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04 December 2024 | Story André Damons | Photo André Damons
Breast Cancer Research 2024
The research team consist of Dr Beynon Abrahams (left), Viwe Fokazi, MMed.Sci student, and PhD student Songezo Vazi.

In an effort to better understand chemotherapeutic treatment response in triple negative breast cancer (TNBC) – known as an aggressive cancer with high recurrence and high mortality rate in breast cancer patients – researchers from the University of the Free State (UFS) developed a drug-resistant TNBC spheroid model that is physiologically more accurate in displaying the complexities involved in drug-resistance development.

Dr Beynon Abrahams, Lecturer in the Department of Basic Medical Sciences within the UFS Faculty of Health Sciences, says breast cancer remains the most frequently diagnosed cancer in women. It is also the most debilitating type of cancer responsible for the highest cancer mortality rates in women. Though various subtypes of breast cancer exist, TNBC is one that is of particular interest to his research team.

“TNBC is one of the most difficult cancer types to treat, due to lack of treatment targets. This often leads to treatment failure in TNBC patients, with drug resistance being a common occurrence, contributing to high death rates. TNBC is classified based on its lack of expression of common receptors such as the estrogen receptor, progesterone receptor and human epidermal growth factor receptor 2, which are commonly expressed in other cancer subtypes.

“Characteristically, TNBC is known as an aggressive cancer with high metastatic potential (spreading of cancer), resulting in a poor prognosis for these patients. The current prescribed therapies for TNBC, entails multidrug combination systemic therapy including chemotherapeutic agents such as doxorubicin and cisplatin as adjuvant therapy. However, despite these therapeutic interventions, drug resistance is a common occurrence,” says Dr Abrahams.

The best available preclinical cell-based models should be used

For effective drug treatments to be developed for TNBC therapeutics, he continues, the best available disease models should be used to not only improve our understanding of the disease physiology and its numerous mechanisms involved in chemotherapeutic resistance development but also to provide accurate results when determining how safe and effective newly developed drugs are, before they may be considered for further development and testing on humans.

According to him, in preclinical cancer research the conventional methods employed to study disease mechanisms, drug action and drug resistance is ineffective. Firstly, the traditionally used preclinical 2-dimensional (2-D) cell culture models do not accurately recapitulate the architectural biology observed in vivo, second, the drug responses assessed in these models may provide inaccurate results and limit its translational potential, explains Dr Abrahams. Thus, more advanced cell-based models such as 3-dimensional (3-D) spheroids and organoids to name a few, should be considered as alternatives.

The UFS research team, in collaboration with the Centre of Excellence for Pharmaceutical Sciences (Pharmacen™) at the North-West University (NWU), recently took the undertaking to establish two triple negative breast cancer 3-D spheroid models, using the clinostat rotating bioreactor ClinoStar™ system, designed by CelVivo in Denmark. The project is funded by the National Research Foundation.

The ClinoStar™ system promotes the self-aggregation of single cells, and natural formation of 3-D spheroids, through slow rotation within a cell growth chamber known as an incubator. There are various techniques and methods available to develop spheroids and organoids, however the ClinoStar™ systems allow for the development of metabolically stable spheroids, over a longer period of time, as opposed to other methods. It also eliminates the sheer-stress conditions that are normally encountered when using 2-D cell culture models.

“We successfully established one chemotherapeutic-sensitive triple negative breast cancer spheroid model and one novel cisplatin-resistant triple negative breast cancer spheroid model. The chemo-sensitive TNBC spheroid model was evaluated for responsiveness against two clinically used chemotherapeutic agents, doxorubicin and cisplatin. We suggest that this model may be useful to screen novel compounds including traditionally used phytomedicinal material for anticancer activity.

“In our second model, the cisplatin-resistant TNBC spheroid model was also exposed to cisplatin and doxorubicin and demonstrated a resistant response in terms of growth and viability. We believe that this model may be useful to further explore drug resistance mechanisms and may also be used as a tool to assess the drug reversal potential of novel compounds. The value and impact of these models lies in that they may offer predictive drug responses that are closer to that observed in in vivo (animals), as opposed to 2-D cell cultures. This however needs to be assessed. We are currently in the process to fully characterise these spheroids models.”

