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14 April 2021 | Story Dr Chantell Witten | Photo Supplied
Dr Chantell Witten is from the Division of Health Professions Education.

A decade ago, Rob Nixon, a professor in the humanities and environment studies at Princeton University in the US, introduced the concept of slow violence in the context of climate change and environmentalism, explaining slow violence as violence that occurs gradually and out of sight, a violence of delayed destruction that is dispersed across time and space, an attritional violence that is typically not viewed as violence, at all. While profound, Professor Nixon’s concept of ”out-of-sight violence” and ”violence of delayed destruction” was challenged by Professor Thom Davies from the University of Nottingham in the UK who urged scholars to instead ask the question: ”out of sight to whom?” He argued that structural inequality mutated into noxious instances of immediate slow but pervasive violence by those who have endured toxic landscapes and unhealthy physical environments.

Reflecting on the impact of COVID-19 in the context of persistent hunger in South Africa’s cities, Dr Gareth Haysom from the University of Cape Town, challenged us as society to recognise the ”slow violence“ of hunger and food insecurity that are also often “experienced in private, incremental and accretive ways that are often invisible”. But as urged by Professor Davies, the question of child hunger and malnutrition in South Africa is really, to whom is this hunger and malnutrition invisible?

Malnutrition and its debilitating consequences have been studied and known about as far back as the 1950s. In 1976, Stoch and Smyth from the then Child Psychiatric Unit and Department of Paediatrics and Child Health at the University of Cape Town reported on a 15-year developmental study conducted from 1955 to 1970 on the effects of severe undernutrition during infancy on subsequent physical growth and intellectual functioning on coloured children from the Cape Flats concluded that the effects of severe undernutrition during infancy on subsequent brain growth and intellectual development confirmed gross retardation of intellect in the undernourished group when compared to the controls. Furthermore, the study concluded that given the abnormal performance of the control group that there was much evidence to suggest that the controls were also suboptimal in terms of nutritional status and intellectual functioning. This means that in general the nutritional status of coloured children on the Cape Flats was poor. Fast forward to 2021, and child nutrition in South Africa is still sub-optimal.

South Africa’s nutrition indicators have worsened

The most recent data from 2016 National Demographic Health Survey showed that 27% of children under the age of five years are stunted or too short for their age. This equates to more than 1.5 million children whose health and development is compromised and who have a lower chance of reaching their full potential even into their adult years. While many countries of the same economic development status have improved their nutrition indicators, South Africa’s nutrition indicators have worsened. South Africa has been identified as one of the countries with high levels of multiple forms of malnutrition manifested in high levels of stunting, childhood obesity and multiple micronutrient deficiencies, the most notable being vitamin A deficiency. These multiple forms of malnutrition cast a long shadow of ill-health and delayed development. of children, robbing them of quality of life and years of life in their childhood and their adult years. Malnutrition has a double cost on quality of life and additional health costs consuming resources that could have been spent on better food.

The right to have access to sufficient food is embedded in Section 26 and 27 of our Constitution and the right to adequate nutrition for children is stipulated in section 28. The Bill of Rights enshrined in the Constitution states that “every citizen has a right to have access to sufficient food, water and social security” and that “the State must take reasonable legislative and other measures, within its available resources, to achieve the progressive realisation of this right”. Before the onslaught of COVID-19, we as health and social care professionals, have been acutely aware that a significant number of South Africans do not have access to sufficient food and go hungry on a daily basis. Malnutrition is well-documented in South Africa and unfortunately is progressively getting worse.

SA has not prioritised children or the realisation of their human rights to food and nutrition

Better nutrition can only be achieved when food and care are available to young children but in the context of rising food prices, limited maternal support and a difficult psychosocial environment, mothers are not able to provide their children with a health-enabling environment. Our high levels of stunting and obesity levels reflect the chronic situation of poor-quality and inadequate diets coupled with poor caring practices. While these poor dietary practices are often individualised and focused on mothers, there are many systemic and structural barriers for families to access affordable and nutritious diets. The food environment is shaped by a profit-centred food system that comes at the cost of people’s health and well-being. Children have always being the prime focus of the food industry, from the promotion of maternal supplements to improved maternal nutrition for the developing foetus, to the promotion of infant formula as a convenient and easy-to-use alternative to breastfeeding, to the manipulative marketing of foods for and to children.

