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Soil Seed Bank Characteristics of the Mbe and Nguela Shrub Savannas, and Implications for the Reforestation, Republic of Congo

DOI: 10.4236/oje.2023.137027, PP. 435-453

Keywords: Soil Seed Bank, Shrub Savannas, Restoration, Anthropogenic Disturbances, Republic of Congo

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Abstract:

The soil seed bank is an important source of restoration and resilience of disturbed ecosystems. This study evaluates the regeneration potential through the soil seed bank of the shrub savannas of Nguela and Mbe in order to predict the eventual dynamics. Three plots of 0.25 ha subdivided into four sub-plots of 0.015 ha have been installed in each savannah. In total, 48 samples of each savannah, i.e. 96 samples of both savannas, have been taken from the soil layers, 0 - 5 cm, 5 - 10 cm, 10 - 15 cm and 15 - 20 cm. Species diversity and abundance of the soil seed bank have been assessed after germination. The results reveal 167 seedlings belonging to 23 species in the Mbe savannah and 144 seedlings belonging to 14 species in the Nguela savannah. The total densities of the germinated seeds were respectively 463.63 seeds/m2 and 400 seeds/m2. Nevertheless, the 20 cm deep layers have illustrated themselves compared to the superficial layers with densities of 16.29 seeds/m2 and 21.66 seeds/m2, respectively, in the savannas of Mbe and Nguela. Herbaceous species largely dominated, with percentages of 91% and 100%, respectively, in the savannas of Mbe and Nguela. Alone, the Trema orientalis (L.) Blume species has been identified as woody species in the Mbe savannah. The greatest specific richness has been obtained in the first five centimeters of soil, with 21.73% and 28.57% of exclusive species, respectively, in the savannas of Mbe and Nguela. The results reveal that restoration through the soil seed bank would be limited to a single woody species found (T. orientalis). Consequently, the study suggests silvicultural interventions based on planting or enrichment techniques for sustainably managed savannas exposed to anthropogenic disturbances.

References

[1]  Veldman, J.W., Buisson, E., Durigan, G., Fernandes, G.W., Le Stradic, S., Mahy, G., Negreiros, D., Overbeck, G.E., Veldman, R.G., Zaloumis, N.P., Putz, F.E. and Bond, W.J. (2015) Toward an Old-Growth Concept for Grasslands, Savannas, and Woodlands. Frontiers in Ecology and the Environment, 13, 154-162.
https://doi.org/10.1890/140270
[2]  Buisson, E., Le Stradic, S., Silveira, F.A.O., Durigan, G., Overbeck, G.E., Fidelis, A., Fernandes, G.W., Bond, W.J., Hermann, J., Mahy, G., Alvarado, S.T., Zaloumis, N.P. and Veldman, J.W. (2018) Resilience and Restoration of Tropical and Subtropical Grasslands, Savannas, and Grassy Woodlands. Biological Reviews, 94, 590-609.
https://doi.org/10.1111/brv.12470
[3]  Hiol Hiol, F., Keuze, V.A., Konsala, S. and Njoukam, R. (2014) Les espaces forestiers des savanes et steppes d’Afrique Centrale. Les forêts du bassin du Congo-Etat des Forêts 2013. Chapter 6, 165-183.
[4]  Aubreville, A. and Chevalier, A. (1949) Climats, forêts et désertification de l’Afrique tropicale. Société d’Editions Géographiques, Maritimes et coloniales, Paris, 351 p.
[5]  Aboubacar, A.C., Dugué, P. and Hubert, F. (2012) Transformation des mosaïques de forêt-savane par des pratiques agroforestières en Afrique subsaharienne (Guinée et Cameroun). Cybergeo: European Journal of Geography. Environment, Nature, Landscape, Document 627.
http://journals.openedition.org/cybergeo/25588
[6]  Belsky, A.J. (1986) Revegetation of Artificial Disturbances in Grasslands of the Serengeti National Park, Tanzania. I. Colonization of Grazed and Ungrazed Plots. Journal of Ecology, 74, 419-437.
https://doi.org/10.2307/2260265
[7]  O’Connor, T.G. and Pickett, G.A. (1992) The Influence of Grazing on Seed Production and Seed Banks of Some African Savanna Grasslands. Journal of Applied Ecology, 29, 247-260.
