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07 June 2022 | Story Prof Felicity Burt, Prof Dominique Goedhals and Dr Charles Kotzé
Prof Felicity Burt, Dr Charles Kotze and Prof Dominique Goedhals
From the left; Prof Felicity Burt, Dr Charles Kotzé and Prof Dominique Goedhals.

Opinion article by Prof Felicity Burt , Prof Dominique Goedhals , Division of Virology at the University of the Free State (UFS), and Dr Charles Kotzé, National Health Laboratory Service (NHLS), Universitas Academic Hospital.
The recent COVID-19 pandemic has certainly highlighted the importance of vigilance and awareness of emerging diseases with public health implications. The monkeypox virus has recently made headlines, after the detection of more than 200 cases in geographically distinct regions. On 13 May, the World Health Organisation (WHO) was notified of human cases of the monkeypox disease occurring in the United Kingdom, outside of the known endemic region.

Exported cases have been detected previously and usually occur sporadically. In contrast, within the past two weeks, human cases have been confirmed in at least 21 countries, including various European countries, the United Kingdom, Israel, the Canary Islands, Canada and the United States, and Australia. The initial case appears to have been a traveller from Nigeria. Sequence data may help to determine if there have been multiple exportations from West Africa. 

What is monkeypox and what do we know

What is monkeypox and what do we know about the aetiologic agent? Monkeypox is the name given to a disease caused by the monkeypox virus, a zoonotic pathogen endemic in Central and West Africa and responsible for cases of the disease in the endemic region, with occasional exported cases in travellers. The virus was initially identified in 1958 in monkeys housed at a research laboratory in Denmark, and the name monkeypox was derived from the appearance of lesions and the occurrence in monkeys. The first human case was identified 52 years ago in the Democratic Republic of the Congo. Since then, human monkeypox cases have been reported in several other Central and West African countries: Cameroon, the Central African Republic, Ivory Coast, the Democratic Republic of the Congo, Gabon, Liberia, Nigeria, Republic of the Congo, and Sierra Leone. The first monkeypox outbreak outside of Africa was in the United States of America in 2003 and was linked to contact with infected prairie dogs imported as exotic pets. Since then, there have been various small, contained outbreaks outside of Africa that have mostly been linked to the importation of the virus from African countries. 

The virus is related to the smallpox virus, which was eradicated in the 1970s by vaccination. Although belonging to the same family of viruses as the smallpox virus, the disease caused by monkeypox is less severe, with fewer fatalities.   Unlike smallpox, which carries a case fatality rate of 30%, the case fatality rate in monkeypox is low (estimated at 3-6% in more recent outbreaks).  There are two clades of the monkeypox virus: the West African clade and the Congo Basin (Central African) clade. In this outbreak, all of the cases have been linked to the West African clade of the monkeypox virus.

Transmission occurs from animal to human, and from human to human, through close contact with lesions, body fluids, and contaminated materials. The virus enters the body through the respiratory tract, mucous membranes, or broken skin.  The disease begins with non-specific symptoms such as fever, headache, muscle pains, and swollen lymph nodes. This is followed by the typical skin rash, which progresses through stages known as macules, then papules, vesicles, pustules, and lastly crusts or scabs. Lesions can also occur on mucous membranes such as the mouth, eye, and genital area.  The infectious period lasts through all stages of the rash, until all the scabs have fallen off. There are a number of other infectious and non-infectious conditions that need to be differentiated; therefore, individuals presenting with these symptoms will need to consult their doctor to determine whether a diagnosis of monkeypox needs to be considered. In the current outbreak, a number of the cases in the United Kingdom and Europe have been detected in men who have sex with men, during visits to sexual health clinics. This pattern of spread has not previously been described and it remains to be determined whether the spread has occurred through close person-to-person contact or through sexual transmission.  

Vaccination against smallpox virus offers 85% protection against monkeypox

To date, no cases have been detected in South Africa, but the recent global spread of the severe acute respiratory syndrome coronavirus 2 (SARS_CoV-2) highlights the ability of pathogens to spread. The National Institute for Communicable Diseases (NICD) in Johannesburg offers a specialised diagnostic service for the monkeypox virus, using molecular assays and electron microscopy. 

Vaccination against the smallpox virus is believed to offer 85% protection against monkeypox, hence older persons should have some protection; however, vaccination against smallpox was phased out globally following the eradication of smallpox during the 1970s. A more recently developed vaccine against monkeypox is available but has very limited availability.  No specific antivirals are available with proven efficacy in clinical trials.

While the monkeypox virus can be spread via the respiratory route, this occurs in the form of large droplets, rather than aerosol transmission, which is seen with SARS-CoV-2 (causing COVID-19). Aerosols are smaller particles that can remain suspended in the air for prolonged periods, facilitating the transmission of SARS-CoV-2. Monkeypox is therefore less contagious than COVID-19, as close contact is required for longer periods.  For this reason, many experts around the world predict that this outbreak will not spread like SARS-CoV-2. The importation of monkeypox to South Africa is a definite possibility, because South Africa is a significant economic and travel hub for Africa. Previous outbreaks of monkeypox in non-endemic areas have been interrupted by contact tracing and isolation, which was very effective in controlling further spread.  Heightened vigilance is therefore needed for the early detection of such cases.

