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Ecology, management and conservation in natural and modified habitats
RESEARCH ARTICLE

Bird community structure and habitat association in Owabi Wildlife Sanctuary, Ashanti Region (Ghana)

Collins Ayine Nsor https://orcid.org/0000-0002-9516-7422 A * , Nana Afua Ankomah Dei B , John Mensah Nkrumah C , Rockson Acolatse B and Emmanuel Danquah B
+ Author Affiliations
- Author Affiliations

A Department of Forest Resources Technology, Faculty of Renewable Natural Resources, Kwame University of Science and Technology, Kumasi, Ghana.

B Department of Wildlife & Range Management, Faculty of Renewable Natural Resources, Kwame University of Science and Technology, Kumasi, Ghana.

C School of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USA.


Handling Editor: Janet Gardner

Wildlife Research 50(10) 827-839 https://doi.org/10.1071/WR21148
Submitted: 15 October 2021  Accepted: 24 November 2022   Published: 4 January 2023

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing

Abstract

Context: Globally, an estimated 1.3% of the bird species have gone extinct over the past millennia, largely owing to habitat loss.

Aims: This study investigated bird–habitat associations and assemblages in the Owabi Ramsar wetland.

Methods: The study was conducted over 5 months (May–September 2019) in four habitat types (agricultural land, built-up, forest reserve, and open-water area). Data were collected in 84 plots across four habitats (i.e. built-up area = 25, forest reserve = 25, agricultural land = 25 and open-water area = 9 plots), using a point-count technique. The Gambin model, non-metric multidimensional scaling, Chao-1, and Hill numbers models were used to evaluate differences in bird diversity and composition among the habitat types.

Key results: In all, 1260 individual birds, belonging to 81 species, were encountered. Many of the species occurred in the forest habitat (n = 46, 56.8%. Species from the agricultural land (n = 37) and built-up (n = 30) were mainly habitat generalists that used these two habitats as their shared feeding station. Bird–habitat specialisation grouping equally showed the forest specialists to be the highest (n = 23, 38.4%), whereas the open water had the least number of habitat specialisation associations (e.g. white-faced whistling duck, n = 20, 24.7%). Five species were widely distributed in all four habitats (e.g. bronze-mannikins and white-throated bee-eaters), indicating their broad habitat preferences and ability to adapt to varied conditions. The forest reserve tended to be the most diverse, which was likely mediated by factors such as nesting microhabitats, varied food availability, and human-led activities.

Conclusions: This study highlighted bird dietary structure and associated habitat type and bird-habitat specialisation in four different land-use types at Owabi Ramsar wetland.

Implications: Given the increasing level of disturbance, there is the likelihood that the population of forest-dependent and open water-dependent birds will be lost or will have to change or modify their behaviour to be similar to that of open-tolerant or open-country birds if managers of the Owabi Wildlife Sanctuary fail to implement the recommended management interventions highlighted.

Keywords: bird abundance, feeding guilds, forest specialists, habitat association, habitat generalists, habitat selection, Hill numbers, land use types, Ramsar wetland.


References

Akoto, O, and Abankwa, E (2014). Evaluation of Owabi Reservoir (Ghana) water quality using factor analysis. Lakes & Reservoirs: Science, Policy and Management for Sustainable Use 19, 174–182.
Evaluation of Owabi Reservoir (Ghana) water quality using factor analysis.Crossref | GoogleScholarGoogle Scholar |

Ameyaw, Y, and Dapaah, GS (2017). The effect of encroachment on ecosystem services provided by the Owabi Wetland and Wildlife. International Journal of Environmental Sciences & Natural Resources 4, 555628.
The effect of encroachment on ecosystem services provided by the Owabi Wetland and Wildlife.Crossref | GoogleScholarGoogle Scholar |

Baldridge, E, Harris, DJ, Xiao, X, and White, EP (2016). An extensive comparison of species-abundance distribution models. PeerJ 4, e2823.
An extensive comparison of species-abundance distribution models.Crossref | GoogleScholarGoogle Scholar |

Bearhop, S, Adams, CE, Waldron, S, Fuller, RA, and Macleod, H (2004). Determining trophic niche width: a novel approach using stable isotope analysis. Journal of Animal Ecology 73, 1007–1012.
Determining trophic niche width: a novel approach using stable isotope analysis.Crossref | GoogleScholarGoogle Scholar |