https://doi.org/10.2307/2404367
[8]  Skoglund, J. (1992) The Role of Seed Banks in Vegetation Dynamics and Restoration of Dry Tropical Ecosystems. Journal of Vegetation Science, 3, 357-360.
https://doi.org/10.2307/3235760
[9]  Tessema, Z.K., Egigu, B. and Nigatu, L. (2017) Tree Species Determine Soil Seed Bank Composition and Its Similarity with Understory Vegetation in a Semi-Arid African Savanna. Ecological Processes, 6, Article No. 9.
https://doi.org/10.1186/s13717-017-0075-7
[10]  Zassi-boulou, A.G. (2004) évaluation des potentialités fourragères des savanes de Mbié (Sous-préfecture d’Okoyo, Département de la Cuvette ouest). Mémoire d’Ingénieur de Développement Rural, Université Marien Ngouabi, Brazzaville, 120 p.
[11]  Yoka, J.J. (2006) Contribution à l’étude phyto-écologique des savanes de la zone d’Ollombo (Cuvette congolaise, République du Congo). Mémoire de Diplôme d’études Approfondies, Faculté des Sciences, Université Marien Ngouabi, Brazzaville, 53 p.
[12]  Yoka, J., Loumeto, J.J. and Vouidibio, J. (2007) Quelques caractéristiques écologiques des savanes de la zone d’Ollombo (Cuvette congolaise, République du Congo). Annales de l’Université Marien Ngouabi, 8, 74-87.
[13]  Diamouangana, J. (2000) Teneurs en éléments minéraux des fourrages de la plaine de Dihessé (Congo-Brazzaville): Proposition de complémentation pour bovins. Annales de l’Université Marien Ngouabi, 1, 103-115.
[14]  Diamouangana, J. (2002) Relations interspécifiques dans les strates herbacées des savanes de Louboulou (Congo-Brazzaville). Annales de l’Université Marien Ngouabi, 3, 93-107.
[15]  Makany, L. (1976) Végétation des Plateaux Téké (Congo). Collection des travaux de l’Université de Brazzaville, Brazzaville, 301 p.
[16]  Apani, E. (1990) Contribution à l’étude phyto-écologique de la savane à Loudetia demeusei et Hymenocardia acida des contreforts des Plateaux Téké (République Populaire du Congo). Thèse de Doctorat, Université de Rennes I, Rennes, 147 p.
[17]  Descoings, B. (1975) Les grandes régions naturelles du Congo. Candollea, 30, 91-120.
[18]  Baker, H.G. (1989) Some Aspects of the Natural History of Seed Banks. In: Leck, M.A., Parker, V.T. and Simpson, R.L., Eds., Ecology of Soil Seed Banks, Academic Press Inc., San Diego, 9-21.
https://doi.org/10.1016/B978-0-12-440405-2.50007-5
[19]  Bakker, J.P., Poschlod, P., Strykstra, R.J., Bekker, R.M. and Thompson, K. (1996) Seed Banks and Seed Dispersal: Important Topics in Restoration Ecology. Review. Acta Botanica Neerlandica, 45, 461-490.
https://doi.org/10.1111/j.1438-8677.1996.tb00806.x
[20]  Hall, J.B. and Swaine, M.D. (1980) Seed Stocks in Ghanaian Forest Soils. Biotropica, 14, 60-62.
https://doi.org/10.2307/2387695
[21]  Hopkins, M.S. and Graham, A.W. (1987) The Viability of Seeds of Rain Forest Species after Experimental Soil Burials under Tropical Wet Lowland Forest in Northeastern Australia. Australian Journal of Ecology, 12, 97-108.
https://doi.org/10.1111/j.1442-9993.1987.tb00932.x
[22]  Whitmore, T.C. (1989) Canopy Gaps and the Two Major Groups of Forest Trees. Ecology, 70, 536-538.
https://doi.org/10.2307/1940195
[23]  Garwood, N.C. (1989) Tropical Soil Seed Banks: A Review. In: Leck, M.A., Parker, V.T. and Simpson, R.L., Eds., Ecology of Soil Seed Banks, Academic Press, San Diego, 149-209.
https://doi.org/10.1016/B978-0-12-440405-2.50014-2
[24]  Martins, A.M. and Engel, V.L. (2007) Soil Seed Banks in Tropical Forest Fragments with Different Disturbance Histories in Southeastern Brazil. Ecological Engineering, 31, 165-174.
https://doi.org/10.1016/j.ecoleng.2007.05.008
[25]  Harper, J.L. (1977) The Population Biology of Plants. Academic Press, London.
