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18 August 2021 | Story ANDRÉ DAMONS | Photo ANDRÉ DAMONS
Dr Osayande Evbuomwan, a Senior Lecturer and Medical Specialist in the Department of Nuclear Medicine, always wanted to specialise in an area of medicine that was novel, innovative, intriguing and involved a lot of opportunities for groundbreaking research

Dr Osayande Evbuomwan, Senior Lecturer and Medical Specialist in the Department of Nuclear Medicine, Faculty of Health Sciences, at the University of the Free State (UFS) always wanted to specialize in an area of medicine that was novel, innovative, intriguing and involved many opportunities for groundbreaking research.

This passionate medical man, who joined the UFS in 2019, is behind his department using Lutetium 177 PSMA (Lu-177 PSMA) therapy to treatment metastatic castrate resistant prostate cancer (MCRPC) – an advanced stage prostate cancer. 
The UFS and the Free State province can now join other South African universities, like the University of Pretoria, University of the Witwatersrand, and other provinces in using this method to treat MCRPC patients. 

Built for this job

Dr Evbuomwan explains nuclear medicine is a medical specialty that involves the use of unsealed sources of radiation in the form of radioisotopes for the diagnosis and treatment of various disease conditions including cancers.
“It’s novelty and opportunity for research and ability to diagnose and treat disease conditions in one specialty attracted me to this field. I always wanted to be a doctor. I see it as a calling. It was also something my mum discovered while I was growing up as a child. In my next life, I would choose to be a medical doctor again,” he says.

“I was built for this job and it is always my joy to have the opportunity to carry out my work. We have been well-trained for this; we support all our skills with prayers. We try to give our patients the very best,” says Dr Evbuomwan, who is originally from Benin City, Edo state, Nigeria. 

After graduating as a nuclear medicine specialist from Wits University, Dr Evbuomwan moved to the City of Roses after a work opportunity opened. He saw it as an opportunity to showcase his talents.

“I have been privileged to receive training in this treatment during my residency training at Wits. I treated a few of these patients during my training and the results were amazing. The University of Pretoria has also been involved with this treatment, with some amazing results that are recognised worldwide. 

“This was enough to convince me to push for our department to also join the powerhouses and offer this treatment to patients who need it. With the influence of a very understanding head of department, Dr Gerrit Engelbrecht, we have been successful in pushing for the commencement of this treatment at our facility,” says Dr Evbuomwan.

Important treatment
According to him, the availability and expertise of Lutetium 177 PSMA (Lu-177 PSMA) therapy to treat MCRPC is very important for the Free State and the UFS, as it is able to offer an option for patients who do not qualify for available conventional treatment and/or who have failed the first line of conventional treatment. 

“In the majority of patients this treatment offers improved quality of life, disease-free progression and improved overall survival. It also alleviates the constant bone pains these patients have to go through daily. To be able to offer this treatment puts the university and the province on the map alongside other top institutions in and outside the country. It also offers opportunity for research,” says Dr Evbuomwan.

He believes with a PET/CT camera for proper staging of these patients with cancer the UFS would be able to expand the treatment of patients suffering from this deadly illness. Currently the university does not possess such a camera and has to use lesser methods in identifying the right patients for this therapy.

News Archive

UFS research could light up South African homes
2016-01-21

Reitumetse Maloa, postgraduate student and researcher at the UFS Department of Microbial, Biochemical and Food Biotechnology, is using her research to provide solutions to the energy crises in South Africa.

A young researcher at the university is searching for the solution to South Africa’s energy and electricity problems from a rather unlikely source: cow dung.

“Cow dung could help us power South Africa,” explains Reitumetse Maloa, postgraduate student and researcher at the UFS Department of Microbial, Biochemical and Food Biotechnology.

Reitumetse’s research is trying to understand how the bacteria works that is responsible for producing biogas.

“Biogas can be used for cooking, heating, lighting and powering generators and turbines to make electricity. The remaining liquid effluent can fertilise crops, as it is high in nitrogen, phosphorus and potassium.”

By using cow dung and food waste to produce biogas, we will be able to lower greenhouse gases.

Biogas is produced in a digester - an oxygen-free space in which bacteria break down or digest organic material fed into the system. This process naturally produces biogas, which is mainly a mixture of methane and carbon dioxide.

“Many countries, such as Germany and the United States, have begun generating electricity from cow dung and food waste, through a process known as biogas production. In South Africa, a number of industries, including waste-water treatment facilities and farms, have caught on to this technology, using it to generate heat and to power machines.”

Until recently the world has relied heavily on electricity derived from fossil fuels such as coal, natural gas and oil. Once these fuels have been extracted from underground reservoirs, they are treated or cleaned, transported to power plants and transformed into the electricity that will reach your house. Fossil fuels are considered a ‘dirty’ energy source which gives off greenhouse gases when burned. Those gases are the major contributing factor to climate change.

“We know very little about the interaction of the bacteria inside the biogas digester. To use biogas as a sustainable fuel source, we need to understand and describe the bacteria population and growth dynamics inside the digester to produce biogas optimally. Currently we are testing a variety of feedstock, including bran, maize and molasses, for biogas production potential, as well as optimising the conditions leading to maximum biogas production. We are also exploring the potential to use the effluent as fertiliser on local farms. The ultimate goal is to have biogas systems that will supply our university with clean energy.”


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