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02 June 2023 | Story Dr Yolandi Schoeman | Photo Supplied

In response to the recent cholera outbreaks in South Africa, the University of the Free State is at the forefront of developing a ground-breaking solution that aims to revolutionise low-cost domestic wastewater treatment and transform the country’s water infrastructure in rural areas. Led by the team at the UFS Centre for Environmental Management (CEM) in collaboration with the Council for Scientific and Industrial Research (CSIR), this innovative approach is centred around ecological engineering and offers a promising solution to the pressing water security concerns and increased pollution risks facing the nation.

South Africa has faced significant challenges in integrating water resource management and environmental preservation, leading to compromised water security and escalating pollution risks. Traditional wastewater treatment methods have struggled to cope with the deterioration of infrastructure, institutional capacity limitations, and rising hydraulic loads, resulting in the discharge of pollutants into rivers. This has raised concerns about the environmental and public health risks of heavy metals, emerging contaminants, and ‘forever chemicals’ (chemicals have an exceptionally long lifespan and do not naturally break down over time).

Natural-based solutions to address issues

Prof Paul Oberholster, Director of the CEM, says to address these critical issues, the centre has introduced a range of natural-based solutions, including phycoremediation, phytoremediation, and microbial bioremediation. Phycoremediation, a cutting-edge biological clean-up technology, uses indigenous micro or macro algae to remove contaminants from wastewater effluents.

“Phycoremediation effectively transforms pollutants such as carbon, nitrogen, phosphorus, sulfates, and salts into benign substances by harnessing nutrient enrichment. This process offers multiple advantages, including tackling various pollutants simultaneously, creating commercially beneficial compounds, sequestering CO2, and producing biohydrogen. Furthermore, phycoremediation is a cost-effective and resilient process that can accommodate varying substance quantities and consistencies.

“Microbial bioremediation, another pioneering technique, utilises microorganisms to naturally break down and degrade soil, water, and air pollutants. By leveraging the natural metabolic processes of microorganisms, microbial bioremediation reduces harmful substances to non-toxic or less toxic forms,” Prof Oberholster says. “This environmentally friendly method has shown success in cleaning up contaminated sites, including industrial areas, agricultural fields, disaster-stricken areas, and wastewater treatment plants.” 

This phycoremediation technology for domestic wastewater, developed in collaboration with the CSIR and the African Development Bank, is suitable for small to medium rural plants. It does not use electricity or any dangerous chemicals, and can be used on the assisting infrastructure. The technology has already been rolled out in the Western Cape, Limpopo, and Malawi.

According to Prof Oberholster, implementing these ecological engineering solutions provides transformative opportunities for small to medium-sized wastewater treatment works in South Africa. By incorporating these technologies, local communities can enhance treatment capacity, create employment opportunities, and recycle materials, while benefiting from cost-effective and environmentally conscious solutions. Upgrading existing treatment works becomes feasible, reducing the need for significant infrastructure investments.

Dr Yolandi Schoeman, a postdoctoral student in CEM, says cholera, a severe diarrheal disease caused by the bacterium Vibrio cholerae, has been a significant concern in South Africa. Understanding the causes, warning signs, and preventive measures is crucial in combating this deadly disease. Cholera outbreaks often occur in areas with poor sanitation, inadequate access to clean water, and overcrowding. Contaminated water sources, such as rivers or wells, become breeding grounds for the bacterium, which is then transmitted through contaminated food and water. Early identification of warning signs, including severe diarrhoea, vomiting, and dehydration, is essential for timely intervention.

Causes of cholera

Contaminated water: Cholera outbreaks often occur in areas with poor sanitation and inadequate access to clean water. The bacterium Vibrio cholerae thrives in contaminated water sources such as rivers, lakes, or wells.

Contaminated food: Cholera can also be transmitted through consuming contaminated food, especially raw or undercooked seafood, or produce irrigated with contaminated water.

Poor sanitation: Improper waste disposal, lack of proper sewage systems, and unhygienic conditions contribute to the spread of cholera. When human waste containing the cholera bacterium contaminates water sources or food, the disease can spread rapidly.

Warning signs of cholera

Diarrhoea: Cholera is characterised by profuse watery diarrhoea. The stools are often described as "rice water" due to their appearance.

Vomiting: Along with diarrhoea, cholera may cause vomiting, leading to rapid dehydration.

Dehydration: Cholera can cause severe dehydration due to losing fluids and electrolytes. Signs of dehydration include dry mouth, excessive thirst, decreased urine output, rapid heart rate, and low blood pressure.