[26]  Grime, J.P. and Hillier, S.H. (2000) The Contribution of Seedling Regeneration to the Structure and Dynamics of Plant Communities, Ecosystems and Larger Units of the Landscape. In: Fenner, M., Ed., Seeds. The Ecology of Regeneration in Plant Communities, 2nd Edition, CABI Publishing, Wallingford, 361-374.
https://doi.org/10.1079/9780851994321.0361
[27]  Douh, C., Daïnou, K., Loumeto, J.J., Moutsambote, J.M., Fayolle, A., Tosso, F., Forni, E., Gourlet-Fleury, S. and Doucet, J.-L. (2018) Soil Seed Bank Characteristics in Two Central African Forest Types and Implications for Forest Restoration. Forest Ecology and Management, 409, 766-776.
https://doi.org/10.1016/j.foreco.2017.12.012
[28]  Augusto, U., Mulualem, T. and Per, C.O. (2009) Soil Seed Banks and Regeneration of Neotropical Dry Deciduous and Gallery Forests in Nicaragua. Bois et Forêts des Tropiques, 299, 49-62.
https://doi.org/10.19182/bft2009.299.a20422
[29]  Descoings, B. (1969) Rapport botanique préliminaire sur la Cuvette congolaise (République du Congo). Rapport d’étude No. 4, ORSTOM, Paris, 15 p.
[30]  Samba-Kimbata, M.J. (1978) Le climat de Bas-Congo. Thèse 3e Cycle, Université de Dijon, Faculté des Lettres, Dijon, 280 p.
[31]  Vennetier, P. (1968) Pointe Noire et la façade maritime du Congo. Mém. N° 26, ORSTOM, Paris, 458 p.
[32]  Ministère de l’Agriculture et de l’Elevage (MAE) (2011) étude du secteur Agricole. Monographie départementale du Pool, 152 p.
[33]  Perera, G.A.D. (2005) Spatial Heterogeneity of the Soil Seed Bank in the Tropical Semi-Deciduous Forest at Wasgomuwa National Park, Sri Lanka. Tropical Ecology, 46, 79-89.
[34]  Daïnou, K., Bauduin, A., Bourland, N., Gillet, J.F., Fétéké, F. and Doucet, J.-L. (2011) Soil Seed Bank Characteristics in Cameroonian Rainforests and Implications for Post-Logging Forest Recovery. Ecological Engineering, 37, 1499-1506.
https://doi.org/10.1016/j.ecoleng.2011.05.004
[35]  Simpson, R.L., Leck, M.A. and Parker, V.T. (1989) Seed Banks: General Concepts and Methodological Issues. In: Leck, M.A., Parker, V.T. and Simpson, R.L., Eds., Ecology of Soil Seed Banks, Academic Press Inc., San Diego, 3-8.
https://doi.org/10.1016/B978-0-12-440405-2.50006-3
[36]  Sousa, T.R., Costa, F.R.C., Bentos, T.V., Leal Filho, N., Mesquita, R.C.G. and Ribeiro, I.O. (2017) The Effect of Forest Fragmentation on the Soil Seed Bank of Central Amazonia. Forest Ecology and Management, 393, 105-112.
https://doi.org/10.1016/j.foreco.2017.03.020
[37]  Nelder, J.A. and Wedderburn, R.W.M. (1972). Generalized Linear Models. Journal of the Royal Statistical Society, Series A, 135, 370-384.
https://doi.org/10.2307/2344614
[38]  Mueller-Dombois, D. and Ellenberg, H. (1974) Aims and Methods of Vegetation Ecology. John Wiley Sons, New York.
[39]  Borges, K.H. and Engel, V.L. (1993) Influência de fragmentos de vegetaçâonativa na composiçâo do banco de sementes de povoamentos implantados de eucaliptos. Proceedings of the Brazilian Forest Congress, SBS/SBEF, Sao Paulo, Vol. 7, 434-437.
