agroforestry systems. Unasylva 2000, 200, 25–32. [Google Scholar]
  6. Westley, S.B. Living fences: A close-up look at an agroforestry technology. Agrofor. Today 1990, 2, 11–13. [Google Scholar]
  7. Dummett, C.; Blumdell, A. Illicit Harvest, Complicit Goods: The State of Illegal Deforestation for Agriculture. Forest Policiy Trade and Finance Initiative Report; Forest Trends Association: Washington, DC, USA, 2021; 81p. [Google Scholar]
  8. Murgueitio, E.; Calle, Z.; Uribe, F.; Calle, A.; Solorio, B. Native trees and shrubs for the productive rehabilitation of tropical cattle ranching lands. For. Ecol. Manag. 2011, 261, 1654–1663. [Google Scholar] [CrossRef]
  9. Albores-Moreno, S.; Alayón-Gamboa, J.A.; Morón-Ríos, A.; Ortiz-Colin, P.N.; Ventura-Cordero, J.; González-Pech, P.G.; Mendoza-Arroyo, G.E.; Ku-Vera, J.C.; Jiménez-Ferrer, G.; Piñeiro-Vázquez, A.T. Influence of the composition and diversity of tree fodder grazed on the selection and voluntary intake by cattle in a tropical forest. Agrofor. Syst. 2020, 94, 1651–1664. [Google Scholar] [CrossRef]
  10. Martin, G.; Barth, K.; Benoit, M.; Brock, C.; Destruel, M.; Dumont, B.; Grillot, M.; Hübner, S.; Magne, M.-A.; Moerman, M.; et al. Potential of multi-species livestock farming to improve the sustainability of livestock farms: A review. Agric. Syst. 2020, 181, 102821. [Google Scholar] [CrossRef]
  11. DeVries, T.J.; von Keyserlingk, M.A.G. Competition for feed affects the feeding behavior of growing dairy heifers. J. Dairy Sci. 2009, 92, 3922–3929. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  12. Crossley, R.E.; Harlander-Matauschek, A.; DeVries, T.J. Variability in behavior and production among dairy cows fed under differing levels of competition. J. Dairy Sci. 2017, 100, 3825–3838. [Google Scholar] [CrossRef] [PubMed]
  13. Sietses, D.J.; Faupin, G.; De Boer, W.F.; De Jong, C.B.; Henkens, R.J.; Usukhjargal, D.; Batbaatar, T. Resource partitioning between large herbivores in Hustai National Park, Mongolia. Mamm. Biol. 2009, 74, 381–393. [Google Scholar] [CrossRef]
  14. Niamir-Fuller, M.; Kerven, C.; Reid, R.; Milner-Gulland, E. Co-existence of wildlife and pastoralism on extensive rangelands: Competition or compatibility? Pastor. Res. Policy Pract. 2012, 2, 8. [Google Scholar] [CrossRef] [Green Version]
  15. Durr, P. Manual de Árboles Forrajeros de Nicaragua; Ministerio de Agricultura y Ganadería: Estelí, Nicaragua, 1992; 125p.
