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19 August 2021 | Story André Damons | Photo Charl Devenish
Ebeth Grobbelaar is a Scientific Manager in the South African Doping Control Laboratory (SADoCoL) who is responsible for the review and approval of results at SADoCoL, to ensure compliance with the technical requirements of the World Anti-Doping Agency (WADA).

For Ebeth Grobbelaar, Scientific Manager in the South African Doping Control Laboratory (SADoCoL) – which is housed by the University of the Free State (UFS) – her work at the laboratory is profound, as fairness on and off the playing field is vital to her.

“Creating a fair playing field for athletes to compete carries a heavy responsibility, as an anti-doping violation impacts the athlete’s career,” says Grobbelaar, who is responsible for the review and approval of results at SADoCoL to ensure compliance with the technical requirements of the World Anti-Doping Agency (WADA).

Women are the cogs in the wheel

According to her, anabolic steroids, the multiple analytical disciplines, and rapidly changing technical requirements from WADA have attracted her to the sciences of anti-doping. Sixty percent of her colleagues at SADoCoL are women.  “They are the cogs in the wheel, ensuring the laboratory's smooth operation, taking daily challenges in their stride, and excelling in what they do as analysts and administrative staff,” says Grobbelaar.

Grobbelaar says there are many options in the anti-doping field for women inside and outside of the laboratory. Some of the most influential people in the anti-doping community are women – in their roles as laboratory directors, leading researchers, directors of athlete passport management units for international sports federations, or national anti-doping agencies in various capacities.

With all the responsibilities, come challenges and pressure – especially in a year when the Olympic Games take place. 

Women should learn how to say ‘no’ 

“An Olympic year always has additional stress due to the large number of samples before the games. This year, the pressure is more, with not all accredited laboratories operational, as well as disrupted testing schedules due to COVID-19.  Enabling athletes to compete in fairness on the world stage is a responsibility and a privilege.”

“My faith is my anchor.  As far as possible, I try to leave my work behind when I leave the laboratory, and concentrate on enjoyable things such as gardening, my dog, reading, and walking with my dog. On challenging days, something sweet also helps,” explains Grobbelaar the pressure and how she copes with it. 

This Women’s Month, Grobbelaar says, women should learn how to say ‘no’ to create time for rest and play. Says Grobbelaar: “For many women, ‘doing your best’ or saying yes means working yourself to the point of a mental and physical breakdown. Having the courage to say no, loving oneself through rest and play, replenishing our spirits, and realising that we are unique and precious in God’s eyes, is a challenge that many women face.” 

“Rest and play can take different forms, such as having coffee with a friend or being creative.  The important thing is that your rest or play activity brings joy to your soul and energises you. Ask your friends to support and assist you,” she concludes. 

News Archive

Champagne and cancer have more in common than you might think
2013-05-08

 

Photo: Supplied
08 May 2013

No, a glass of champagne will not cure cancer....

…But they have more in common than you might think.

Researchers from the Departments of Microbial Biochemical and Food Biotechnology, Physics and the Centre for Microscopy at the University of the Free State in South Africa were recently exploring the properties of yeast cells in wine and food to find out more of how yeast was able to manufacture the gas that caused bread to rise, champagne to fizz and traditional beer to foam. And the discovery they made is a breakthrough that may have enormous implications for the treatment of diseases in humans.

The team discovered that they could slice open cells with argon gas particles, and look inside. They were surprised to find a maze of tiny passages like gas chambers that allowed each cell to ‘breathe.’ It is this tiny set of ‘lungs’ that puts the bubbles in your bubbly and the bounce in your bread.

But it was the technique that the researchers used to open up the cells that caught the attention of the scientists at the Mayo Clinic (Tumor Angiogenesis and Vascular Biology Research Centre) in the US.

Using this technology, they ultimately aim to peer inside cells taken from a cancer patient to see how treatment was progressing. In this way they would be able to assist the Mayo team to target treatments more effectively, reduce dosages in order to make treatment gentler on the patient, and have an accurate view of how the cancer was being eliminated.

“Yes, we are working with the Mayo Clinic,” said Profes Lodewyk Kock from the Microbial, Biochemical and Food Biotechnology Department at the UFS.

“This technique we developed has enormous potential for cell research, whether it is for cancer treatment or any other investigation into the working of cells. Through nanotechnology, and our own invention called Auger-architectomics, we are able to see where no-one has been able to see before.”

The team of Prof Kock including Dr Chantel Swart, Kumisho Dithebe, Prof Hendrik Swart (Physics, UFS) and Prof Pieter van Wyk (Centre for Microscopy, UFS) unlocked the ‘missing link’ that explains the existence of bubbles inside yeasts, and incidentally have created a possible technique for tracking drug and chemotherapy treatment in human cells.

Their work has been published recently in FEMS Yeast Research, the leading international journal on yeast research. In addition, their discovery has been selected for display on the cover page of all 2013 issues of this journal.

One can most certainly raise a glass of champagne to celebrate that!

There are links for video lectures on the technique used and findings on the Internet at:

1. http://vimeo.com/63643628 (Comic version for school kids)

2. http://vimeo.com/61521401 (Detailed version for fellow scientists)

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