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22 February 2024 | Story André Damons | Photo SUPPLIED
Prof Robert Bragg
Prof Robert Bragg is a researcher in the Department of Microbiology and Biochemistry at the University of the Free State (UFS) and believes hospital-acquired infections (HAIs) might already be “Disease X”.

During the World Governments Summit, the World Health Organisation (WHO) warned world leaders about the likelihood of a Disease X outbreak, saying it is “a matter of when, not if” a new pathogen and pandemic will strike. If there is an outbreak of this disease tomorrow, the world still would not be ready. 

During his speech earlier this month at the summit in Dubai, Tedros Adhanom Ghebreyesus, Director-General of the WHO, said COVID-19 was a Disease X – a new pathogen causing a new disease. He said: “There will be another Disease X, or a Disease Y or a Disease Z. And as things stand, the world remains unprepared for the next Disease X, and the next pandemic. If it struck tomorrow, we would face many of the same problems we faced with COVID-19.”

Though Disease X is a hypothetical placeholder representing yet-to-be-encountered pathogens, Prof Robert Bragg, researcher in the Department of Microbiology and Biochemistry at the University of the Free State (UFS), believes hospital-acquired infections (HAI) might already be “Disease X”. He says data shows that deaths from HAIs will become the leading cause of human deaths. This problem is rapidly growing as most of the pathogens which people contract while in hospital are now resistant to antibiotics, making them very difficult to treat.  

Prof Bragg, whose main research is in disease-control, first in the agricultural industry, and now human health, also previously warned about a disease that would make COVID-19, which killed more than seven million people to date globally, look like a dress rehearsal. His PhD student, Samantha Mc Carlie, investigating how bacteria become resistant to disinfectant and sanitiser products. This is a serious problem for the future, as disinfection could be our last line of defence.

Heading for a crisis in health care

“The world is rapidly heading for a crisis in health care regarding hospital-acquired infections. It is common knowledge that we are quickly running out of antibiotics (and antifungals) to treat bacterial and yeast infections. Without antibiotics and antifungals, the outcome of many of these bacterial and yeast hospital-acquired infections will be very severe. They will, unfortunately, in many cases, result in the death of the patient,” says Prof Bragg. 

According to him, the WHO suggests that 30% of patients in ICUs in developed countries and 70% in underdeveloped countries will contract a HAI. Of these, the mortality rate can be as high as 70%. 

“Most of these infections are caused by multiple drug resistance strains of bacteria such as Enterococcus faecium, Staphylococcus aureus, Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa and Enterobacter species. Additional bacteria and yeast, which can also cause HAIs, such as Serratia species, are also becoming a concern due to their intrinsic higher levels of disinfectant resistance.”

Prof Bragg explains that in 2014, a high-profile review was first published, commissioned by the UK Prime Minister, entitled, “Antimicrobial Resistance: Tackling a crisis for the Health and Wealth of Nations” (the AMR Review). This review estimated that antimicrobial resistance (AMR) could cause 10 million deaths annually by 2050 (The Review on Antimicrobial Resistance 2016). This is the same number of deaths caused by cancer today, making AMR the leading cause of human mortality by 2050. When it was finalised, this report was highly criticised as an over-dramatisation, as when this prediction was made, the number of mortalities related to HAIs was around 700 000 – a very long way off 10 000 000. However, according to recent estimates, five years later, in 2019, 1.27 million deaths were directly attributed to drug-resistant infections globally, and this had reached 4.95 million deaths associated with bacterial AMR (including those directly attributable to AMR) by 2022 (Murray et al. 2022). 

The overuse of disinfectants during the COVID-19 pandemic, according to Prof Bragg and Mc Calie, has contributed to the crisis by fostering resistant strains and contaminating environments. Based on the current trajectory of mortalities, the 10 million mark will be reached way before 2050.

Need for a paradigm shift

The researchers say an urgent need to change the paradigm in medicine from “treatment” to “prevention” is necessary and that the old saying ‘prevention is better than cure’ has never been truer. 

According to Bragg: “The golden era of antibiotics is rapidly coming to an end. It is highly unlikely that we will discover new antibiotics, and even if we do, the likelihood that the bacteria will already have or will be able to develop resistance in a very short time is highly likely. 

“We need to think of what happed with quinolones, where we thought we had won the war with a groundbreaking new antimicrobial agent. The bacteria did not have millions of years of evolution to develop resistance to quinolone, yet in only three years, the first resistant bacteria were isolated. There is currently great excitement around AI-derived new antibiotics. However, the end result is likely to be the same. We need an alternative to treatment – in other words, a paradigm shift.” 