  16. Flores, F.I.; Jorge, J.; Tinajero, M. El uso de árboles multipropósito como alternativa para la producción animal sostenible. Tecnol. En Marcha 2013, 21, 28–40. [Google Scholar]
  17. Olson, M.E.; Fahey, J.W. Moringa oleifera: A multipurpose tree for the dry tropics. Rev. Mex. Biodivers. 2011, 82, 1071–1082. [Google Scholar]
  18. Daba, M. Miracle Tree: A Review on Multi-purposes of Moringa oleifera and Its Implication for Climate Change Mitigation. J. Earth Sci. Clim. Chang. 2016, 7, 8. [Google Scholar] [CrossRef]
  19. Nicholson, C.F.; Blake, R.W.; Lee, D.R. Livestock, Deforestation, and Policy Making: Intensification of Cattle Production Systems in Central America Revisited. J. Dairy Sci. 1995, 78, 719–734. [Google Scholar] [CrossRef]
  20. Arceo, G.; Mandujano, S.; Gallina, S.; Perez-Jimenez, L.A. Diet diversity of white-tailed deer (Odocoileus virginianus) in a tropical dry forest in Mexico. Mammalia 2005, 69, 159–168. [Google Scholar] [CrossRef]
  21. López-Arévalo, H.F. Managing White-Tailed Deer: Latin America. In Biology and Management of White-Tailed Deer; Hewitt, D.G., Ed.; CRC Press: Boca Raton, FL, USA, 2011. [Google Scholar]
  22. Zamora, S.; García, J.; Bonilla, G.; Aguilar, H.; Harvey, C.A.; Ibrahim, M.A. ¿Cómo utilizar los frutos de guanacaste (Enterolobium cyclocarpum). guácimo (Guazuma ulmifolia). genízaro (Pithecellobium saman) y jícaro (Crescentia alata) en alimentación animal? Agroforestería En Las Américas 2001, 8, 45–49. [Google Scholar]
  23. Foidl, N.; Makkar, H.P.S.; Becker, K.; Km, S. The Potential of Moringa Oleifera for Agricultural and Industrial Uses. In What Development Potential for Moringa Products? International Workshop: Dar Es Salaam, Tanzania, 2001; 20p. [Google Scholar]
  24. McArthur, C.; Goodwin, A.; Turner, S. Preferences, selection and damage to seedlings under changing availability by two marsupial herbivores. For. Ecol. Manag. 2000, 139, 157–173. [Google Scholar] [CrossRef]
  25. Prince, J.S.; Leblanc, W.G.; Maciá, S. Design and analysis of multiple choice feeding preference data. Oecologia 2004, 138, 1–4. [Google Scholar] [CrossRef] [PubMed]
  26. Degen, A.A.; El-Meccawi, S.; Kam, M. Cafeteria trials to determine relative preference of six desert trees and shrubs by sheep and goats. Livest. Sci. 2010, 132, 19–25. [Google Scholar] [CrossRef]
  27. Mengistu, G.; Bezabih, M.; Hendriks, W.H.; Pellikaan, W.F. Preference of goats (C apra hircus L.) for tanniniferous browse species available in semi-arid areas in Ethiopia. J. Anim. Physiol. Anim. Nutr. 2017, 101, 1286–1296. [Google Scholar] [CrossRef] [PubMed]
  28. Brooks, M.E.; Kristensen, K.; van Benthem, K.J.; Magnusson, A.; Berg, C.W.; Nielsen, A.; Skaug, H.J.; Maechler, M.; Bolker, B.M. glmmTMB Balances Speed and Flexibility Among Packages for Zero-inflated Generalized Linear Mixed Modeling. R J. 2017, 9, 378–400. [Google Scholar] [CrossRef] [Green Version]
  29. R Core Team. R: A Language and Environment for Statistical Computing; R Foundation for Statistical Computing: Vienna, Austria, 2022; Available online: https://www.R-project.org/ (accessed on 29 June 2021).
  30. McArthur, C.; Robbins, C.T.; Hagerman, A.E.; Hanley, T.A. Diet selection by a ruminant generalist browser in relation to plant chemistry. Can. J. Zoöl. 1993, 71, 2236–2243. [Google Scholar] [CrossRef]
  31. Berteaux, D.; Crête, M.; Huot, J.; Maltais, J.; Ouellet, J.-P. Food choice by white-tailed deer in relation to protein and energy content of the diet: A field experiment. Oecologia 1998, 115, 84–92. [Google Scholar] [CrossRef]
  32. Van Soest, P.J. Nutritional Ecology of the Ruminant, 2nd ed.; Cornell University Press: Ithaca, NY, USA, 1994. [Google Scholar]
  33. NRC. Nutrient Requirements of Small Ruminants: Sheep, Goats, Cervids, and New World Camelids; National Academy Press: Whashington, DC, USA, 2007. [Google Scholar]
  34. Pinto-Ruíz, J.H.; Gómez, A.; Hernández, F.; Medina, B.; Martínez, V.H.; Aguilar, I.; Villalobos, J.; Nahed, J. Carmona. Preferencia Ovina de Árboles Forrajeros del Centro de Chiapas. México. Pastos y Forrajes. 2003. Available online: https://www.researchgate.net/publication/262451722 (accessed on 23 August 2021).