[40]  Butler, B. and Chazdon, R.L. (1998) Species Richness, Spatial Variation, and Abundance of the Soil Seed Bank of a Secondary Tropical Rain Forest. Biotropica, 30, 214-222.
https://doi.org/10.1111/j.1744-7429.1998.tb00056.x
[41]  Roberts, D.W. (2012) Labdsv: Ordination and Multivariate Analysis for Ecology. R Package Version 1.5-0.
http://cran.r-project.org/package=labdsv
[42]  Dufrêne, M. and Legendre, P. (1997) Species Assemblages and Indicator Species: The Need for a Flexible Asymmetrical Approach. Ecological Monographs, 67, 345-366.
https://doi.org/10.2307/2963459
[43]  Walther, P., Resch, K.J., Rudolph, T., Schenck, E., Weinfurter, H., Vedral, V., Aspelmeyer, M. and Zeilinger, A. (2005) Experimental One-Way Quantum Computing. Nature, 434, 169-176.
https://doi.org/10.1038/nature03347
[44]  Walther, B.A. and Morand, S. (1998) Comparative Performance of Species Richness Estimation Methods. Parasitology, 116, 395-405.
https://doi.org/10.1017/S0031182097002230
[45]  Walther, B.A. and Martin, J.L. (2001) Species Richness Estimation of Bird Communities: How to Control for Sampling Effort? Ibis, 143, 413-419.
https://doi.org/10.1111/j.1474-919X.2001.tb04942.x
[46]  Chiarucci, A., Enright, N.J., Perry, G.L.W., Miller, B.P. and Lamont, B.B. (2003) Performance of Nonparametric Species Richness Estimators in a High Diversity Plant Community. Diversity Distributions, 9, 283-295.
https://doi.org/10.1046/j.1472-4642.2003.00027.x
[47]  Dove, A.D.M. and Cribb, T.H. (2006) Species Accumulation Curves and Their Applications in Parasite Ecology. Trends in Parasitology, 22, 568-574.
https://doi.org/10.1016/j.pt.2006.09.008
[48]  Colwell, R.K. (2013) EstimateS: Statistical Estimation of Species Richness and Shared Species from Samples. Version 9.1.0. User’s Guide and Application.
http://purl.oclc.org/estimates
[49]  McCullagh, P. and Nelder, J.A. (1993) Generalized Linear Models. Journal of the Royal Statistical Society. Series A (General), 135, 370-384.
https://doi.org/10.2307/2344614
[50]  Ripley, B., Venables, B., Hornik, K., Gebjardt, A. and Firth, D. (2017) Support Functions and Datasets for Venables and Ripley’s MASS. Package MASS.
http://cran.r-project.org/web/packages/MASS/index.html
[51]  Faith, D.P., Minchin, P.R. and Belbin, L. (1987) Compositional Dissimilarity as a Robust Measure of Ecological Distance. Vegetatio, 69, 57-68.
https://doi.org/10.1007/BF00038687
[52]  Clarke, K.R. (1993) Non-Parametric Multivariate Analyses of Changes in Community Structure. Australian Journal of Ecology, 18, 117-143.
https://doi.org/10.1111/j.1442-9993.1993.tb00438.x
[53]  Glèlè Kakaï, R., Salako, V.K., Padonou, E.A. and Lykke, A.M. (2016) Méthodes statistiques multivariées utilisées en écologie. Annales Des Sciences Agronomiques, 20, 139-157.
[54]  Cordonnier, T., Dreyfus, P. and Trouvé, R. (2012) Quelles dimensions quels indices d’hétérogénéité privilégier pour l’expérimentation dans les peuplements forestiers mélangés ou irréguliers? Revue Forestière Française, 64, 773-788.
https://doi.org/10.4267/2042/51115
[55]  Djego, J., Gibigaye, M., Ente, B. and Sinsin, B. (2012) Analyses écologique et structurale de la forêt communautaire de Kaodji au Bénin. International Journal of Biological and Chemical Sciences, 6, 705-711.
https://doi.org/10.4314/ijbcs.v6i2.14
[56]  Teketay, D. and Granström, A. (1997) Germination Ecology of Forest Species from the Highlands of Ethiopia. Journal of Tropical Ecology, 13, 805-831.
https://doi.org/10.1017/S0266467400011019
[57]  Baskin, C.C. and Baskin, J.M. (1998) Seeds: Ecology, Biogeography, and Evolution of Dormancy and Germination. Academic Press, New York.
https://doi.org/10.1017/CBO9780511525445.004
[58]  Sanou, L., Zida, D., Savadogo, P. and Thiombiano, A. (2018) Comparison of Aboveground Vegetation and Soil Seed Bank Composition at Sites of Different Grazing Intensity around a Savanna-Woodland Watering Point in West Africa. Journal of Plant Research, 131, 773-788.
