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25 January 2024 | Story Leonie Bolleurs | Photo Sonia Small
Prof Corinna Walsh
Prof Corinna Walsh says the PEA POD Infant Body Composition System works by directly measuring an infant’s body weight and volume, and then uses these measurements to calculate the body fat percentage, fat mass, and fat-free mass.

Nutritional and growth patterns during early life have been associated with health, development, and well-being throughout the life cycle. It is also associated with risks for developing obesity and non-communicable diseases, such as cardiometabolic diseases, later in life. These are the findings of Prof Corinna Walsh, Professor in the Department of Nutrition and Dietetics.

Maternal and child health

”In line with national priorities, a strong research focus area of the Faculty of Health Sciences and the School of Health and Rehabilitation Sciences is maternal and child health,” she says. She goes on to mention that the Department of Nutrition and Dietetics has established a reputable research programme. This programme focuses primarily on the nutritional status of pregnant women and how the early environment to which they are exposed during and after pregnancy affects short- and long-term health outcomes of the offspring.

“In our previous work, the assessment of birth outcomes of infants was, however, limited by the lack of equipment to analyse body composition. The research that we can conduct with the PEA POD® provides us with immense additional potential,” remarks Prof Walsh.

She explains, “The PEA POD Infant Body Composition System is an infant-sized air displacement plethysmography system. It works by directly measuring an infant’s body weight and volume, and then uses these measurements to calculate the body fat percentage, fat mass, and fat-free mass.

According to her, the assessment of body volume takes two minutes. “The PEA POD technique also does not require collection of any fluids and does not expose the infant to radiation. It can be performed as often as required without any risks and be used up to a maximum of 8-10 kg body weight, from birth to about eight months,” she says.

Advanced technology

In the context of research on infant body weight and composition, there is a need for accurate measurement techniques that can differentiate between fat mass and fat-free mass. Prof Walsh is of the opinion that traditional measures such as body mass index (BMI) and weight for length have limitations in this regard, as they do not provide a clear distinction between these components. Furthermore, BMI may not be reliable for assessing adiposity or obesity in paediatric populations, and it can vary significantly with age and gender.

Addressing these challenges, the PEA POD equipment offers advanced technology that allows for highly accurate quantification of infant body composition. This technological capability opens up opportunities to study the effects of early-life nutrition on growth and the developmental mechanisms that may lead to later comorbidities. So, when it comes to researching infant body weight and composition, the PEA POD equipment plays a crucial role in providing precise data and insights.

News Archive

Largest group on African continent introduced to Sign Language
2016-07-05

Description: z UFS101 SASL Tags: z UFS101 SASL

The introduction of basic Sign Language
as part of the UFS101 course was a great
success. From left are Susan Lombaard,
Annemarie le Roux, Tshisikhawe Dzivhani
(all from the Department of South African
Sign Language), and Lauren Oosthuizen
(UFS101).

Photo: Leonie Bolleurs

As a result of a new initiative at the University of the Free State (UFS), the largest group of students on the African continent took part in a first-year seminar which included Sign Language.

A total of 5400 students on the Bloemfontein Campus and 1000 on Qwaqwa Campus were taught basic Sign Language by Susan Lombaard, Acting Head of the Department of South African Sign Language, and her team members, Tshisikhawe Dzivhani, Annemarie le Roux, and Nicolene de Klerk.

It forms part of the UFS101 module presented to all first-year students. The initiative, begun in the first semester of 2016, will form part of UFS101 in future and was met with an overwhelmingly positive response.

Three segments of course

Sign Language was taught in three segments and positioned as large-class learning experiences in the Callie Human Centre (Bloemfontein Campus) and the Nelson Mandela Hall (Qwaqwa Campus). Students were taught about deaf culture, Sign Language theory, as well as how to sign their names, exchange pleasantries, and have a basic conversation.

A valuable skill to have

“It (the Sign Language experience) was very interesting and helpful,” said one of the students. “It is important to have the ability to communicate with all sorts of people, and to be able to help them in a crisis”. According to another, it sparked an interest in Sign Language. “It is a skill I will continue to use and try to learn more from it,” said a third.

Lombaard – in collaboration with the UFS101 team – will be presenting a paper related to this achievement at the DeafNet Africa Conference in Johannesburg, from 26 to 30 September 2016.

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