Preventive measures to combat cholera

Access to clean water: Ensuring a clean water supply is crucial in preventing cholera. Communities should have access to safe drinking water sources, and measures should be taken to prevent contamination of water sources.

Hygiene practices: Promoting good hygiene practices, such as regular handwashing with soap and clean water, can help prevent transmission of cholera. Handwashing should be done before handling food or eating, and after using the toilet.

Sanitation improvements: Proper waste disposal systems, improved sewage systems, and sanitation facilities are essential in preventing the contamination of water sources and the spread of cholera.

Health education: Conducting health education campaigns to raise awareness about cholera symptoms, transmission routes, and preventive measures is crucial. Communities at risk should be educated on safe water practices, proper hygiene, and the importance of seeking medical help if symptoms occur.

Surveillance and rapid response: Establishing robust surveillance systems to detect cholera cases early and respond rapidly is vital. This includes improving laboratory diagnostics, training healthcare workers, and enhancing communication between health authorities and communities.

Vaccination: Vaccination against cholera can be an effective preventive measure, especially in high-risk areas or during outbreaks. Oral cholera vaccines can provide protection against the disease. It is important to note that vaccines alone may not be sufficient to control cholera. Improving water and sanitation infrastructure, disaster anticipation and response, promoting good hygiene practices, and implementing appropriate public health measures are also crucial in preventing and controlling cholera outbreaks.

“To prevent cholera outbreaks, a multi-faceted approach is required,” Dr Schoeman says. “Individuals and communities must prioritise access to clean water by ensuring a clean water supply and promoting hygiene practices such as handwashing with soap. Sanitation improvements, including proper waste disposal and improved sewage systems, are essential in preventing the contamination of water sources.” 

She says health education campaigns should raise awareness about cholera symptoms, transmission routes, and preventive measures, targeting communities at risk. “Establishing robust surveillance systems and emergency response teams, improving laboratory diagnostics, and enhancing communication between health authorities and communities is crucial for rapid response to cholera cases.” 

In addition to these preventive measures, nature-based systems offer innovative approaches to cholera prevention by harnessing the power of natural ecosystems. Conserving and restoring wetlands, which act as natural filters, can help purify water and reduce the presence of pathogens like Vibrio cholerae. The integration of ecological engineering solutions, such as phycoremediation and microbial bioremediation, into wastewater treatment processes not only addresses pollution concerns but also contributes to preventing the contamination of water sources and reducing the risk of cholera outbreaks.

The CEM's pioneering work aligns seamlessly with South Africa's commitment to sustainable development and the United Nations' Sustainable Development Goal 6, which aims to ensure universal access to clean water and sanitation. By integrating ecological engineering solutions like phycoremediation into public sector service delivery efforts, the CEM is driving positive change, improving quality of life for South African communities, and protecting precious water resources.

“The challenges we face in wastewater management, water security, and preventing cholera outbreaks require innovative solutions that prioritise ecological engineering and sustainability. Through our research and collaboration with local health authorities, we aim to develop preventive measures to combat cholera outbreaks and create a resilient water infrastructure for South Africa,” Prof Oberholster says.

The CEM's work has already demonstrated its efficacy and potential by piloting these advanced treatment technologies in the Southern African Development Community (SADC) countries. “Further research and capacity-building efforts within South Africa will enable the widespread implementation of these solutions and address the unique challenges small and medium municipalities face,” Prof Oberholster adds. 

“The University of the Free State is committed to driving positive change, contributing to sustainable development, and ensuring universal access to clean water and sanitation in South Africa. By combining academic expertise, innovative technologies, and collaborative partnerships, the university aims to pave the way for a future where water resources are protected, cholera outbreaks are prevented, and communities thrive.”

News Archive

UV vestig hom afgelope eeu as leier op verskeie terreine
2004-05-11

Michelle O'Connor - Volksblad - 11 Mei 2004

Ondank terugslae nou 'n 'gesonde volwassene'

HOEWEL die Universiteit van die Vrystaat (UV) vanjaar sy eeufees vier en met 23 000 studente die grootste universiteit in die sentrale deel van die land is, was dié instelling se geboorte glad nie maklik nie. MICHELÉ O'CONNOR het met prof. Frederick Fourie, rektor, oor die nederige begin van dié instelling gesels.

DIE behoefte aan 'n eie universiteit in die Vrystaat het reeds in 1855, kort ná die stigting van Grey-kollege, kop uitgesteek.

