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Identifying key demographic parameters for the viability of a growing population of the endangered Egyptian Vulture Neophron percnopterus

Published online by Cambridge University Press:  09 February 2015

HELENA TAULER*
Affiliation:
Conservation Biology Group, Departament de Biologia Animal, Universitat de Barcelona, Av. Diagonal 643, 08028 Barcelona, Catalonia, Spain.
JOAN REAL
Affiliation:
Conservation Biology Group, Departament de Biologia Animal, Universitat de Barcelona, Av. Diagonal 643, 08028 Barcelona, Catalonia, Spain.
ANTONIO HERNÁNDEZ-MATÍAS
Affiliation:
Conservation Biology Group, Departament de Biologia Animal, Universitat de Barcelona, Av. Diagonal 643, 08028 Barcelona, Catalonia, Spain.
PERE AYMERICH
Affiliation:
C. Barcelona, 29. 08600 Berga. Catalonia. Spain.
JORDI BAUCELLS
Affiliation:
Grup de Naturalistes d’Osona, C. de la Laura, 13. 08500 Vic, Catalonia, Spain.
CARLES MARTORELL
Affiliation:
Grup de Naturalistes d’Osona, C. de la Laura, 13. 08500 Vic, Catalonia, Spain.
JOAN SANTANDREU
Affiliation:
C. Ramón Turró, 5, Esc A, 4t-3a, 08005- Barcelona. Catalonia, Spain.
*
*Author for correspondence; email: htauler@ub.edu
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Summary

The Egyptian Vulture Neophron percnopterus is a threatened species throughout its worldwide range. The Iberian Peninsula holds 50% of its global population, which has declined by 25% over the last 20 years. Despite this negative global trend, an increase in the number of individuals over the last 25 years has been observed in Catalonia, where it has colonised areas in which it was previously unknown. In this study, we describe the demographic evolution of an increasing population of Egyptian Vultures in central and eastern Catalonia and we apply population models and maximum likelihood procedures to investigate both the main demographic processes driving the observed trends and the viability of the population. The number of pairs in this region increased from one to 22 in the period 1988–2012. The best-supported models suggest that adult survival in this population may be higher than in other Iberian populations and that furthermore, there is a continuous influx of immigrants. Based on the most likely scenarios, Population Viability Analysis predicts that the population will continue to increase. Sensitivity analysis indicates that the adult survival rate has the greatest influence on population dynamics so conservation efforts will be more effective if concentrated on improving this rate.

Information

Type
Research Article
Copyright
Copyright © BirdLife International 2015 
Figure 0

Figure 1. Diagram of the Egyptian Vulture life cycle. Nodes represent the different age classes considered in the model. S12: yearly survival in first and second years of life, S34: yearly survival in third and fourth years of life, S5: yearly survival in fifth year of life when the recruitment of individual occurs, SA: yearly survival of adult breeders, P: productivity and SR: sex ratio which was assumed at 1:1.

Figure 1

Figure 2. Left: Colonisation of Egyptian Vulture in Catalonia. (a) Represents the range of the species according to Atles dels Ocells nidificants de Catalunya (Muntaner et al. 1983). (b) Represents the expansion of the species outside the study area, according to Servei de Biodiversitat i proteció dels Animals, Generalitat de Catalunya (2012). (c) Represents the study area. Symbols correspond to territorial pairs in the study area: white cross: 1988–1995, white square: 1996–2000, black circle: 2001–2005, black diamond: 2006–2012. Right: Number of occupied territories of Egyptian Vulture in the study area during the period 1988–2012.

Figure 2

Figure 3. Likelihood estimate assuming different values of both adult survival (SA), from 0.7 to 0.975, and number of immigrants, from 0 to 10. Likelihood is represented by grey tones, from white (0) to dark grey (1). Black lines indicate the mean number of breeding pairs predicted under each scenario in 2012. White points indicate two most likely scenarios selected to perform the PVA (scenario 1 and 2). Black points indicate two closed population scenarios (3 and 4) selected to perform PVA.

Figure 3

Figure 4. Projection of the population trend (in number of pairs) estimated for the next 50 years using models considered for PVA. All 5,000 replicates are represented in grey as well as the average trend represented by the black line.

Figure 4

Figure 5. Sensitivity and elasticity of the population growth rate to main vital rates. S12: yearly survival in the first two years of life, S34: yearly survival in third and fourth years of life, S5: survival in fifth year of life, SA: survival of territorial individuals, P: productivity (number of fledglings per territorial pair), and Nimm: number of immigrants.

Figure 5

Figure 6. Contribution of immigration and adult survival to the population growth rate, assuming different values of both adult survival (SA), from 0.7 to 0.975, and number of immigrants, from 0 to 10. Values of lambda lower than 1 are represented in black, while values greater than one are represented in a grey scale, darker tones corresponding to lower values of lambda.

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