News Archive

Studies to reveal correlation between terrain, energy use, and giraffe locomotion
2016-11-18



More than half of giraffes in captivity in Europe are afflicted by lameness. This high prevalence represents an important welfare issue, similar to other large zoo animals.

According to Dr Chris Basu, a veterinarian at the Royal Veterinary College in the UK, giraffes in captivity are often afflicted by overgrown hooves, laminitis and joint problems. Diagnosis and treatment is limited by our understanding of anatomy and function, more specifically the locomotion of these animals. Although the giraffe is such a well-known and iconic animal, relatively little has been studied about their locomotor behaviour.

Dr Basu recently visited South Africa to do fieldwork on the locomotion of giraffes as part of his PhD studies under the mentorship of world-renowned Professor of Evolutionary Biomechanics, Prof John Hutchinson. This project is a joint venture between Dr Basu and Dr Francois Deacon, researcher in the Department of Animal, Wildlife, and Grassland Sciences at the UFS. Dr Deacon is a specialist in giraffe habitat-related research. 

Together Prof Hutchinson and Drs Deacon and Basu form a research group, working on studies about giraffe locomotion.

Wild giraffe population decrease by 40% in past decade

“Locomotion is one of the most common animal behaviours and comes with a significant daily energetic cost. Studying locomotion of wild animals aids us in making estimates of this energetic cost. Such estimates are useful in understanding how giraffes fit into ecosystems. Future conservation efforts will be influenced by knowledge of the energy demands in giraffes.

“Understanding aspects of giraffe locomotion also helps us to understand the relationships between anatomy, function and evolution. This is relevant to our basic understanding of the natural world, as well as to conservation and veterinary issues,” said Dr Deacon.

Locomotion study brings strategy for specialist foot care

On face value it seems as if foot disease pathologies are more common in zoo giraffes than in wild giraffes. “However, we need a good sample of data from both populations to prove this assumption,” said Dr Basu. 

This phenomenon is not well understood at the moment, but it’s thought that diet, substrate (e.g. concrete, straw, sand and grass) and genetics play a part in foot disease in giraffes. “Understanding how the feet are mechanically loaded during common activities (standing, walking, running) gives our research group ideas of where the highest strains occur, and later how these can be reduced through corrective foot trimming,” said Dr Basu.

Through the studies on giraffe locomotion, the research group plans to devise strategies for corrective foot trimming. At the moment, foot trimming is done with the best evidence available, which is extrapolation from closely related animals such as cattle. “But we know that giraffes’ specialist anatomy will likely demand specialist foot care,” Dr Basu said.

Studying giraffes in smaller versus larger spaces

The research group has begun to study the biomechanics of giraffe walking by looking at the kinematics (the movement) and the kinetics (the forces involved in movement) during walking strides. For this he studied adult giraffes at three zoological parks in the UK. 

However, due to the close proximity of fencing and buildings, it is not practical to study fast speeds in a zoo setting. 

A setting such as the Willem Pretorius Nature Reserve, near Ventersburg in the Free State, Kwaggafontein Nature Reserve, near Colesberg in the Karoo, and the Woodland Hills Wildlife Estate in Bloemfontein are all ideal for studying crucial aspects such as “faster than walking” speeds and gaits to measure key parameters (such as stride length, step frequency and stride duration). These studies are important to understand how giraffe form and function are adapted to their full range of locomotor behaviours. It also helps to comprehend the limits on athletic capacity in giraffes and how these compare to other animals. 

Drones open up unique opportunities for studying giraffes

The increasing availability of unmanned aerial vehicles (UAVs)/drones opens up unique opportunities for studying locomotion in animals like giraffes. Cameras mounted onto remotely controlled UAVs are a straightforward way to obtain high-quality video footage of giraffes while they run at different speeds.

“Using two UAVs, we have collected high definition slow motion video footage of galloping giraffes from three locations in the Free State. We have also collected detailed information about the terrain that the giraffes walked and ran across. From this we have created 3D maps of the ground. These maps will be used to examine the preferred terrain types for giraffes, and to see how different terrains affect their locomotion and energy use,” said Dr Deacon.

“The raw data (videos) will be digitised to obtain the stride parameters and limb angles of the animals. Later this will be combined with anatomical data and an estimation of limb forces to estimate the power output of the limbs and how that changes between different terrains,” said Dr Basu.


Related articles:

23 August 2016: Research on locomotion of giraffes valuable for conservation of this species
9 March 2016:Giraffe research broadcast on National Geographic channel
18 Sept 2015 Researchers reach out across continents in giraffe research
29 May 2015: Researchers international leaders in satellite tracking in the wildlife environment

 

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