Child nutrition has become a global tracking indicator for both human and economic development. Sadly, our lack of progress over the past 20 years clearly illustrates that we, as a country, have not prioritised children or the realisation of their human rights to food and nutrition. The findings of the 2020 Child Gauge gives us, as a country, the opportunity to stop the violations of children’s rights and to end the slow violence of child malnutrition.

News Archive

UFS boasts with most advanced chemical research apparatus in Africa
2005-11-23

Celebrating the inauguration of the NMR were from the left Prof Frederick Fourie (Rector and Vice-Chancellor of the UFS),  Dr Detlef Müller (Development Scientist and Manager:  Africa and Asia of Bruker in Germany, the supplier of the NMR), Prof Jannie Swarts (head of the head of the Division Physical Chemistry at the UFS) and Prof Herman van Schalkwyk (Dean:  Faculty of Natural and Agricultural Sciences at the UFS). Photo: Lacea Loader

UFS boasts with most advanced chemical research apparatus in Africa 

The University of the Free State’s (UFS) Department of Chemistry now boasts with some of the most advanced chemical research apparatus in Africa after the latest addition, a nuclear magnetic resonance (NMR) spectrometer, was inaugurated today by the Rector and Vice-Chancellor, Prof Frederick Fourie.  The NMR is used to analyse molecular structures. 

Last month the Department of Chemistry celebrated the installation of the most advanced single crystal X-ray diffractometer in Africa.  The diffractometer provides an indispensable technique to investigate among others the solid state of compounds for medicinal application.

“Three years ago the UFS executive management realised that, if we want to build a university of excellence, we should invest in research.  We started to think strategically about chemistry and decided to bring the apparatus at the Department of Chemistry on a more competitive standard.  Strategic partnerships were therefore secured with companies like Sasol,” said Prof Fourie during the inauguration ceremony.

“The installation of the NMR symbolises the ability of the UFS to turn academic areas around.  I hope that this is the beginning of a decade of excellence for chemistry at the UFS,” said Prof Fourie.

”The catalogue value of the Bruker 600 MHz NMR is approximately R11 million.  With such an advanced apparatus we are now able to train much more post-graduate students,“ said Prof Jannie Swarts, head of the Division Physical Chemistry at the UFS.

”The NMR is the flagship apparatus of the UFS Department of Chemistry that enables chemists to look at compounds more easily at a molecular level.  Research in chemistry is critically dependent on NMR, which is a technique that can determine the composition of reactants and products in complicated chemical reactions, with direct application is most focus areas in chemistry,“ said Prof Swarts.

”Parts of the spectrometer consists of non-commercial items that were specifically designed for the UFS Department of Chemistry to allow the study of unique interactions in e.g. rhodium and platinum compounds,” said Prof Swarts.

According to Prof Swarts the NMR enables chemists to conduct investigations on the following:

To evaluate for example the complex behaviour of DNA in proteins as well as the analysis of illegal drugs sometimes used by athletes. 
It provides an indispensable technique to investigate compounds for medicinal application for example in breast, prostate and related bone cancer identification and therapy, which are currently synthesised in the Department of Chemistry.  
It can also be applied to the area of homogeneous catalysis where new and improved compounds for industrial application are synthesized and characterised, whereby Sasol and even the international petrochemical industry could benefit. This analytical capacity is highly rated, especially in the current climate of increased oil prices.
The NMR can detect and identify small concentrations of impurities in feed streams in the petrochemical industry, e.g. at Sasol and also the international petrochemical industry.  These minute amounts of impurities can result in metal catalyst deactivation or decomposition and can cause million of rands worth in product losses.
It is indispensable for studying the complexity of samples that is non-crystalline. These materials represent the vast majority of chemical compounds such as solvents, gasoline, cooking oil, cleaning agents and colorants as examples. 

According to Prof Swarts the general medical technique of MRI (magnetic resonance imaging) in use at larger hospitals, is based on NMR technology.

”The NMR apparatus enabled the Department of Chemistry to characterise complex molecules that were synthesised for the multi-national company, FARMOFS-PAREXEL, and to negotiate research agreements with overseas universities,” said Prof Swarts. 

Media release
Issued by: Lacea Loader
Media Representative
Tel:  (051) 401-2584
Cell:  083 645 2454
E-mail:  loaderl.stg@mail.uovs.ac.za
22 November 2005
 

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