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UFS celebrates excellence through its research hubs
The university considers its research chairs and the possibility of future chairs as an integral and strategic initiative to increase its national and international standing through excellent academic and research leadership.

The University of the Free State (UFS) is proud of its research leaders. As of 2018 the UFS has 156 NRF-rated researchers and five Sarchi Research Chairs. These chairs are designed to attract and retain excellence in research and innovation at South African public universities.

Getting the better of vector borne and zoonotic viruses

Prof Felicity Burt leads the Vector Borne and Zoonotic Virus Research Group in the Department of Medical Microbiology and Virology at the UFS. She was awarded a Research Chair to, among others, investigate medically significant vector-borne and zoonotic viruses currently circulating - mainly viruses transmitted by mosquitos and ticks, and viruses transmitted from animals to humans. 

“Years ago, no one knew what Ebola was. One outbreak later, backed by many media reports, and it is almost a household name. The same goes for the recent Zika virus outbreak in South America,” she explains the public’s interest and fears. To prevent the spread of vector-borne viruses to new areas, surveillance and awareness is important. Here in Bloemfontein, Prof Burt and her team are establishing surveillance programmes.

Why research on fungal infections?

“Many diseases no longer pose a threat to humans and life expectancy is prolonged. However, this has also caused an increase in various opportunistic infections, and most of all, fungal infections,” says Prof Carlien Pohl-Albertyn, who is heading the Research Chair for Pathogenic Yeasts in the Department of Microbial, Biochemical and Food Biotechnology. And the rise in resistance to antifungal treatments requires research into pathobiology, including new drug and treatment options. 

Activities of the Research Chair in Pathogenic Yeasts builds on existing research strengths and will contribute towards understanding pathobiology of medically significant pathogenic yeasts belonging to the genera Candida and Cryptococcus. 

Understanding higher education for more equality and justice

Prof Melanie Walker, from the Centre for Research on Higher Education and Development (CRHED) does research on higher education, inequalities and social justice, and how, or if, universities foster the human capabilities and aspirations of students. Does higher education make a difference to the lives of students, their families and communities? 

Prof Walker says the Research Chair on Higher Education and Human Development looks at issues of access, participation and transitions into work, as well as gender, race and social class. They use both quantitative and qualitative methods and includes a strand of participatory research projects with students. Ultimately, the research must contribute to debates, policy and practices in higher education, and a scholarly knowledge base.

Reduced emissions make for a better world

Prof Hendrik Swart chairs the research project that looks into low-energy lighting, using phosphor materials for light emitting diodes (LEDs). The Research Chair on Solid State Luminescent and Advanced Materials is situated at the Department of Physics

The research mainly focuses on better light emission of phosphor powers in LEDs.  According to Prof Swart, the long-term benefit of the research will result in more environmentally friendly devices which use less energy, are brighter and give a wider viewing field. Over the next five years they will develop and produce devices that emit better light using the substances already developed. “We need to make small devices to see if they are better than those we already have,” he says. 

Solutions to food insecurity
 

The Department of Plant Sciences’s research project dives into disease resistance and quality in field crops. Heading this Research Chair is Prof Maryke Labuschagne who focuses on crop quality breeding and disease resistance in field crops. 

Her, and her students’ research focuses on the genetic improvement of food security crops in Africa, including such staples as maize and cassava. “These crops are genetically improved for yield, drought tolerance, disease, and insect resistance, as well nutritional value,” she says. Her disease resistance research will focus on crop protein quantity and quality as well as iron, zinc, and beta-carotene biofortification of staple crops such as wheat, maize and cassava. The disease resistance-breeding project will be a continuation of the internationally acclaimed wheat rust research. 

The university considers the research chairs and the possibility of future chairs as an integral and strategic initiative to increase its national and international standing through excellent academic and research leadership. 

Microbiology from University of the Free State on Vimeo.

News Archive

What do diamonds, chocolates, bugs and almost 30 Nobel Prizes have in common? Crystallography
2014-10-15

 

Some of the keynote speakers and chairpersons at the third world summit in the International Year of Crystallography (in Africa) were, from the left, front: Profs Abdelmalek Thalal (Morocco), Prosper Kanyankogote (University of Kinshasa, Democratic Republic of the Congo); Habib Bougzala (Tunisia), Santiago Garcia-Granda (IUCr, University Oviedo, Spain), Michele Zema (IYCr 2014, Italy/UK) and Dr Jean-Paul Ngome-Abiaga (UNESCO, Paris, France); back: Dr Thomas Auf der Heyde (Acting Director-general, South African Department of Science and Technology); Dr Petrie Steynberg (SASOL) and Prof André Roodt (UFS, host).

Photo: Marija Zbacnik
The third world summit in the International Year of Crystallography (in Africa) was hosted by Prof André Roodt, Head of the Department of Chemistry and President of the European Crystallographic Association,  at the University of the Free State in Bloemfontein.

A declaration with and appeal to support crystallography and science across Africa, was signed.

When one mentions 'Crystallography', or more simply 'crystals', what comes to mind? Diamonds? Perhaps jewellery in general? When thinking of crystals and Crystallography, you will need to think much bigger. And further – even to Mars and back.

Crystallography refers to the branch of science that is concerned with structure and properties of crystals. The obvious examples would include cut diamonds, gemstones such as amethysts, and ‘simple’ crystals such as selenite and quartz.

But have you thought about the irritating brown scales at the bottom of your kettle? The sand in your shoes? The salt over your lamb chops or the sugar in your coffee? All crystals. From egg shells to glucose, from bugs and insecticides to additives in food – even the compounds in chocolate – all fall under the close scrutiny of Crystallography.

The breakthroughs this field of science has produced have led to almost 30 Nobel Prizes over the years.

Determining the structure of DNA by crystallography was arguably one of the most significant scientific events of the 20th century. Different diseases have been cured or slowed by medicines obtained based on crystallographic studies. These include certain cancers, HIV/Aids, Tuberculosis and Malaria. Biological Crystallography enables the development of anti-viral drugs and vaccines.

This field of science influences our daily lives in virtually immeasurable ways. Here are but a few areas of study and development Crystallography contributes to:

•    LCD displays;
•    cellular smartphones;
•    insects and insecticides;
•    additives and products in foods;
•    improved effectiveness and security of credit cards;
•    new materials to preserve energy;
•    better gasoline with less by-products;
•    identify colour pigments used in paintings from the old masters, indicating if it’s an original or an imitation; and
•    beauty products such as nail polish, sun-block, mascara and eye shadow.

Crystallography is also currently used by the Curiosity Rover to analyse the substances and minerals on Mars.

Crystals and Crystallography form an integrated part of our daily lives – from bones and teeth to medicines and viruses, from chocolates to the blades in airplane turbines. Even down to the humble snowflake.


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