  35. Cordero, J.V.; González-Pech, P.; Jaimez-Rodriguez, P.; Ortiz-Ocampo, G.; Sandoval-Castro, C.A.; Torres-Acosta, J.F.D.J. Feed resource selection of Criollo goats artificially infected with Haemonchus contortus: Nutritional wisdom and prophylactic self-medication. Animal 2018, 12, 1269–1276. [Google Scholar] [CrossRef]
  36. Jiménez-Ferrer, G.; Pérez-López, H.; Soto-Pinto, L.; Nahed-Toral, J.; Hernández-López, L.; Carmona, J. Livestock Nutritive Value and Local Knowledge of Fodder Trees in Fragment Landscapes in Chiapas, Mexico. Interciencia 2007, 32, 274–280. Available online: http://ve.scielo.org/scielo.php?script=sci_arttext&pid=S0378-18442007000400014&lng=es&tlng=en (accessed on 23 August 2021).
  37. Greenberg, R.; Bichier, P. Determinants of tree species preference of birds in oak–acacia woodlands of Central America. J. Trop. Ecol. 2005, 21, 57–66. [Google Scholar] [CrossRef] [Green Version]
  38. Alonso-Díaz, M.; Torres-Acosta, J.; Sandoval-Castro, C.; Hoste, H.; Aguilar-Caballero, A.; Capetillo-Leal, C. Is goats’ preference of forage trees affected by their tannin or fiber content when offered in cafeteria experiments? Anim. Feed Sci. Technol. 2008, 141, 36–48. [Google Scholar] [CrossRef]
  39. Ayuk, A.A.; Iyayi, E.A.; Okon, B.I.; Ayuk, J.O.; Jang, E. Biodegradation of Antinutritional Factors in Whole Leaves of Enterolobium cyclocarpum by Aspergillus niger Using Solid State Fermentation. J. Agric. Sci. 2014, 6, 188. [Google Scholar] [CrossRef]
  40. Ortiz-Rodea, A.; González-Ronquillo, M.; López-Villalobos, N.; García-Martínez, A.; Rojo-Rubio, R.; Avilés-Nova, F.; Vázquez-Armijo, J.F.; Albarrán-Portillo, B. Replacement of lucerne by Enterolobium cyclocarpum leaves in the diet of growing goats. Anim. Prod. Sci. 2019, 59, 1293. [Google Scholar] [CrossRef]
  41. Monforte-Briceño, G.E.; Sandoval-Castro, C.A.; Ramírez-Avilés, L.; Leal, C.M.C. Defaunating capacity of tropical fodder trees: Effects of polyethylene glycol and its relationship to in vitro gas production. Anim. Feed Sci. Technol. 2005, 123–124, 313–327. [Google Scholar] [CrossRef]
  42. Koenig, K.M.; Ivan, M.; Teferedegne, B.T.; Morgavi, D.P.; Rode, L.M.; Ibrahim, I.M.; Newbold, C.J. Effect of dietary Enterolobium cyclocarpum on microbial protein flow and nutrient digestibility in sheep maintained fauna-free, with total mixed fauna or with Entodinium caudatum monofauna. Br. J. Nutr. 2007, 98, 504–516. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  43. Oni, A.; Onwuka, C.; Oduguwa, O.; Onifade, O.; Arigbede, O. Utilization of citrus pulp based diets and Enterolobium cyclocarpum (JACQ. GRISEB) foliage by West African dwarf goats. Livest. Sci. 2008, 117, 184–191. [Google Scholar] [CrossRef]
  44. Babayemi, O.J. Antinutrtional Factors. Nutritive Value and in vitro Gas Production of Foliage and Fruit of Enterolobium cyclocarpum. World J. Zool. 2006, 1, 113–117. [Google Scholar]
  45. Rodríguez, R.; Fondevila, M. Effect of saponins from Enterolobium cyclocarpum on in vitro microbial fermentation of the tropical grass Pennisetum purpureum. J. Anim. Physiol. Anim. Nutr. 2011, 96, 762–769. [Google Scholar] [CrossRef]
  46. Anele, U.; Arigbede, O.; Südekum, K.-H.; Oni, A.; Jolaosho, A.; Olanite, J.; Adeosun, A.; Dele, P.; Ike, K.; Akinola, O. Seasonal chemical composition, in vitro fermentation and in sacco dry matter degradation of four indigenous multipurpose tree species in Nigeria. Anim. Feed Sci. Technol. 2009, 154, 47–57. [Google Scholar] [CrossRef]
