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15 June 2018 Photo Supplied
Kovsies dominate SA students athletics team
Marné Mentz is one of six Kovsie female athletes in the South African student team to the CUCSA Games.

Students of the University of the Free State (UFS) are well represented on the South African student teams for this year’s CUCSA Games.

The competition that takes places biennially is staged from 18 to 22 June 2018 in Gaborone, Botswana.

The Confederation of University and Colleges Sports Associations (CUCSA) comprises of the Africa Zone VI countries with its members being Angola, Botswana, Lesotho, Malawi, Mozambique, Namibia, South Africa, Swaziland, Zambia and Zimbabwe, who will all be a part of the action. 

The South African men’s and women’s teams will compete in athletics, basketball, soccer, table tennis and volleyball.

After UFS female athletes won the women’s competition at the University Sport South Africa (USSA) championships in April, it came as no surprise that they had produced the most athletes, with six out of the 17, in the national women’s athletics team. 

The athletes chosen are: Ané Erasmus (hurdles), Lynique Beneke (long jump), Marné Mentz, Tsepang Sello, Lara Orrock and Tyler Beling (all middle distances). Emmarie Fouché from KovsieSport will be one of the four athletics coaches at the games. Tsebo Matsoso (sprints), Ruan Jonck and Pakiso Mthembu (both middle distances) will form part of the men’s team.

Kovsies’ Gauta Mokati will captain the men’s football team. Jeranimo Power had initially been selected to play, but had to withdraw due to injury. Thabo Lesibe is another UFS player selected for the men’s team and Godfrey Tenoff of KovsieSport will serve as the assistant coach. Noxolo Magudu will represent Kovsies in the women’s football team.

Although there aren’t any UFS players in the CUCSA basketball teams, the men’s team will be managed by Clement Kock, an assistant coach for the Kovsies basketball team.

News Archive

Researcher works on finding practical solutions to plant diseases for farmers
2017-10-03

 Description: Lisa read more Tags: Plant disease, Lisa Ann Rothman, Department of Plant Sciences, 3 Minute Thesis,  

Lisa Ann Rothman, researcher in the Department of
Plant Sciences.
Photo: Supplied

 


Plant disease epidemics have wreaked havoc for many centuries. Notable examples are the devastating Great Famine in Ireland and the Witches of Salem. 

Plant diseases form, due to a reaction to suitable environments, when a susceptible host and viable disease causal organism are present. If the interactions between these three factors are monitored over space and time the outcome has the ability to form a “simplification of reality”. This is more formally known as a plant disease model. Lisa Ann Rothman, a researcher in the Department of Plant Sciences at the University of the Free State (UFS) participated in the Three Minute Thesis competition in which she presented on Using mathematical models to predict plant disease. 

Forecast models provide promise fighting plant diseases
The aim of Lisa’s study is to identify weather and other driving variables that interact with critical host growth stages and pathogens to favour disease incidence and severity, for future development of risk forecasting models. Lisa used the disease, sorghum grain mold, caused by colonisation of Fusarium graminearum, and concomitant mycotoxin production to illustrate the modelling process. 

She said: “Internationally, forecasting models for many plant diseases exist and are applied commercially for important agricultural crops. The application of these models in a South African context has been limited, but provides promise for effective disease intervention technologies.

Contributing to the betterment of society
“My BSc Agric (Plant Pathology) undergraduate degree was completed in combination with Agrometeorology, agricultural weather science. I knew that I wanted to combine my love for weather science with my primary interest, Plant Pathology. 
“My research is built on the statement of Lord Kelvin: ‘To measure is to know and if you cannot measure it, you cannot improve it’. Measuring the changes in plant disease epidemics allows for these models to be developed and ultimately provide practical solutions for our farmers. Plant disease prediction models have the potential ability to reduce the risk for famers, allowing the timing of fungicide applications to be optimised, thus protecting their yields and ultimately their livelihoods. I am continuing my studies in agriculture in the hope of contributing to the betterment of society.” 

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