Grey se manne het hulleself teen 1890 begin voorberei om die intermediêre B.A.-eksamens af te lê. Dié eksamen het hulle toegang gegee tot die tweede jaar van 'n B.A.-graad aan die destydse University of the Cape Good Hope, nou die Universiteit van Kaapstad.

"Presidente F.W. Reitz en M.T. Steyn het destyds albei die stigting van 'n universiteit hier bepleit. Die grootste rede was sodat die seuns van die Vrystaat nie weggestuur word nie.

"Dié twee se droom is op 28 Januarie 1904 bewaarheid toe ses studente hulle onder dr. Johannes Bril, as hoof/rektor van Grey-kollege, vir die graad B.A. ingeskryf het. Dié graad is aanvanklik deur die Kaapse universiteit toegeken.

"Net die klassieke tale soos Latyns en Grieks, die moderne tale, Nederlands, Duits en Engels, filosofie, geskiedenis, wiskunde, fisika, chemie, plant- en dierkunde is aanvanklik aangebied.

"Die UV se geboue het gegroei van 'n klein tweevertrek-geboutjie wat nou naby Huis Abraham Fischer staan, en verblyf in die Grey-kollege se seunskoshuis," sê Fourie.

Volgens hom is die universiteit se eerste raad en senaat tussen 1904 en 1920 saamgestel. Die eerste dosente is aangestel en die eerste geboue opgerig. "Dié tyd was egter baie moeilik.

"Die instelling het teen 1920 net 100 studente gehad en was geldelik in die knyp. Daar was geen vaste rektor nie en geen vooruitgang nie. Vrystaatse kinders is steeds na ander universiteite gestuur.

"Ds. J.D. Kestell, rektor van 1920 tot 1927, het egter dié instelling finaal gevestig.

"Hy het self studente van oor die hele Vrystaat gewerf en geld by onder meer kerke en banke ingesamel. Kestell het selfs Engelse ouers oortuig om hul kinders na die Greyuniversiteitskollege (GUK) te stuur en teen 1927 het dié instelling met 400 studente gespog.

"In die tydperk tussen 1927 en 1950 het die GUK weer verskeie terugslae beleef.

"In dié tyd was dit onder meer die Groot Depressie en die Tweede Wêreldoorlog. Die armblanke-vraagstuk het regstreeks op studente en dosente ingewerk en die politieke onderstrominge van dié tyd het die instelling ontwrig.

"Die GUK het egter oorleef en die Universiteitskollege van die Oranje-Vrystaat (UKOVS) is in 1935 gebore," sê Fourie.

Hy sê in dié tyd is verskeie fakulteite gevestig en teen 1950 het die UKOVS met 1 000 studente gespog.

Teen 1950 het dit 'n onafhanklike universiteit geword en die naam is verander na die Universiteit van die OranjeVrystaat (UOVS).

Dié tydperk is gekenmerk deur Afrikaner- en blanke selfvertroue en heerskappy. Studentegetalle het tot 7 000 in 1975 gegroei en heelwat vooruitgang het in dié tyd plaasgevind.

"Tussen 1976 en 1989 sukkel dieuniversiteit weer met onder meer ekonomiese krisisse, die land se politieke onstabiliteit en word die UOVS geï soleer.

"Een ligpunt in dié tyd is die toelating van die eerste swart studente, die nuwe Sasol-biblioteek en die fakulteit teologie wat die lig sien.

"Tussen 1990 en vanjaar het die UOVS verskeie op- en afdraandes beleef. Die universiteit doen nie net die eerste stappe van transformasie nie, maar begin ook aan 'n beleid van multikulturaliteit werk.

"Die UOVS se naam verander in 1996 na die Universiteit van die Vrystaat/University of the Free State en in 2001 word die Sotho-vertaling bygevoeg.

"Geldelike druk en probleme neem drasties toe en personeel word gerasionaliseer.

"Teen 2000 begin die UV met 'n draaistrategie en studentegetalle neem tot meer as 23 000 toe," sê Fourie.

Hy sê die UV het die afgelope eeu nie net verskeie terugslae oorleef nie, maar homself ook op verskeie gebiede as 'n leier gevestig.

Die universiteit behaal sy eie geldelike mikpunte, neem 'n nuwe taalbeleid van veeltaligheid aan en herbelê in personeel.

Die instelling inkorporeer die kampusse van die Vista- en Qwaqwa-universiteit en groei internasionaal.

Die UV vestig ook fondamente van 'n institusionele kultuur van verdraagsaamheid, geregtigheid en diversiteit.

"Die baba het in die afgelope eeu 'n gesonde volwassene geword."

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