  47. Molina-Botero, I.C.; Arroyave-Jaramillo, J.; Valencia-Salazar, S.; Rosales, R.B.; Aguilar-Pérez, C.F.; Burgos, A.A.; Arango, J.; Ku-Vera, J.C. Effects of tannins and saponins contained in foliage of Gliricidia sepium and pods of Enterolobium cyclocarpum on fermentation, methane emissions and rumen microbial population in crossbred heifers. Anim. Feed Sci. Technol. 2019, 251, 1–11. [Google Scholar] [CrossRef]
  48. Galindo, J.; González, N.; Marrero, Y.; Sosa, A.; Ruiz, T.; Febles, G.; Torres, V.; Aldana, A.I.; Achang, G.; Moreira, O.; et al. Effect of tropical plant foliage on the control of methane production and in vitro ruminal protozoa population. Cuba. J. Agric. Sci. 2014, 48, 359–364. [Google Scholar]
  49. García, D.E.; Medina, M.G.; Cova, L.J.; Soca, M.; Pizzani, P.; Baldizán, A.; Domínguez, C.E. Aceptabilidad de follajes arbóreos tropicales por vacunos. ovinos y caprinos en el estado Trujillo. Venezuela. Zootec. Trop. 2008, 26, 191–196. [Google Scholar]
  50. Holguin, V.A.; García, I.I.; Mora-Delgado, J. Árboles y Arbustos Para Silvopasturas: Uso. Calidad y Alometria; Editorial Universidad del Tolima: Tolima, Colombia, 2018; 136p, ISBN 978-958-8932-56-9. [Google Scholar]
  51. Ortega, M.E.; Carranco, M.E.; Mendoza, G.; Castro, G. Chemical composition of Guazuma ulmifolia Lam and its potential for ruminant feeding. Cuba. J. Agric. Sci. 1998, 32, 383–386. [Google Scholar]
  52. Sandoval-Castro, C.A.; Lizarraga-Sanchez, H.L.; Solorio-Sanchez, F.J. Assessment of tree fodder preference by cattle using chemical composition, in vitro gas production and in situ degradability. Anim. Feed Sci. Technol. 2005, 123–124, 277–289. [Google Scholar] [CrossRef]
  53. Armendáriz-Yáñez, I.R.; Rivera-Lorca, J.A. Content of Secondary Metabolites of Some Indigenous Browse Legumes from the Yucatan Peninsula, with Particular Reference to Phenolic Compounds. BSAP Occas. Publ. 2006, 34, 279–289. Available online: https://www.cambridge.org/core (accessed on 16 November 2019). [CrossRef]
  54. Melesse, A. Comparative assessment on chemical compositions and feeding values of leaves of Moringa stenopetala and Moringa oleifera using in vitro gas production method. Ethiop. J. Appl. Sci. Technol. 2011, 2, 31–41. [Google Scholar]
  55. Aye, P.; Adegun, M. Chemical Composition and some functional properties of Moringa, Leucaena and Gliricidia leaf meals. Agric. Biol. J. N. Am. 2013, 4, 71–77. [Google Scholar] [CrossRef]
  56. Busani, M.; Patrick, J.M.; Arnold, H.; Voster, M. Nutritional characterization of Moringa (Moringa oleifera Lam.) leaves. Afr. J. Biotechnol. 2011, 10, 12925–12933. [Google Scholar] [CrossRef] [Green Version]
  57. Valdivié-Navarro, M.; Martínez-Aguilar, Y.; Mesa-Fleitas, O.; Botello-León, A.; Hurtado, C.B.; Velázquez-Martí, B. Review of Moringa oleifera as forage meal (leaves plus stems) intended for the feeding of non-ruminant animals. Anim. Feed Sci. Technol. 2020, 260, 1–9. [Google Scholar] [CrossRef]
  58. Heady, H.F. Palatability of herbage and animal preference. J. Range Manag. 1964, 17, 76–82. [Google Scholar] [CrossRef]
  59. Provenza, F.D. Postingestive feedback as an elementary determinant of food preference and intake in ruminants. J. Range Manag. 1995, 48, 2–17. [Google Scholar] [CrossRef] [Green Version]
