Predicting the Future of Protected Areas in the Region of the Highest Population Density in Sub-Saharan Africa

Author(s):  
Olivier Clement Gatwaza ◽  
Xiangrong Wang
The Lancet ◽  
2017 ◽  
Vol 390 (10114) ◽  
pp. 2803-2859 ◽  
Author(s):  
Irene Akua Agyepong ◽  
Nelson Sewankambo ◽  
Agnes Binagwaho ◽  
Awa Marie Coll-Seck ◽  
Tumani Corrah ◽  
...  

2017 ◽  
pp. 19-21 ◽  
Author(s):  
Wondwosen Tamrat ◽  
Daniel Levy

Ethiopia’s private higher education (PHE) sector is the largest or second largest in sub-Saharan Africa, however a mix of enabling and restrictive policies have let PHE play a limited role in key respects. This article surveys the current landscape and asks important questions regarding the future of PHE.


Author(s):  
Paul A. Adedeji ◽  
Stephen Akinlabi ◽  
Nkosinathi Madushele ◽  
Obafemi Olatunji

2019 ◽  
Vol 12 (1) ◽  
Author(s):  
Judith Sophie Weber ◽  
Sen Claudine Henriette Ngomtcho ◽  
Stephen Saikiu Shaida ◽  
Gloria Dada Chechet ◽  
Thaddeus Terlumun Gbem ◽  
...  

Abstract Background Trypanosomes cause disease in humans and livestock in sub-Saharan Africa and rely on tsetse flies as their main insect vector. Nigeria is the most populous country in Africa; however, only limited information about the occurrence and diversity of trypanosomes circulating in the country is available. Methods Tsetse flies were collected from five different locations in or adjacent to protected areas, i.e. national parks and game reserves, in Nigeria. Proboscis and gut samples were analysed for trypanosome DNA by molecular amplification of the internal transcribed spacer 1 (ITS1) region and part of the trypanosome specific glycosomal glyceraldehyde-3-phosphate dehydrogenase (gGAPDH) gene. Results The most abundant Trypanosoma species found in the tsetse gut was T. grayi, a trypanosome infecting crocodiles. It was ubiquitously distributed throughout the country, accounting for over 90% of all cases involving trypanosomes. Trypanosoma congolense was detected in gut samples from all locations except Cross River National Park, but not in the proboscis, while T. brucei (sensu lato) was not detected at all. In proboscis samples, T. vivax was the most prominent. The sequence diversity of gGAPDH suggests that T. vivax and T. grayi represent genetically diverse species clusters. This implies that they are highly dynamic populations. Conclusions The prevalence of animal pathogenic trypanosomes throughout Nigeria emphasises the role of protected areas as reservoirs for livestock trypanosomes. The genetic diversity observed within T. vivax and T. grayi populations might be an indication for changing pathogenicity or host range and the origin and consequences of this diversity has to be further investigated.


Parasite ◽  
2020 ◽  
Vol 27 ◽  
pp. 13
Author(s):  
Louis J. La Grange ◽  
Samson Mukaratirwa

Knowledge on the epidemiology, host range and transmission of Trichinella spp. infections in different ecological zones in southern Africa including areas of wildlife-human interface is limited. The majority of reports on Trichinella infections in sub-Saharan Africa were from wildlife resident in protected areas. Elucidation of the epidemiology of the infections and the prediction of hosts involved in the sylvatic cycles within specific ecological niches is critical. Of recent, there have been reports of Trichinella infections in several wildlife species within the Greater Kruger National Park (GKNP) of South Africa, which has prompted the revision and update of published hypothetical transmission cycles including the hypothetical options based previously on the biology and feeding behaviour of wildlife hosts confined to the GKNP. Using data gathered from surveillance studies and reports spanning the period 1964–2019, confirmed transmission cycles and revised hypothesized transmission cycles of three known Trichinella species (T. zimbabwensis, Trichinella T8 and T. nelsoni) are presented. These were formulated based on the epidemiological factors, feeding habits of hosts and prevalence data gathered from the GKNP. We presume that the formulated sylvatic cycles may be extrapolated to similar national parks and wildlife protected areas in sub-Saharan Africa where the same host and parasite species are known to occur. The anecdotal nature of some of the presented data confirms the need for more intense epidemiological surveillance in national parks and wildlife protected areas in the rest of sub-Saharan Africa to unravel the epidemiology of Trichinella infections in these unique and diverse protected landscapes.


Nature ◽  
2019 ◽  
Vol 572 (7768) ◽  
pp. 185-187 ◽  
Author(s):  
Richard W. Healy

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