https://doi.org/10.1007/s10265-018-1048-3
[59]  Getachew T., Teketay, D., Assefa, Y. and Fetene, M. (2004) The Impact of Fire on the Soil Seed Bank and Regeneration of Harenna Forest, Southeastern Ethiopia. Mountain Research and Development, 24, 354-361.
https://doi.org/10.1659/0276-4741(2004)024[0354:TIOFOT]2.0.CO;2
[60]  Hérault, B. and Hiernaux, P. (2004) Soil Seed Bank and Vegetation Dynamics in Sahelian Fallows; the Impact of Past Cropping and Current Grazing Treatments. Journal of Tropical Ecology, 20, 683-691.
https://doi.org/10.1017/S0266467404001786
[61]  Savadogo, P., Sanou, L., Dayamba, S.D., Bognounou, F. and Thiombiano, A. (2017) Relationships between Soil Seed Banks and Above-Ground Vegetation along a Disturbance Gradient in the W National Park Trans-Boundary Biosphere Reserve West Africa. Journal of Plant Ecology, 10, 349-363.
https://doi.org/10.1093/jpe/rtw025
[62]  Farzana, M., Rahman, M.M., Ferdous, T. and Jahan, S.M. (2022) Review on Trema orientalis as a Potential Bioresource in Tropical Countries. Trees, 36, 1169-1177.
https://doi.org/10.1007/s00468-021-02245-1
[63]  Geethangili, M. and Ding, S.-T. (2018) A Review of the Phytochemistry and Pharmacology of Phyllanthus urinaria L. Frontiers in Pharmacology, 9, Article 1109.
https://doi.org/10.3389/fphar.2018.01109
[64]  Akoègninou, A., van der Burg, W.J. and van der Maesen, L.J.G. (2006) Flore analytique du Bénin. Journal de Botanique de la Société de botanique de France, 45, 81-82.
[65]  Dreber, N., Oldeland, J. and Van, R.G.M.W. (2011) Species, Functional Groups and Community Structure in Seed Banks of the Arid Nama Karoo: Grazing Impacts and Implications for Rangeland Restoration. Agriculture, Ecosystems and Environment, 141, 399-409.
https://doi.org/10.1016/j.agee.2011.04.004
[66]  Wassie, A. and Teketay, D. (2006) Soil Seed Banks in Church Forests of Northern Ethiopia: Implications for the Conservation of Woody Plants. Flora-Morphology, Distribution, Functional Ecology of Plants, 201, 32-43.
https://doi.org/10.1016/j.flora.2005.04.002
[67]  Martinez-Ghersa, M.A., Ghersa, C.M., Benech-Arnold, R.L., Donough, R.M. and Sanchez, R.A. (2000) Adaptive Traits Regulating Dormancy and Germination of Invasive Species. Plant Species Biology, 15, 127-137.
https://doi.org/10.1046/j.1442-1984.2000.00033.x
[68]  Egawa, C. and Tsuyuzaki, S. (2013) The Effects of Litter Accumulation through Succession on Seed Bank Formation for Small and Large Seeded Species. Journal of Vegetation Science, 24, 1062-1073.
https://doi.org/10.1111/jvs.12037
[69]  Bossuyt, B., Heyn, M. and Hermy, M. (2002) Seed Bank and Vegetation Composition of Forest Stands of Varying Age in Central Belgium: Consequences for Regeneration of Ancient Forest Vegetation. Plant Ecology, 162, 33-48.
https://doi.org/10.1023/A:1020391430072
[70]  Douh, C., Makouanzi Ekomono, C.G., Bouya, A.H. and Koubouana, F. (2022) Determinants of the Seeds Germination of Mukulungu-Autranella congolensis (De Wild.) A. Chev. in Nursery. Revue Africaine d’Environnement et d’Agriculture, 5, 63-71.
[71]  Douh, C., Makouanzi Ekomono, C.G., Kessimo, R.G. and Koubouana, F. (2022) Nursery Germination Trial of Tali Seeds, Erythrophleum suaveolens (Guill. & Perr.) Brenan. International Journal of Biological and Chemical Sciences, 16, 2611-2620.
https://doi.org/10.4314/ijbcs.v16i6.13

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