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09 October 2020 | Story Leonie Bolleurs | Photo Supplied
Disinfectants
Once they have an understanding of the development of disinfectant resistance, the Veterinary Biotechnology group will be able to make recommendations to hospitals and the agricultural industry on how to prevent the development of these resistant microorganisms.

SARS-CoV-2, an enveloped coronavirus, is susceptible to most disinfectants. Therefore, the majority of disinfectants, including those containing 70% ethanol, should be able to kill the virus fairly quickly.

Nevertheless, it was found that some bacteria are highly resistant to several commercially available disinfectants. These bacteria are currently still quite rare, and the work of the Veterinary Biotechnology group at the University of the Free State (UFS) aims to prevent the development of more highly resistant bacteria.

The research group in the Department of Microbial, Biochemical and Food Biotechnology is working on disinfectant resistance. They recently published an article, ‘Molecular basis of bacterial disinfectant resistance’.

Group members include: Prof Robert Bragg, professor in the department; Dr Charlotte Boucher, research associate; Samantha Mc Carlie, master’s student and laboratory manager; master’s students, Twyne Skein and Gunther Staats; honours students, Carlo Visser, Bernadette Belter, Boudine van der Walt, Jacky Huang, and Mart-Louise van Zyl; and an NRF intern, Gloria Kankam.

According to Mc Carlie, the work being done on disinfectant resistance is largely attributable to the major issues currently experienced with antibiotic resistance.

“Antibiotic resistance is becoming one of the biggest life-threatening challenges of our time – even overshadowing the current COVID-19 pandemic – as multidrug-resistant infections are becoming increasingly difficult to treat. Bacterial infections that are present in hospitals and agriculture are becoming unresponsive to many of the antibiotics currently in use, marking the start of a post-antibiotic era.”

It is predicted that by 2050, antimicrobial resistance could lead to as many deaths as cancer causes today and could account for between 10 million and 50 million deaths per year.

Lack of proper biosecurity

Mc Carlie says the resistance to antibiotics is spreading rapidly due to a lack of proper biosecurity measures in the food and agricultural industry as well as in the hospital environment, even if the COVID-19 pandemic has gone a long way towards increasing the awareness of hospital staff to the importance of good biosecurity. Millions of rands are lost every year due to multidrug-resistant infections in the dairy and poultry industries of South Africa, and superbugs are present in almost every major hospital in the country.

“Currently, the best viable protection we have against bacteria is biosecurity and disinfectants. Biosecurity relies heavily on the use of disinfectants to control bacterial growth. This makes it only more troubling that disinfectant resistance is emerging at an alarming rate.”

She believes it is important to understand the mechanisms of resistance in order to combat resistance to disinfectants. “Once the mechanisms are identified, possible solutions can be investigated.”

The research group is currently monitoring disinfectant resistance, looking at which microorganisms are resistant to which disinfectants. They take environmental samples and test the levels of disinfectant resistance to observe the development and spread thereof.

Once they have an understanding of the development of disinfectant resistance, the Veterinary Biotechnology group will be able to make recommendations to hospitals and the agricultural industry on how to prevent the development of these resistant microorganisms.

“As we learn more about these highly resistant isolates, it will direct day-to-day treatment of multidrug-resistant infections and hopefully aid in the fight against antibiotic and disinfectant resistance,” says Mc Carlie.

The dangers of over-prescribing

“Resistance to antimicrobials such as antibiotics and disinfectants is a natural occurrence. We did not invent antibiotics, we discovered them, and so bacterial resistance has been around for as long as antibiotics have – as a survival strategy.”

“However, the widespread use of antimicrobials creates selective pressure for those microorganisms that are resistant to the antimicrobial being used. Over-prescribing and improper use of antibiotics has led to widespread antibiotic resistance. We expect the same trend to be seen with disinfectant resistance in the near future,” says Mc Carlie.

She urges the public to take note that disease-causing microorganisms can become resistant to antibiotics and disinfectants if they are not used correctly. A course of antibiotics should always be taken at the correct time and until the last dose. In the same way, disinfectants should be used at the recommended level and not diluted below that level.

These resistant organisms are causing major issues in the agricultural and medical industries, but this effect has not been seen in households yet. As long as disinfectants are used correctly, most will be able to kill the novel coronavirus.