Aim of the research

Dr Abrahams explains their research aims to merge the gap between conventionally used 2-D cell models and in vivo models, by providing a model that is physiologically more accurate in mimicking the in vivo conditions and complex pathways associated with drug resistance, which is otherwise not observed or accurately expressed in 2D models. “Although our research is preclinical and considered fundamental basic research, the translational potential of our spheroid models may provide options for exploring and testing alternative drugs that may be considered for translational research,” Dr Abrahams says.

Characterising other advanced cell-based cancer models

The team is currently in the process of further characterising the TNBC spheroid model based on protein and genetic expression profiles to elucidate potential therapeutic biomarkers for drug treatment as well as screening various phytomedicinal plants, to assess their antiproliferative and drug-resistance reversal potential. In addition, the researchers recently commenced a new research project that aims to develop a drug-resistant prostate cancer spheroid model using the Clinostar™ system with their collaborators at the NWU.

Advanced cell-based model research is still relatively ‘new’ in South Africa and Africa, compared to the global North. As a result, says Dr Abrahams, their NWU collaborators together with other stakeholders, initiated the establishment of the Society for Advanced Cell Culture Modelling for Africa (SACCMA) in 2021, which aims to develop the fields of advanced cell modelling, three-dimensional (3D) cell cultures, 3D bioprinting and stem cell research, in Africa. Our current inter-departmental  collaboration include researchers from the Pharmacology department, but we hope to build and expand our collaboration network in the near future.

News Archive

Geology researcher wins international photographic contest
2017-06-02

Description: Dr Elizaveta Kovaleva Tags: Dr Elizaveta Kovaleva

In this winning photo, “Movement of the ancient sand”,
Dr Matthew Huber, postdoctoral research fellow in the
Department of Geology at UFS, is scaling an outcrop
of sandstone (former sand dunes) in the Zion National
Park in the US.
Photo: Dr Elizaveta Kovaleva


Dr Elizaveta Kovaleva and Dr Matthew Huber, postdoctoral research fellows in the Department of Geology at the University of the Free State (UFS), attended the European Geosciences Union (EGU) General Assembly in Vienna, Austria in April 2017, where Dr Kovaleva was declared a winner of the EGU photo contest with a photograph entitled “Movement of the ancient sand”.

Submitting the winning photo
Each participant could submit up to three photos to participate in the contest before the conference. From all the photographs 10 were selected and displayed for the entire week at the assembly so participants could vote for their three favourite photos. At the end of the week three winners were selected. The prize winners received a free EGU book of their choice, free registration for next year’s EGU and an option to judge the photo competition next year. The photos will be printed on postcards next year, so all participants can send them wherever they want around the globe.

“The picture was taken in the Zion National Park in the US. Myself and Dr Huber were travelling around the western states, visiting national parks. The person in the picture is Dr Huber,” said Dr Kovaleva.

Dr Kovaleva was also invited to participate - as a recently published author - in a workshop, called: ”Publishing in EGU journals: Solid Earth and Earth Surface Dynamics – Meet the Editors”.

At the assembly, Dr Kovaleva attended sessions on Tectonics and Structural Geology as well as on Geochemistry, Mineralogy, Petrology and Volcanology. These sessions were especially interesting in the scope of her research and are directly related to it. “I am a metamorphic petrologist, and with my PhD, I essentially studied microstructures. At the moment, I am studying the Vredefort impact crater, which has experienced both metamorphism and deformation,” she said.

“The winning photos will be printed on postcards,
so all participants can send them wherever they
want around the globe”.

Building scientific connections
For both researchers, the assembly was an opportunity to meet former colleagues and professors from universities all over the world and shake hands with authors whose papers and work they were familiar with, but had never met in person.

“EGU is a perfect opportunity to build scientific connections and relationships, advertise your research and start new collaborations and projects,” said Dr Kovaleva.

The EGU General Assembly 2017 was a great success, with 4 849 oral, 11 312 poster, and 1 238 PICO presentations. Some 649 unique scientific sessions, together with 88 short courses and 322 side events, created an interesting programme. At the conference 14 496 scientists from 107 countries participated, of whom 53% were under the age of 35. Thirty one were from South Africa.

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