Belder, DJ, Pierson, JC, Ikin, K, and Lindenmayer, DB (2018). Beyond pattern to process: current themes and future directions for the conservation of woodland birds through restoration plantings. Wildlife Research 45, 473–489.
Beyond pattern to process: current themes and future directions for the conservation of woodland birds through restoration plantings.Crossref | GoogleScholarGoogle Scholar |

Bibby C, Burguess ND, Hill DA (1992) ‘Bird census techniques.’ (Academic Press: London, UK)

Birdlife International (2011) ‘Threatened birds of the world.’ (Lynx Edicions/Birdlife International: Barcelona, Spain)

Borrow N, Demey R (2010) ‘Field guide to the birds of Ghana (Helm Field Guide).’ (A & C Black Publishers Ltd: London, UK)

Burnham KP, Anderson DR (2002) ‘Model selection and multimodel inference: a practical information-theoretic approach.’ (Springer: Berlin, Germany)

Chao A, Chiu C-H (2016) Nonparametric estimation and comparison of species richness. In ‘eLS’. (John Wiley & Sons, Ltd: Chichester). https://doi.org/10.1002/9780470015902.a0026329

Chalfoun, AD, and Schmidt, KA (2012). Adaptive breeding-habitat selection: is it for the birds? The Auk 129, 589–599.
Adaptive breeding-habitat selection: is it for the birds?Crossref | GoogleScholarGoogle Scholar |

Chao, A, Gotelli, NJ, Hsieh, TC, Sander, EL, Ma, KH, Colwell, RK, and Ellison, AM (2014). Rarefaction and extrapolation with Hill numbers: a framework for sampling and estimation in species diversity studies. Ecological Monographs 84, 45–67.
Rarefaction and extrapolation with Hill numbers: a framework for sampling and estimation in species diversity studies.Crossref | GoogleScholarGoogle Scholar |

Clarke KR, Gorley RN, Somerfield PJ, Warwick RM (2014) Change in marine communities: an approach to statistical analysis and interpretation. Primer-E Ltd, Plymouth, UK.

Dowsett-Lemaire F, Dowsett, RJ (2011) Comments on selected forest reserves visited in SW Ghana in 2008–2010: wildlife (especially birds) and conservation status. A report prepared for the Wildlife Division, Forestry Commission, Accra, Ghana. Dowsett-Lemaire Miscellaneous Report, 82.

Edwards, AM, Phillips, RA, Watkins, NW, Freeman, MP, Murphy, EJ, Afanasyev, V, Buldyrev, SV, da Luz, MGE, Raposo, EP, Stanley, HE, and Viswanathan, GM (2007). Revisiting Lévy flight search patterns of wandering albatrosses, bumblebees and deer. Nature 449, 1044–1048.
Revisiting Lévy flight search patterns of wandering albatrosses, bumblebees and deer.Crossref | GoogleScholarGoogle Scholar |

Field, JG, Clarke, KR, and Warwick, RM (1982). A practical strategy for analysing multispecies distribution patterns. Marine Ecology Progress Series 8, 37–52.
A practical strategy for analysing multispecies distribution patterns.Crossref | GoogleScholarGoogle Scholar |

Garshong, RA, Attuquayefio, DK, Holbech, LH, and Adomako, JK (2013). Distribution and abundance of small mammals in different habitat types in the Owabi Wildlife Sanctuary, Ghana. Journal of Ecology and the Natural Environment 5, 83–87.
Distribution and abundance of small mammals in different habitat types in the Owabi Wildlife Sanctuary, Ghana.Crossref | GoogleScholarGoogle Scholar |

Gaston, KJ, Blackburn, TM, and Goldewijk, KK (2003). Habitat conversion and global avian biodiversity loss. Proceedings of the Royal Society B: Biological Sciences 270, 1293–1300.
Habitat conversion and global avian biodiversity loss.Crossref | GoogleScholarGoogle Scholar |

Gotelli, NJ, and Colwell, RK (2001). Quantifying biodiversity: procedures and pitfalls in the measurement and comparison of species richness. Ecology Letters 4, 379–391.
Quantifying biodiversity: procedures and pitfalls in the measurement and comparison of species richness.Crossref | GoogleScholarGoogle Scholar |

Hammer, Ø, Harper, DAT, and Ryan, PD (2001). Past: palaeontological statistics software package for education and data analysis. Palaeontologia Electronica 4, 9.