There is, however, a need to establish tests on the efficacy of the massive number of ‘hand sanitisers’ that are now suddenly available.

According to Prof Bragg, existing disinfectants and hand sanitisers have been specifically tested against SARS-CoV-2 and have been found to be effective. He says the undergraduate students in the department will be evaluating a wide range of different hand sanitisers as part of their practical training.

Mc Carlie adds that the excessive use of poor-quality disinfectants as hand sanitisers can result in bacteria developing resistance to these disinfectants. “It is therefore very important that reliable high-quality disinfectants are used as hand sanitisers during this COVID-19 crisis, otherwise we will be replacing one crisis with a potentially even bigger crisis.”

Mc Carlie believes there is a need to start looking at alternatives to control bacterial growth. “Disinfectants are currently the only viable option, and if these microorganisms become resistant to disinfectants as well, we will have nowhere else to turn,” she says.

News Archive

School of Medicine – heartbeat of the UFS
2015-06-24

Photo: Charl Devenish

During the past year, the School of Medicine at the University of the Free State celebrated several successes in the field of research and cooperation agreements. These successes allow the school to continue delivering world-class teaching to some of the country’s top students.

Earlier this year, a research team from the Department of Medical Microbiology under the guidance of Prof Felicity Burt, received a grant of R500 000 to conduct research on Congo fever (CCHF). Prof Burt is an internationally-recognised expert on Congo fever. The funding that has been awarded will be used to profile immune responses against CCHF viral proteins, and investigate mechanisms and strategies to enhance these immune responses. This study may contribute to the development of a vaccine against this deadly virus.

Prof Stephen Brown from the Department of Paediatrics and Child Health’s expertise and commitment to paediatric cardiology gained him the title of Bloemfonteiner of the Year. Under the leadership of Prof Brown, the department has performed many breakthrough operations and procedures. The most recent of these, was the first hybrid procedure in the country which was performed in November 2014. The department also has an ultramodern hybrid heart catheterisation suite.
 
Prof William Rae from the Department of Medical Physics focuses on medically-applied radiation. Together with his department, they are looking at quantitative radiation dosages. The research is particularly crucial for the successful treatment of cancers. Through this research, it is possible to ensure that patients receive the appropriate radiation dosages in order to obtain the desired effect without the patient being affected negatively.

Dr Nathanial Mofolo, Head of the Department of Family Medicine in the School of Medicine, is since 2006 involved at various levels of hospital management regarding quality assurance, patient safety, clinical and infection management, as well as administration. He is currently curator of internal medical students for four of the UFS’s teaching hospitals. His department is currently focusing on the National Health Plan, HIV and tuberculosis, teaching and learning, as well as service delivery in family medicine.
 
Prof Francis Smit manages the team that, to their knowledge, decellularised the first primate heart. The method has been applied successfully on rat and pig hearts by researchers in America. Recently the team also successfully cultivated beating heart cells ? those of a rat ? in their laboratories. The research is in line with what researchers in Europe and America are working on. In the long run, the research project aims to attempt ‘building’ a heart that could be used for the purposes of organ donation.

The UFS is also home to the only metabolic research unit in the country. The unit was established to focus research on obesity, type II diabetes, metabolic bone diseases and all related diseases. This includes diseases such as diabetes, cholesterol, cancer, psoriasis, lymphoedema, fatigue, high blood pressure, gout, arthritis, fibrosis, skin disorders, PMT, migraine, insomnia, gall and kidney stones and related infections, and obstructive sleep apnea. The unit is a joint initiative between the UFS and Christo Strydom Nutrition. Mr Christo Strydom, a nutritionist and world renowned in the treatment of lymphoedema, invested R5 million in the establishment of this unit at the UFS.  Christo Strydom is also the founder and owner of Christo Strydom Nutrition.

The School of Medicine at the University of the Free State is the only unit on the continent offering in-depth modules in clinical simulation. The Clinical Simulation Unit on the Bloemfontein Campus of the UFS, headed by Dr Mathys Labuschagne, is regarded as the flagship unit of the school and boasts high-technology equipment where students can practice their clinical skills before applying those skills in the real world.
 

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