Improved biosecurity 

Prof Bragg says highly improved biosecurity is the only viable option for disease control in a post-antibiotic era. By using good biosecurity in poultry production, he says the mortality rates were reduced by 50%. 

Research has shown a direct link between the environmental microbial load in a hospital and HAIs; with a lower microbial load linked to lower incidence of HAIs including C. difficile infections (Boyce et al. 2008; Suleyman et al. 2018; Umemura et al., 2022). Therefore, the new paradigm is to reduce microbial contamination in the hospital environment to prevent HAIs. If there are fewer dangerous microorganisms in an environment, patient and staff exposure to these microorganisms will decrease, reducing the level of HAIs for staff and patients. However, to reduce the microbial loads in healthcare settings, effective cleaning and disinfection products need to be used. 

News Archive

Fight against Ebola virus requires more research
2014-10-22

 

Dr Abdon Atangana
Photo: Ifa Tshishonge
Dr Abdon Atangana, a postdoctoral researcher in the Institute for Groundwater Studies at the University of the Free State (UFS), wrote an article related to the Ebola virus: Modelling the Ebola haemorrhagic fever with the beta-derivative: Deathly infection disease in West African countries.

“The filoviruses belong to a virus family named filoviridae. This virus can cause unembellished haemorrhagic fever in humans and nonhuman monkeys. In literature, only two members of this virus family have been mentioned, namely the Marburg virus and the Ebola virus. However, so far only five species of the Ebola virus have been identified, including:  Ivory Coast, Sudan, Zaire, Reston and Bundibugyo.

“Among these families, the Ebola virus is the only member of the Zaire Ebola virus species and also the most dangerous, being responsible for the largest number of outbreaks.

“Ebola is an unusual, but fatal virus that causes bleeding inside and outside the body. As the virus spreads through the body, it damages the immune system and organs. Ultimately, it causes the blood-clotting levels in cells to drop. This leads to severe, uncontrollable bleeding.

Since all physical problems can be modelled via mathematical equation, Dr Atangana aimed in his research (the paper was published in BioMed Research International with impact factor 2.701) to analyse the spread of this deadly disease using mathematical equations. We shall propose a model underpinning the spread of this disease in a given Sub-Saharan African country,” he said.

The mathematical equations are used to predict the future behaviour of the disease, especially the spread of the disease among the targeted population. These mathematical equations are called differential equation and are only using the concept of rate of change over time.

However, there is several definitions for derivative, and the choice of the derivative used for such a model is very important, because the more accurate the model, the better results will be obtained.  The classical derivative describes the change of rate, but it is an approximation of the real velocity of the object under study. The beta derivative is the modification of the classical derivative that takes into account the time scale and also has a new parameter that can be considered as the fractional order.  

“I have used the beta derivative to model the spread of the fatal disease called Ebola, which has killed many people in the West African countries, including Nigeria, Sierra Leone, Guinea and Liberia, since December 2013,” he said.

The constructed mathematical equations were called Atangana’s Beta Ebola System of Equations (ABESE). “We did the investigation of the stable endemic points and presented the Eigen-Values using the Jacobian method. The homotopy decomposition method was used to solve the resulted system of equations. The convergence of the method was presented and some numerical simulations were done for different values of beta.

“The simulations showed that our model is more realistic for all betas less than 0.5.  The model revealed that, if there were no recovery precaution for a given population in a West African country, the entire population of that country would all die in a very short period of time, even if the total number of the infected population is very small.  In simple terms, the prediction revealed a fast spread of the virus among the targeted population. These results can be used to educate and inform people about the rapid spread of the deadly disease,” he said.

The spread of Ebola among people only occurs through direct contact with the blood or body fluids of a person after symptoms have developed. Body fluid that may contain the Ebola virus includes saliva, mucus, vomit, faeces, sweat, tears, breast milk, urine and semen. Entry points include the nose, mouth, eyes, open wounds, cuts and abrasions. Note should be taken that contact with objects contaminated by the virus, particularly needles and syringes, may also transmit the infection.

“Based on the predictions in this paper, we are calling on more research regarding this disease; in particular, we are calling on researchers to pay attention to finding an efficient cure or more effective prevention, to reduce the risk of contamination,” Dr Atangana said.


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