Hill, MO (1973). Diversity and evenness: a unifying notation and its consequences. Ecology 54, 427–432.
Diversity and evenness: a unifying notation and its consequences.Crossref | GoogleScholarGoogle Scholar |

Hutto, RL, Pletschet, SM, and Hendricks, P (1986). A fixed-radius point count method for non-breeding and breeding season use. The Auk 103, 593–602.
A fixed-radius point count method for non-breeding and breeding season use.Crossref | GoogleScholarGoogle Scholar |

Johns, AD (1991). Responses of Amazonian rain forest birds to habitat modification. Journal of Tropical Ecology 7, 417–437.
Responses of Amazonian rain forest birds to habitat modification.Crossref | GoogleScholarGoogle Scholar |

Jost, L (2007). Partitioning diversity into independent alpha and beta components. Ecology 88, 2427–2439.
Partitioning diversity into independent alpha and beta components.Crossref | GoogleScholarGoogle Scholar |

Kendeigh, SC (1945). Community selection by birds on the Helderberg Plateau of New York. The Auk 62, 418–436.
Community selection by birds on the Helderberg Plateau of New York.Crossref | GoogleScholarGoogle Scholar |

Kent M (2012) ‘Vegetation description and data analysis: a practical approach.’ 2nd edn. (Wiley & Sons, Ltd: UK)

Kissling, WD, Field, R, and Böhning-Gaese, K (2008). Spatial patterns of woody plant and bird diversity: functional relationships or environmental effects? Global Ecology and Biogeography 17, 327–339.
Spatial patterns of woody plant and bird diversity: functional relationships or environmental effects?Crossref | GoogleScholarGoogle Scholar |

Kondratyeva, A, Grandcolas, P, and Pavoine, S (2019). Reconciling the concepts and measures of diversity, rarity and originality in ecology and evolution. Biological Reviews 94, 1317–1337.
Reconciling the concepts and measures of diversity, rarity and originality in ecology and evolution.Crossref | GoogleScholarGoogle Scholar |

Kruskal, JB (1964). Multidimensional scaling by optimizing goodness of fit to a nonmetric hypothesis. Psychometrika 29, 1–27.
Multidimensional scaling by optimizing goodness of fit to a nonmetric hypothesis.Crossref | GoogleScholarGoogle Scholar |

Mammides, C, Schleuning, M, Böhning-Gaese, K, Schaab, G, Farwig, N, Kadis, C, and Coulson, T (2015). The indirect effects of habitat disturbance on the bird communities in a tropical African forest. Biodiversity and Conservation 24, 3083–3107.
The indirect effects of habitat disturbance on the bird communities in a tropical African forest.Crossref | GoogleScholarGoogle Scholar |

Matsuoka, SM, Hagelin, JC, Smith, MA, Paragi, TF, Sesser, AL, and Ingle, MA (2019). Pathways for avian science, conservation, and management in boreal Alaska. Avian Conservation and Ecology 14, 15.
Pathways for avian science, conservation, and management in boreal Alaska.Crossref | GoogleScholarGoogle Scholar |

Matthews, TJ, and Whittaker, RJ (2014). Neutral theory and the species abundance distribution: recent developments and prospects for unifying niche and neutral perspectives. Ecology and Evolution 4, 2263–2277.
Neutral theory and the species abundance distribution: recent developments and prospects for unifying niche and neutral perspectives.Crossref | GoogleScholarGoogle Scholar |

Matthews, TJ, Borregaard, MK, Ugland, KI, Borges, PAV, Rigal, F, Cardoso, P, and Whittaker, RJ (2014). The Gambin model provides a superior fit to species abundance distributions with a single free parameter: evidence, implementation and interpretation. Ecography 37, 1002–1011.
The Gambin model provides a superior fit to species abundance distributions with a single free parameter: evidence, implementation and interpretation.Crossref | GoogleScholarGoogle Scholar |

Maturo, F, and Di Battista, T (2018). A functional approach to Hill’s numbers for assessing changes in species variety of ecological communities over time. Ecological Indicators 84, 70–81.
A functional approach to Hill’s numbers for assessing changes in species variety of ecological communities over time.Crossref | GoogleScholarGoogle Scholar |

Munro, NT, Fischer, J, Barrett, G, Wood, J, Leavesley, A, and Lindenmayer, DB (2011). Bird’s response to revegetation of different structure and floristics: are ‘restoration plantings’ restoring bird communities? Restoration Ecology 19, 223–235.
Bird’s response to revegetation of different structure and floristics: are ‘restoration plantings’ restoring bird communities?Crossref | GoogleScholarGoogle Scholar |

Nsor, CA, Acquah, E, Mensah, G, Kusi-Kyei, V, and Boadi, S (2018). Avian community structure as a function of season, habitat type, and disturbance, in Mole National Park, northern region (Ghana). International Journal of Ecology 2018, 2045629.
Avian community structure as a function of season, habitat type, and disturbance, in Mole National Park, northern region (Ghana).Crossref | GoogleScholarGoogle Scholar |

Nunoo, J, Agbo, N, and Ackah, M (2012). Fish fauna of the Owabi Dam Reservior in Ghana. Proceedings of the International Academy of Ecology and Environmental Sciences 2, 21–26.

