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31 March 2020 | Story Leonie Bolleurs | Photo Gerhard de Jager
Prof Linda Basson recently returned from a three-month research expedition in Antarctica. Here she is, relaxing on the ice with the ever-inquisitive Adelie penguins having a gander at these strangers in their snowy world.
Prof Linda Basson recently returned from a three-month research expedition in Antarctica. Here she is, relaxing on the ice with the ever-inquisitive Adelie penguins having a gander at these strangers in their snowy world.

Very little is known about the parasites of Antarctica, which is a highly productive part of the oceans. These small organisms can be used very successfully to determine the health of this fragile ecosystem.

“Our research data can make significant contributions to the biodiversity of parasites, for a start. The data can also be very valuable to indicate the overall health of this large ecosystem – an ecosystem that drives many of the life-giving processes on our planet.” This is the belief of Prof Linda Basson from the Department of Zoology and Entomology at the University of the Free State (UFS). 

She is an aquatic parasitologist who concentrates on various parasites from a wide range of hosts, including vertebrates (fish and amphibians) and invertebrates (plankton, urchins, starfish, sea cucumbers and red-bait).

Prof Basson, together with PhD student Gerhard de Jager, was invited by Prof Isabelle Ansorge, Head of the School of Oceanography, University of Cape Town, to join her research team on the South African National Antarctic Programme (SANAE) Voyage 59 to Antarctica. 

Widen the scope of research 
“Our aim on this trip was to determine how we can collaborate with the various oceanographers to widen the scope of research normally performed on these voyages, in order to also include parasitological aspects. Once we arrived on the continent of Antarctica, we worked to collect a range of hosts from the Southern Ocean to screen these for the whole array of parasites,” she explains. 

No research of any kind on aquatic parasites has ever been done in Penguin Bukta and Akta Bukta, the specific areas where Prof Basson was based with other scientists and the rest of the Agulhas crew.

She adds: “Our research will contribute to the wider knowledge of parasites in marine environments, but specifically in this area where little to nothing is known.”

A chance of a lifetime 
“Antarctica was literally one of the top research destinations on my bucket list. Travelling to and working in Antarctica is a lifelong dream of mine. It was a chance of a lifetime that I could not miss out on,” says Prof Basson. 

Sharing her experience, she says a typical day on board the SA Agulhas II in Antarctica will start with a cup of good, quality coffee and a look at the prevailing weather on the stern of the ship. 

“One would always be amazed by the beautiful, ceaselessly changing water, the restless sea ice and the impressive ancient ice shelf in very invigorating temperatures, while an ethereal Snow Petrel swirls past and the occasional Adelie penguin comes to gaze and contemplate the presence of this large red structure floating in their habitat and obscuring their view. After tearing yourself away from this, the rest of the day would be spent either in the well-equipped laboratory working through collected samples, or else planning the next exciting collection in the intensely cold water.”

Remarkable journey 
To eternalise memories of this unique experience of almost three months, Prof Basson says that, “One cannot go without a fully charged camera with a large SD card, ready to capture the many facets of this exceedingly fragile but enchanting world of ice and sky, ever changing and all in innumerable shades of white”.

“This truly remarkable journey will forever be associated with a myriad of brilliant highlights.”

Finding it extremely difficult to single out a specific highlight, she listed a long list of memorable events, but as a scientist she will always remember “realising the wealth and cornucopia of microscopic life present in the southernmost of our oceans and seeing this first-hand under the microscope”.

News Archive

Carbon dioxide makes for more aromatic decaffeinated coffee
2017-10-27


 Description: Carbon dioxide makes for more aromatic decaffeinated coffee 1b Tags: Carbon dioxide makes for more aromatic decaffeinated coffee 1b 

The Inorganic Group in the Department of Chemistry
at the UFS is systematically researching the utilisation
of carbon dioxide. From the left, are, Dr Ebrahiem Botha,
Postdoctoral Fellow; Mahlomolo Khasemene, MSc student;
Prof André Roodt; Dr Marietjie Schutte-Smith, Senior Lecturer;
and Mokete Motente, MSc student.
Photo: Charl Devenish

Several industries in South Africa are currently producing hundreds of thousands of tons of carbon dioxide a year, which are released directly into the air. A typical family sedan doing around 10 000 km per year, is annually releasing more than one ton of carbon dioxide into the atmosphere.

The Inorganic Chemistry Research Group in the Department of Chemistry at the University of the Free State (UFS), in collaboration with the University of Zurich in Switzerland, has focused in recent years on using carbon dioxide – which is regarded as a harmful and global warming gas – in a meaningful way. 

According to Prof André Roodt, Head of Inorganic Chemistry at the UFS, the Department of Chemistry has for the past five decades been researching natural products that could be extracted from plants. These products are manufactured by plants through photosynthesis, in other words the utilisation of sunlight and carbon dioxide, nitrogen, and other nutrients from the soil.

Caffeine and chlorophyll 
“The Inorganic group is systematically researching the utilisation of carbon dioxide. Carbon dioxide is absorbed by plants through chlorophyll and used to make interesting and valuable compounds and sugars, which in turn could be used for the production of important new medicines,” says Prof Roodt.

Caffeine, a major energy enhancer, is also manufactured through photosynthesis in plants. It is commonly found in tea and coffee, but also (artificially added) in energy drinks. Because caffeine is a stimulant of the central nervous system and reduces fatigue and drowsiness, some people prefer decaffeinated coffee when enjoying this hot drink late at night. 

Removing caffeine from coffee could be expensive and time-consuming, but also environmentally unfriendly, because it involves the use of harmful and flammable liquids. Some of the Inorganic Group’s research focus areas include the use of carbon dioxide for the extraction of compounds, such as caffeine from plants. 

“Therefore, the research could lead to the availability of more decaffeinated coffee products. Although decaffeinated coffee is currently aromatic, we want to investigate further to ensure better quality flavours,” says Prof Roodt.

Another research aspect the team is focusing on is the use of carbon dioxide to extract chlorophyll from plants which have medicinal properties themselves. Chemical suppliers sell chlorophyll at R3 000 a gram. “In the process of investigating chlorophyll, our group discovered simpler techniques to comfortably extract larger quantities from green vegetables and other plants,” says Prof Roodt.

Medicines
In addition, the Inorganic Research Group is also looking to use carbon dioxide as a building block for more valuable compounds. Some of these compounds will be used in the Inorganic Group’s research focus on radiopharmaceutical products for the identification and possibly even the treatment of diseases such as certain cancers, tuberculosis, and malaria.

 

 

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