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Ms Akani Baloyi is from the Disaster Management Training and Education Centre for Africa (DiMTEC) at the University of the Free State. | Dr Olivia Kunguma is from the Disaster Management Training and Education Centre for Africa (DiMTEC) at the University of the Free State. | Dr Arishka Kalicharan, Department of Basic Medical Sciences, UFS

 


Opinion article by Ms Akani Baloyi; Dr Olivia Kunguma, Disaster Management Training and Education Centre for Africa (DiMTEC) at the University of the Free State; and Dr Arishka Kalicharan, Department of Basic Medical Sciences, Faculty of Health Sciences, University of the Free State.

Since the 1800s, many countries globally have had a long history of cholera outbreaks, with several countries experiencing periodic outbreaks and the disease remaining a public health concern. In Africa, countries like Senegal, Malawi, Zimbabwe, the Democratic Republic of Congo, Tanzania and many more have suffered greatly from this water-borne plague.

South Africa is among these countries – one of its major outbreaks, in 2008, killed more than 65 people, with more than 12 000 cases reported. The outbreak spread from Musina in Limpopo to the other provinces. The spread of cholera from Musina was attributed to a 2008/2009 outbreak in Zimbabwe, which affected more than 98 000 people; this was a case of disease contagion.

The 2008/2009 Zimbabwe outbreak was rated the country and the world’s largest ever recorded. Due to its political and economic crises, thousands of Zimbabweans migrated to South Africa. The movement of people from Zimbabwe helped spread the disease, as it is highly contagious. Because South Africa also had its own political and economic issues, cholera started spreading like wildfire. Similarly to Zimbabwe, South Africa is struggling with service delivery by local authorities due to poor governance and corruption.

In an effort to improve Zimbabwe’s health  system after that outbreak, the United Nations donated almost $5 million. Despite such a big cash injection, the country’s health system is still not of a standard that can help mitigate and prevent cholera. The country still finds itself losing people due to cholera outbreaks.

The challenge in Africa is that decision-makers suffer from ‘reactive syndrome’, i.e. they wait for an outbreak before intiating activities like surveillance, health promotion, encouraging of laboratory testing, assessing and maintaining boreholes/ municipal water plants, and providing temporary emergency water, sanitation and hygiene. Only when an outbreak is already under way do they remember the existence of emergency and response plans, and then start updating them.

A recent cholera outbreak in Hammanskraal, north of Tshwane in Gauteng, South Africa, had claimed 23 lives by 28 May after residents were diagnosed with diarrhoeal disease due to cholera. In the neighbouring Free State, two deaths had been reported by 9 June.

It has become common knowledge that the main source of cholera infection is poor sanitation, lack of clean water, and contaminated food. But it is important to also know that most people exposed to the cholera bacterium do not get sick. They are unaware they have been infected, unless they start displaying symptoms such as diarrhoea, vomiting, and muscle cramps. Excessive diarrhoea can lead to dehydration, making it difficult for the body to perform basic functions. If left untreated, diarrhoea can be fatal.

The root causes are exacerbated by poor investment in public health and an unsettled political environment, in particular governance of municipalities and neglect of water treatment plants. The prevalence of this preventable infectious disease demands immediate attention from policymakers, health organisations, and society in general. Addressing the root causes, boosting preventative measures, and ensuring access to clean water and adequate healthcare services to eradicate cholera in South Africa is crucial.

How can we mitigate and prevent the spread of cholera?

While we lobby for policymakers or people who hold political power to be called to account and advocate for large-scale investment in establishing and maintaining water and sanitation facilities and the strengthening of public health community engagement, we need to consider some methods the public can explore.

Most infected people will have few to mild symptoms, which can be successfully treated with an oral rehydration solution. This solution replenishes the body’s fluid levels and can treat mild dehydration caused by diarrhoea, vomiting, or other medical conditions. Oral rehydration solutions can be made at home with the following ingredients:

  • 1 litre of preboiled water (an effective way to disinfect the water)
  • 6 level teaspoons of sugar (improves the absorption of electrolytes and water)
  • ½ teaspoon of salt (promotes water absorption, since there is significant fluid loss due to diarrhoea)
  • 1 tablespoon (or a palatable amount) of white vinegar (contains antimicrobial properties for preventing and treating infections)

This solution should be consumed after every loose stool, or as often as possible. If a child has been infected with the disease, in addition to the oral solution, give the child 20 mg (over 6 months of age) or 10 mg (under 6 months of age) zinc per day (tablet or syrup).

We should also always adhere to cost-effective habits such as routinely washing our hands and consuming preboiled water.

There are also three World Health Organisation (WHO) pre-approved oral cholera vaccines, namely Dukoral, Shanchol, and Euvichol-Plus. They all require two doses for full protection. These vaccines are available at the nearest clinic or hospital, and are relatively cost-effective.

Cholera and several other public health crises should not exist in the modern economy we are living in. Africa has the resources needed, including several medical interventions. Africa must address its issue regarding political leadership, which is its biggest challenge. There is an urgent need for proactiveness among our political leaders and government authorities which should see them take the lead in continuous multi-sectoral collaboration. They should invest in preparedness programmes that include training health workers and surveillance. And lastly, there is an urgent need for an accountability system for all the funds donated and invested towards improving a country’s healthcare system.