  60. Cediel-Devia, D.; Sandoval-Lozano, E.; Castañeda-Serrano, R. Effects of different regrowth ages and cutting heights on biomass production. bromatological composition and in vitro digestibility of Guazuma ulmifolia foliage. Agrofor. Syst. 2020, 94, 1199–1208. [Google Scholar] [CrossRef]
  61. Hofmann, R.R. Evolutionary steps of ecophysiological adaptation and diversification of ruminants: A comparative view of their digestive system. Oecologia 1989, 78, 443–457. [Google Scholar] [CrossRef] [PubMed]
  62. Portillo, H.; Elvir, F.; Hernández, J.; Leiva, F.; Flores, M.E.; Martínez, I.; Vega, H. Preliminary data from the population density of white-tailed deer (Odocoileus virginianus) in the core zone of la Tigra National Park, Honduras. Mesoamericana 2015, 19, 23–30. [Google Scholar]
  63. Austin, P.J.; Suchar, L.A.; Robbins, C.T.; Hagerman, A.E. Tannin-binding proteins in saliva of deer and their absence in saliva of sheep and cattle. J. Chem. Ecol. 1989, 15, 1335–1347. [Google Scholar] [CrossRef] [PubMed]
  64. Schmitt, M.H.; Ward, D.; Shrader, A.M. Salivary tannin-binding proteins: A foraging advantage for goats? Livest. Sci. 2020, 234, 103974. [Google Scholar] [CrossRef]
  65. Rios, M.Y. Terpenes, coumarins and flavones from Acacia pennatula. Chem. Nat. Compd. 2005, 41, 297–298. [Google Scholar] [CrossRef]
  66. Teixeira, E.M.B.; Carvalho, M.R.B.; Neves, V.A.; Silva, M.A.; Arantes-Pereira, L. Chemical characteristics and fractionation of proteins from Moringa oleifera Lam. leaves. Food Chem. 2014, 147, 51–54. [Google Scholar] [CrossRef]
  67. Qwele, K.; Hugo, A.; Oyedemi, S.O.; Moyo, B.; Masika, P.J.; Muchenje, V. Chemical composition. fatty acid content and antioxidant potential of meat from goats supplemented with Moringa (Moringa oleifera) leaves. sunflower cake and grass hay. Meat Sci. 2013, 93, 455–462. [Google Scholar] [CrossRef]
Table 1. Mean, minimum and maximum values of bite count in four native tree species consumed by domestic (goats, sheep and cows) and wild (white-tailed deer, Odocoileus virginianus) ruminants during a 14 day cafeteria test. Data in brackets are confidence intervals at 95%.
Table 1. Mean, minimum and maximum values of bite count in four native tree species consumed by domestic (goats, sheep and cows) and wild (white-tailed deer, Odocoileus virginianus) ruminants during a 14 day cafeteria test. Data in brackets are confidence intervals at 95%.
Tree SpeciesGoatsSheepCowsWhite-Tailed Deer
G. ulmifolia21.3 a 1
(17.3–26.2)
18.1 a 1
(14.7–22.2)
12.4 a 2
(9.9–15.4)
18.6 a 1,2
(14.5–23.9)
A. pennatula16.3 b 1
(13.2–20.2)
17.3 ab 1
(14.1–21.3)
11.0 a 2
(8.8–13.8)
6.2 b 3
(4.5–8.6)
E. cyclocarpum14.1 b 1
(11.3–17.5)
15.9 ab 1
(12.9–19.6)
5.1 b 2
(3.4–7.5)
6.6 b 2
(4.8–9.1)
G. sepium14.4 b 1
(11.6–17.9)
15.3 b 1
(12.4–18.9)
7.1 b 2
(5.5–9.3)
16.7 a 1
(13.2–21.2)
Different subscript letters in the same column indicate significant differences between forage trees. Different superscript numbers in the same row indicate significant differences between animal species.
Table 2. Mean values of bite count in four native and one exotic tree species consumed by domestic (goats, sheep and cows) and wild (white-tailed deer, Odocoileus virginianus) ruminants during a 14 day cafeteria test. In this trial, Moringa oleifera, an exotic tree from India, was added to the multiple-choice feeding test. Data in brackets are confidence intervals at 95%.