Oduro, W, and Aduse-Poku, K (2005). Preliminary assessment of fruit feeding butterfly communities in the Owabi Wildlife Sanctuary. Ghana Journal of Forestry 17, 9–19.
Preliminary assessment of fruit feeding butterfly communities in the Owabi Wildlife Sanctuary.Crossref | GoogleScholarGoogle Scholar |

Patil, GP, and Taillie, C (1982). Diversity as a concept and its measurement. Journal of the American Statistical Association 77, 548–561.
Diversity as a concept and its measurement.Crossref | GoogleScholarGoogle Scholar |

Pineda-Diez de Bonilla, E, León-Cortés, JL, and Rangel-Salazar, JL (2012). Diversity of bird feeding guilds in relation to habitat heterogeneity and land-use cover in a human-modified landscape in southern Mexico. Journal of Tropical Ecology 28, 369–376.
Diversity of bird feeding guilds in relation to habitat heterogeneity and land-use cover in a human-modified landscape in southern Mexico.Crossref | GoogleScholarGoogle Scholar |

Pons, P, and Wendenburg, C (2005). The impact of fire and forest conversion into savanna on the bird communities of West Madagascan dry forests. Animal Conservation 8, 183–193.
The impact of fire and forest conversion into savanna on the bird communities of West Madagascan dry forests.Crossref | GoogleScholarGoogle Scholar |

Prentice, IC (1977). Non-metric ordination methods in ecology. Journal of Ecology 65, 85–94.
Non-metric ordination methods in ecology.Crossref | GoogleScholarGoogle Scholar |

Prentice, IC (1980). Vegetation analysis and order invariant gradient models. Vegetatio 42, 27–34.
Vegetation analysis and order invariant gradient models.Crossref | GoogleScholarGoogle Scholar |

Ribon, R, dos Santos, LR, De Marco Júnior, P, and Marini, MÂ (2021). Topography as a determinant of bird distribution in secondary Atlantic Forest fragments. Journal of Tropical Ecology 37, 228–234.
Topography as a determinant of bird distribution in secondary Atlantic Forest fragments.Crossref | GoogleScholarGoogle Scholar |

Ribon R (2003) Aves em fragmentos de Mata Atlântica do sudeste de Minas Gerais: incidência, abundância e associação à topografia. PhD thesis. Universidade Federal de Minas Gerais, Belo Horizonte, Brazil.

Sekercioglu, CH (2012). Bird functional diversity and ecosystem services in tropical forests, agroforests and agricultural areas. Journal of Ornithology 153, 153–161.
Bird functional diversity and ecosystem services in tropical forests, agroforests and agricultural areas.Crossref | GoogleScholarGoogle Scholar |

Sreekar, R, Zhang, K, Xu, J, and Harrison, RD (2015). Yet another empty forest: considering the conservation value of a recently established tropical nature reserve. PLoS ONE 10, e0117920.
Yet another empty forest: considering the conservation value of a recently established tropical nature reserve.Crossref | GoogleScholarGoogle Scholar |

Stralberg, D, Camfield, A, Carlson, M, Lauzon, C, Westwood, A, Barker, NKS, Song, SJ, and Schmiegelow, FKA (2018). Strategies for identifying priority areas for songbird conservation in Canada’s boreal forest. Avian Conservation and Ecology 13, 12.
Strategies for identifying priority areas for songbird conservation in Canada’s boreal forest.Crossref | GoogleScholarGoogle Scholar |

Sutherland WJ (2006) ‘Ecological census techniques: a handbook.’ (Cambridge University Press)

Svärdson, G (1949). Competition and habitat selection in birds. Oikos 1, 157–174.
Competition and habitat selection in birds.Crossref | GoogleScholarGoogle Scholar |

