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11 November 2022 | Story Edzani Nephalela and Dr Nomalungelo Ngubane | Photo iStock
Language
The UFS and UKZN have formalised an agreement on a Language Collaboration Memorandum of Understanding (MOU) to advance the development of the Sesotho and IsiZulu as academic languages.

The University of the Free State (UFS) has forged an exciting new partnership with the University of KwaZulu-Natal (UKZN) to promote the two provinces’ most widely spoken languages, Sesotho and IsiZulu.  

This historic collaboration will see these institutions employing their skills, expertise, and resources to advance the development of the Sesotho and IsiZulu as academic languages through the development of terminology for various disciplines and research collaborations among other activities. 

The UFS formalised the agreement by signing a Language Collaboration Memorandum of Understanding (MOU) with UKZN. The MOU process, facilitated by Dr Nomalungelo Ngubane, Director of the UFS Academy for Multilingualism, and Nikile Ntsababa, UFS Registrar, was sealed by Dr Engela Van Staden, UFS Vice-Rector: Academic. 

The objectives of the collaboration are to: 

• allow the UFS open access to all the UKZN isiZulu materials and UKZN open access to all UFS Sesotho language terminology, corpus materials, terminology banks, and applications for various disciplines; 
• develop the Sesotho terminology for various disciplines;
• assist in identifying and closing any gaps in the UFS’s development of isiZulu terminology and in the UKZN’s development of isiZulu, and further develop the relevant language terminology of various disciplines in order to fill any existing gaps;
• share expertise through hosting webinars, seminars, colloquia, and workshops on Sesotho and isiZulu terminology development;
• explore research opportunities regarding the development of Sesotho and isiZulu terminology for various disciplines; and 
• share expertise and resources in all human language technology development initiatives.

“The UKZN has championed the intellectualisation of IsiZulu over the years. We do not want to reinvent the wheel,” Dr Ngubane said. “Our focus now is on the acceleration of the development of Sesotho. Our vision and mission is to be the hub for the advancement of Sesotho at regional, national, and international levels. Collaboration with UKZN is instrumental in achieving this mandate.”

The Academy for Multilingualism said it considers this collaboration historic and groundbreaking because resources will now be invested in the development of Sesotho.

News Archive

Research eradicates bacteria from avocado facility
2017-01-17

 Description: Listeria monocytogenes Tags: Listeria monocytogenes

Listeria monocytogenes as seen under an electron
microscope. The photo was taken with a transmission
electron microscope at the microscopy unit of the UFS.
Bacteriophages (lollipop-like structures) can be seen
next to the bacterial cells.
Photo: Supplied

“The aim of my project was to identify and characterise the contamination problem in an avocado-processing facility and then to find a solution,” said Dr Amy Strydom, postdoctoral fellow in the Department of Microbial Biochemical and Food Biotechnology at the University of the Free State (UFS).

Her PhD, “Control of Listeria monocytogenes in an Avocado-processing Facility”, aimed to identify and characterise the contamination problem in a facility where avocados were processed into guacamole. Dr Strydom completed her MSc in food science in 2009 at Stellenbosch University and this was the catalyst for her starting her PhD in microbiology in 2012 at the UFS. The research was conducted over a period of four years and she graduated in 2016. The research project was funded by the National Research Foundation.

The opportunity to work closely with the food industry further motivated Dr Strydom to conduct her research. The research has made a significant contribution to a food producer (avocado facility) that will sell products that are not contaminated with any pathogens. The public will then buy food that is safe for human consumption.


What is Listeria monocytogenes?

Listeria monocytogenes is a food-borne pathogenic bacterium. When a food product is contaminated with L. monocytogenes, it will not be altered in ways that are obvious to the consumer, such as taste and smell. When ingested, however, it can cause a wide range of illnesses in people with impaired immune systems. “Risk groups include newborn babies, the elderly, and people suffering from diseases that weaken their immune systems,” Dr Strydom said. The processing adjustments based on her findings resulted in decreased numbers of Listeria in the facility.

The bacteria can also survive and grow at refrigeration temperatures, making them dangerous food pathogens, organisms which can cause illnesses [in humans]. Dr Strydom worked closely with the facility and developed an in-house monitoring system by means of which the facility could test their products and the processing environment. She also evaluated bacteriophages as a biological control agent in the processing facility. Bacteriophages are viruses that can only infect specific strains of bacteria. Despite bacteriophage products specifically intended for the use of controlling L. monocytogenes being commercially available in the food industry, Dr Strydom found that only 26% of the L. monocytogenes population in the facility was destroyed by the ListexP100TM product. “I concluded that the genetic diversity of the bacteria in the facility was too high and that the bacteriophages could not be used as a control measure. However, there is much we do not understand about bacteriophages, and with a few adjustments, we might be able to use them in the food industry.”

Microbiological and molecular characterisation of L. monocytogenes

The bacteria were isolated and purified using basic microbiological culturing. Characterisation was done based on specific genes present in the bacterial genome. “I amplified these genes with polymerase chain reaction (PCR), using various primers targeting these specific genes,” Dr Strydom said. Some amplification results were analysed with a subsequent restriction digestion where the genes were cut in specific areas with enzymes to create fragments. The lengths of these fragments can be used to differentiate between strains. “I also compared the whole genomes of some of the bacterial strains.” The bacteriophages were then isolated from waste water samples at the facility using the isolated bacterial strains. “However, I was not able to isolate a bacteriophage that could infect the bacteria in the facility.

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