Table 2. Mean values of bite count in four native and one exotic tree species consumed by domestic (goats, sheep and cows) and wild (white-tailed deer, Odocoileus virginianus) ruminants during a 14 day cafeteria test. In this trial, Moringa oleifera, an exotic tree from India, was added to the multiple-choice feeding test. Data in brackets are confidence intervals at 95%.
Tree SpeciesGoatsSheepCowsWhite-Tailed Deer
G. ulmifolia20.9 a 1
(18.7–23.4)
17.7 a 1
(15.7–19.8)
11.6 a 2
(9.8–13.6)
12.1 ab 2
(9.7–15.1)
A. pennatula15.3 b 1
(13.5–17.2)
11.5 b 2,3
(10.1–13.1)
12.5 a 1,2
(10.7–14.7)
8.3 b 3
(6.6–10.6)
E. cyclocarpum13.1 bc 1
(11.5–14.8)
11.6 b 1
(10.2–13.3)
4.2 b 2
(2.3–7.6)
14.1 a 1
(11.5–17.2)
G. sepium14.4 bc 1
(12.7–16.4)
12.7 b 1
(11.2–14.4)
7.2 b 2
(5.8–9.0)
12.6 a 1
(10.3–15.4)
M. oleifera11.7 c 1
(10.1–13.5)
8.9 c 2
(7.7–10.3)
6.6 b 2
(5.1–8.4)
15.1 a 1
(12.3–18.5)
Different subscript letters in the same column indicate significant differences between forage trees. Different superscript numbers in the same row indicate significant differences between animal species.
Table 3. Estimates, overdispersion parameter, log-likelihood and AIC from the zero-altered Negative Binomial Generalized Linear Mixed Model. Significant effects are shown in bold. (Coeff. coefficients; SE, standard errors; AIC, Akaike Information Criterion). Acacia pennulata has been considered the reference category in the zero-inflated ZbGLMM. Enterolobium cyclocarpum (E. cyclocarpum), Gliricidia sepium (G. sepium), Guazuma ulmifolia (G. ulmifolia), Moringa oleifera (M. oleifera); deer is Odocoileus virginianus.
Table 3. Estimates, overdispersion parameter, log-likelihood and AIC from the zero-altered Negative Binomial Generalized Linear Mixed Model. Significant effects are shown in bold. (Coeff. coefficients; SE, standard errors; AIC, Akaike Information Criterion). Acacia pennulata has been considered the reference category in the zero-inflated ZbGLMM. Enterolobium cyclocarpum (E. cyclocarpum), Gliricidia sepium (G. sepium), Guazuma ulmifolia (G. ulmifolia), Moringa oleifera (M. oleifera); deer is Odocoileus virginianus.
Four Tree Species Five Tree Species
VariablesCoeff.SEVariablesCoeff.SE
Count model Count model
Fixed effects Fixed effects
Intercept2.8840.116Intercept2.7750.065
G. ulmifolia0.2650.057G. ulmifolia0.3150.059
E. cyclocarpum−0.1500.065E. cyclocarpum−0.1560.067
G. sepium−0.1240.064G. sepium−0.0580.066
Dry season−0.1830.092M. oleifera−0.2670.076
Sheep0.0580.142Dry season−0.0990.042
Cow−0.3950.150Sheep−0.2830.089
Deer−0.9670.192Cow−0.1970.099
G. ulmifolia:Sheep−0.2210.083Deer−0.6050.136
E. cyclocarpum:Sheep0.0670.090G. ulmifolia:Sheep0.1130.090
G. sepium:Sheep0.0000.089E. cyclocarpum:Sheep0.1660.100
G. ulmifolia:Cow−0.1490.090G. sepium:Sheep0.1570.098
E. cyclocarpum:Cow−0.6260.191M. oleifera:Sheep0.0120.112
G. sepium:Cow−0.3080.118G. ulmifolia:Cow−0.3960.106
G. ulmifolia:Deer0.8350.164E. cyclocarpum:Cow−0.9310.310
E. cyclocarpum:Deer0.2160.196G. sepium: Cow−0.4960.133
G. sepium:Deer1.1140.163M. oleifera:Cow−0.3820.149
G. ulmifolia:Deer0.0590.156
E. cyclocarpum: Deer0.6780.154
G. sepium: Deer0.4730.152
M. oleifera: Deer0.8600.157
Random effects Random effects
Animal identity0.013 Animal identity0.018
Feeding days0.011 Feeding days0.002
Animal identity nested within season0.014 Animal identity nested within season6.7 × 10−10
Zero-inflated model Zero-inflated model
Fixed effects Fixed effects
Intercept−3.7370.295Intercept−3.4490.263
G. ulmifolia0.1370.234G. ulmifolia0.0600.245
E. cyclocarpum1.9710.240E. cyclocarpum1.4050.239
G. sepium0.8750.231G. sepium0.5930.239
Sheep−2.4520.747M. oleifera1.4990.239
Cow2.0120.265Sheep−0.3830.296
Deer3.8710.274Cow1.8640.236
Deer3.5010.228
Overdispersion parameter1.66Overdispersion parameter1.71
Log-likelihood−3722.7Log-likelihood−4124.4
Table 4. Chemical composition of fodder trees. CP: crude protein (%), NDF: neutral detergent fibre (%), ADF: acid detergent fibre (%), ADL: acid detergent lignin (%), OMD: organic matter digestibility (%), TP: total phenols (%), CT: condensed tannins (%), Sap: saponins (%), EC: energy content (Mcal/KgDM).