Szymkowiak, J, Thomson, RL, and Kuczyński, L (2017). Interspecific social information use in habitat selection decisions among migrant songbirds. Behavioral Ecology 28, 767–775.
Interspecific social information use in habitat selection decisions among migrant songbirds.Crossref | GoogleScholarGoogle Scholar |

ter Braak CJ, Smilauer P (1998) ‘CANOCO reference manual and user’s guide to CANOCO for windows.’ (Microcomputer Power: Ithaca, NY, USA)

ter Braak, CJF, and Verdonschot, PFM (1995). Canonical correspondence analysis and related multivariate methods in aquatic ecology. Aquatic Science 57, 255–289.
Canonical correspondence analysis and related multivariate methods in aquatic ecology.Crossref | GoogleScholarGoogle Scholar |

Tolvanen, J, Seppänen, J-T, Mönkkönen, M, Thomson, RL, Ylönen, H, and Forsman, JT (2018). Interspecific information on predation risk affects nest site choice in a passerine bird. BMC Evolutionary Biology 18, 181.
Interspecific information on predation risk affects nest site choice in a passerine bird.Crossref | GoogleScholarGoogle Scholar |

Tong, SR, Lee, TH, Cheong, SK, and Lim, YM (2021). Geographical factor influences the metabolite distribution of House Edible Bird’s Nests in Malaysia. Frontiers in Nutrition 28, 658–634.
Geographical factor influences the metabolite distribution of House Edible Bird’s Nests in Malaysia.Crossref | GoogleScholarGoogle Scholar |

Tu, H-M, Fan, M-W, and Ko, JC-J (2020). Different habitat types affect bird richness and evenness. Scientific Reports 10, 1221.
Different habitat types affect bird richness and evenness.Crossref | GoogleScholarGoogle Scholar |

Tóthmérész, B (1995). Comparison of different methods for diversity ordering. Journal of Vegetation Science 6, 283–290.
Comparison of different methods for diversity ordering.Crossref | GoogleScholarGoogle Scholar |

Ugland, KI, Lambshead, PJD, McGill, B, Gray, JS, O’Dea, N, Ladle, RJ, and Whittaker, RJ (2007). Modelling dimensionality in species abundance distributions: description and evaluation of the Gambin model. Evolutionary Ecology Research 9, 313–324.

Verschuyl, JP, Hansen, AJ, McWethy, DB, Sallabanks, R, and Hutto, RL (2008). Is the effect of forest structure on bird diversity modified by forest productivity. Ecological Applications 18, 1155–1170.
Is the effect of forest structure on bird diversity modified by forest productivity.Crossref | GoogleScholarGoogle Scholar |

Wakefield, ED, Phillips, RA, Trathan, PN, Arata, J, Gales, R, Huin, N, and Matthiopoulos, J (2011). Habitat preference, accessibility, and competition limit the global distribution of breeding Black-browed Albatrosses. Ecological Monographs 81, 141–167.
Habitat preference, accessibility, and competition limit the global distribution of breeding Black-browed Albatrosses.Crossref | GoogleScholarGoogle Scholar |

Webb, SL, Olson, CV, Dzialak, MR, et al. (2012). Landscape features and weather influence nest survival of a ground-nesting bird of conservation concern, the greater sage-grouse, in human-altered environments. Ecological Processes 1, 4.
Landscape features and weather influence nest survival of a ground-nesting bird of conservation concern, the greater sage-grouse, in human-altered environments.Crossref | GoogleScholarGoogle Scholar |

Wijesinghe, MR, and Brooke, MdL (2005). Impact of habitat disturbance on the distribution of endemic species of small mammals and birds in a tropical rain forest in Sri Lanka. Journal of Tropical Ecology 21, 661–668.
Impact of habitat disturbance on the distribution of endemic species of small mammals and birds in a tropical rain forest in Sri Lanka.Crossref | GoogleScholarGoogle Scholar |

Willoughby, N, Grimble, R, Ellenbroek, W, Danso, E, and Amatekpor, J (2001). The wise use of wetlands: identifying development options for Ghana’s coastal Ramsar sites. Hydrobiologia 458, 221–234.
The wise use of wetlands: identifying development options for Ghana’s coastal Ramsar sites.Crossref | GoogleScholarGoogle Scholar |

Zhang, J, Pannell, JL, Case, BS, Hinchliffe, G, Stanley, MC, and Buckley, HL (2021). Interactions between landscape structure and bird mobility traits affect the connectivity of agroecosystem networks. Ecological Indicators 129, 107962.
Interactions between landscape structure and bird mobility traits affect the connectivity of agroecosystem networks.Crossref | GoogleScholarGoogle Scholar |

Şekercioğlu, ÇH, Primack, RB, and Wormworth, J (2012). The effects of climate change on tropical birds. Biological Conservation 148, 1–18.
The effects of climate change on tropical birds.Crossref | GoogleScholarGoogle Scholar |