News Archive

Inaugural lecture: Prof Robert Bragg, Dept. of Microbial, Biochemical and Food Biotechnology
2006-05-17



Attending the inaugural lecture were in front from the left Prof Robert Bragg (lecturer at the Department of Microbial, Biochemical and Food Biotechnology) and Frederick Fourie (Rector and Vice-Chancellor).  At the back from the left were Prof James du Preez (Departmental Chairperson:  Department of Microbial, Biochemical and Food Biotechnology) and Prof Herman van Schalkwyk (Dean: Faculty of Natural and Agricultural Sciences). Photo: Stephen Collett
 

A summary of an inaugural lecture delivered by Prof Robert Bragg at the University of the Free State:

CONTROL OF INFECTIOUS AVIAN DISEASES – LESSONS FOR MAN?

Prof Robert R Bragg
Department of Microbial, Biochemical and Food Biotechnology
University of the Free State

“Many of the lessons learnt in disease control in poultry will have application on human medicine,” said Prof Robert Bragg, lecturer at the University of the Free State’s (UFS) Department of Microbial, Biochemical and Food Biotechnology during his inaugural lecture.

Prof Bragg said the development of vaccines remains the main stay of disease control in humans as well as in avian species.  Disease control can not rely on vaccination alone and other disease-control options must be examined.  

“With the increasing problems of antibiotic resistance, the use of disinfection and bio security are becoming more important,” he said.

“Avian influenza (AI) is an example of a disease which can spread from birds to humans.  Hopefully this virus will not develop human to human transmission,” said Prof Bragg.

According to Prof Bragg, South Africa is not on the migration route of water birds, which are the main transmitters of AI.  “This makes South Africa one of the countries less likely to get the disease,” he said.

If the AI virus does develop human to human transmission, it could make the 1918 flu pandemic pale into insignificance.  During the 1918 flu pandemic, the virus had a mortality rate of only 3%, yet more than 50 million people died.

Although the AI virus has not developed human-to-human transmission, all human cases have been related to direct contact with infected birds. The mortality rate in humans who have contracted this virus is 67%.

“Apart from the obvious fears for the human population, this virus is a very serious poultry pathogen and can cause 100% mortality in poultry populations.  Poultry meat and egg production is the staple protein source in most countries around the world. The virus is currently devastating the poultry industry world-wide,” said Prof Bragg.

Prof Bragg’s research activities on avian diseases started off with the investigation of diseases in poultry.  “The average life cycle of a broiler chicken is 42 days.  After this short time, they are slaughtered.  As a result of the short generation time in poultry, one can observe changes in microbial populations as a result of the use of vaccines, antibiotics and disinfectants,” said Prof Bragg.   

“Much of my research effort has been directed towards the control of infectious coryza in layers, which is caused by the bacterium Avibacterium paragallinarum.  This disease is a type of sinusitis in the layer chickens and can cause a drop in egg product of up to 40%,” said Prof Bragg.

The vaccines used around the world in an attempt to control this disease are all inactivated vaccines. One of the most important points is the selection of the correct strains of the bacterium to use in the vaccine.

Prof Bragg established that in South Africa, there are four different serovars of the bacterium and one of these, the serovar C-3 strain, was believed to be unique to Southern Africa. He also recently discovered this serovar for the first time in Israel, thus indicating that this serovar might have a wider distribution than originally believed.

Vaccines used in this country did not contain this serovar.  Prof Bragg established that the long term use of vaccines not containing the local South African strain resulted in a shift in the population distribution of the pathogen.

Prof Bragg’s research activities also include disease control in parrots and pigeons.   “One of the main research projects in my group is on the disease in parrots caused by the circovirus Beak and Feather Disease virus. This virus causes serious problems in the parrot breeding industry in this country. This virus is also threatening the highly endangered and endemic Cape Parrot,” said Prof Bragg.

Prof Bragg’s research group is currently working on the development of a DNA vaccine which will assist in the control of the disease, not only in the parrot breeding industry, but also to help the highly endangered Cape Parrot in its battle for survival.

“Not all of our research efforts are directed towards infectious coryza or the Beak and Feather Disease virus.  One of my Masters students is currently investigating the cell receptors involved in the binding of Newcastle Disease virus to cancerous cells and normal cells of humans. This work will also eventually lead to a possible treatment of cancer in humans and will assist with the development of a recombinant vaccine for Newcastle disease virus,” said Prof Bragg.

We are also currently investigating an “unknown” virus which causes disease problems in poultry in the Western Cape,” said Prof Bragg.
 
“Although disinfection has been extensively used in the poultry industry, it has only been done at the pre-placement stage. In other words, disinfectants are used before the birds are placed into the house. Once the birds are placed, all use of disinfectants stops,” said Prof Bragg.

“Disinfection and bio security can be seen as the ‘Cinderella’ of disease control in poultry.  This is also true for human medicine. One just has to look at the high numbers of people who die from hospital-acquired infections to realise that disinfection is not a concept which is really clear in human health care,” said Prof Bragg.

Much research has been done in the control of diseases through vaccination and through the use of antibiotics. “These pillars of disease control are, however, starting to crumble and more effort is needed on disinfection and bio security,” said Prof Bragg.

Prof Bragg has been working in close co-operation with a chemical manufacturing company in Stellenbosch to develop a unique disinfectant which his highly effective yet not toxic to the birds.

As a result of this unique product, he has developed the continual disinfection program for use in poultry. In this program the disinfectant is used throughout the production cycle of the birds. It is also used to ensure that there is excellent pre-placement disinfection.

“The program is extensively used for the control of infectious diseases in the parrot-breeding industry in South Africa and the product has been registered in 15 countries around the world with registration in the USA in the final process,” said Prof Bragg.

“Although the problem of plasmid mediated resistance to disinfectants is starting to rear its ugly head, this has allowed for the opening of a new research field which my group will hopefully exploit in the near future,” he said.

 

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