Table 4. Chemical composition of fodder trees. CP: crude protein (%), NDF: neutral detergent fibre (%), ADF: acid detergent fibre (%), ADL: acid detergent lignin (%), OMD: organic matter digestibility (%), TP: total phenols (%), CT: condensed tannins (%), Sap: saponins (%), EC: energy content (Mcal/KgDM).
SpeciesCPNDF ADFADLOMD TPCTSapEC Source
A. pennatula20.153.133.312.3 [34]
A. pennatula11.5–14.234.2–35.220.7–24.411.6–15.428.6–34.48.2–9.43.1–4.3 1.1–1.3[35]
A. pennatula19.630.417.5 49.67.6 3.7[36]
A. pennatula23.425.2 6.3–18.35.5–8.1 [37]
A. pennatula13.632.711.311.3 11.32.3 [38]
E. cyclocarpum2070.224.6 2.8 [39]
E. cyclocarpum19.749.535.330.8 1.8 1.92.3[40]
E. cyclocarpum15.750.430.7 7.43.8 [41]
E. cyclocarpum23.158.948.6 66–69 [42]
E. cyclocarpum19.436.525.54.7 2.9[43]
E. cyclocarpum18.6 51.4 present1.8[44]
E. cyclocarpum21.636.533.420.7 4.4 [45]
G. sepium16.348329.861.3 2.3[46]
G. sepium22.140.120.410.2 [36]
G. sepium1757.545.2 0.64.61.74.4[47]
G. sepium20.832.721.1 69.90.3 [41]
G. sepium23.842.825 lowmoderate [48]
G. sepium27.439.4 75.520.4 4.1[49]
G. ulmifolia15.15538 60 4.7[50]
G. ulmifolia16.5 16.956 0.01 3.6[51]
G. ulmifolia15.549.625.910.759 [52]
G. ulmifolia13.845.128.911.2 moderate [53]
G. ulmifolia22.237.7 80.71.70.1 3.8[49]
M. oleifera28.916.712.16.5 4[54]
M. oleifera25.121.911.41.874 4.3[23]
M. oleifera22.2 3.9 6.63.6[55]
M. oleifera30.311.48.51.8 20.3 [56]
M. oleifera20.248.335.49.3 [57]
M. oleifera26.642.5 90.93.91 4.3[49]
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López Benavides, K.; Rocha, L.; Serrano, E.; Bartolomé Filella, J. Feeding Preferences of Domestic and Wild Ungulates for Forage Trees in the Dry Tropics. Sustainability 2022, 14, 13430. https://doi.org/10.3390/su142013430

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López Benavides K, Rocha L, Serrano E, Bartolomé Filella J. Feeding Preferences of Domestic and Wild Ungulates for Forage Trees in the Dry Tropics. Sustainability. 2022; 14(20):13430. https://doi.org/10.3390/su142013430

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López Benavides, Kenny, Lester Rocha, Emmanuel Serrano, and Jordi Bartolomé Filella. 2022. "Feeding Preferences of Domestic and Wild Ungulates for Forage Trees in the Dry Tropics" Sustainability 14, no. 20: 13430. https://doi.org/10.3390/su142013430

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