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01 February 2021 | Story Prof Felicity Burt, Prof Dominique Goedhals & Dr Sabeehah Vawda | Photo istock

Opinion article by Prof Felicity Burt, Prof Dominique Goedhals, and Dr Sabeehah Vawda, Division of Virology, Faculty of Health Sciences, University of the Free State and National Health Laboratory Service, Bloemfontein. 

As we optimistically embarked on a new year with hopes of seeing an end to the global pandemic, masks, and social restrictions, our news channels were consumed with stories about virus variants and vaccine roll-out. What do these variants mean and will the vaccines protect against the changes that have emerged in the virus and save us from the new normal?

The news of a ‘mutated’ virus most likely conjures movie-like images of an invisible, indestructible enemy causing massive disruption. The reality is fortunately much less dramatic, as these changes are actually expected. Just to reiterate, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has an RNA genome that codes for all the proteins which the virus produces. The exact details of how the virus replicates and produces new progeny, although of interest, are beyond the scope of this article. It is sufficient at this point to merely acknowledge that, during replication, the mechanism employed by viruses with an RNA genome allows for the introduction of mutations in the genes that code for the viral proteins. This is expected to occur and there is substantial evidence that the SARS-CoV-2 viral genes have evolved and adapted globally. Some mutations are silent, in other words, they do not change the viral proteins. However, in some instances the changes can affect the proteins encoded by the virus. If these changes occur in regions of the protein responsible for binding to the cell receptors that facilitate entry of the virus into the cell, or in regions of the protein that induce an immune response, the virus may show new characteristics, such as more successful transmission or escape from an existing immune response. 

Second wave of infections

South Africa and the United Kingdom are probably the two countries globally that have methodically sequenced the largest number of SARS-CoV-2 viruses isolated from patients. This technique allows the determination of the complete genome of each isolate and subsequent comparison, using bioinformatic software specifically designed to compare and identify changes and mutations in the nucleotide sequences. As we are all now aware, scientists in these two countries have identified virus variants with an accumulation of mutations and deletions occurring in the gene that encodes for the viral spike protein associated with binding to cell receptors and inducing protective immune responses. These variants have now become the predominant lineages circulating within local communities. 

In December 2020, scientists in South Africa revealed the presence of a variant of concern (VOC), now referred to as 501Y.V2. Sequence data confirmed that this variant initially emerged in October 2020, and by January 2021 it was present in multiple provinces in the country and is considered to be responsible for a significant number of cases occurring in the second wave of infections in the country. A second VOC reported by scientists in the United Kingdom in December 2020, (202012/01) likely emerged during September 2020. A third VOC has been reported from Brazil and is simply known as variant P1. To date, variant 501Y.V2 has been reported from at least 23 countries. VOC 202012/01 has been reported in at least 60 countries, and although the cases were initially associated with travellers, there is an increasing number of clusters of cases occurring in people with no history of travel. The United States, Israel, and India currently have the highest number of cases associated with this variant outside of the UK, keeping in mind that at the rate at which the pandemic unfolds, these statistics quickly become outdated. In contrast, variant P1 has only been reported from Brazil, and outside of Brazil it has been associated with travellers in a small number of countries. 

Immune responses

Changes in viral proteins may or may not influence certain characteristics of a viral infection. Current epidemiological data and modelling have all suggested that the VOC circulating in South Africa and the UK are more transmissible than previous lineages of the SARS-CoV-2. Despite the increased transmissibility, to date the severity of illness and the proportion of severe disease in different age groups appear to be unaffected by the changes in the protein. The increased transmissibility has increased the burden on the public and private health systems, emphasising the importance of rolling out a vaccine to healthcare workers and persons at increased risk of severe illness. 

The changes in the spike protein responsible for inducing immune responses have sparked research studies to determine whether the vaccines will be able to protect against the new variants.  It must be remembered that there are two arms to the immune response with complex interactions, and that natural protection will likely be a combination of responses. However, the presence of antibodies that neutralise the virus, in other words, block it from entering cells, and the ability of these neutralising antibodies to block new variants from entering the cells, can be investigated in the laboratory. Although the exact responses required for protection are not fully understood and will require studies that take more time to complete, an indication of neutralising capacity provides some information with regard to the potential efficacy of the vaccine against variants. What we currently know from laboratory research is that there is a reduction in the ability of antibody from people previously infected during the first wave of cases to neutralise the new variant circulating in South Africa. This reduction varied among the cohort of samples tested, but overall, there was a weaker neutralising capability. Similar results were demonstrated using pseudoviruses representing the variant virus. Studies looking at antibodies in people who have been vaccinated show similar reductions in neutralisation. The answer is unfortunately not clear at this stage, with many pieces of the puzzle still to be determined. The reduced capacity to neutralise in a laboratory was not what we wanted to hear, but it must be remembered that vaccines induce a broad immune response and not only neutralise antibody, and hence there are other components to the immune response that will likely contribute to protection. Nonetheless, even a reduced immune response will contribute towards vaccine-induced herd immunity and saving lives by preventing severe disease. 

Vaccine trials

In addition to the vaccines currently in use, results were released from clinical trials using vaccines from Novavax and Johnson & Johnson. Although a lower efficacy was shown among the South African population compared to results obtained in the UK, the efficacy was still in the region of 57% to 60%, which is certainly encouraging in view of the new variant circulating. The differences observed illustrate the importance of conducting vaccine trials in local populations. An efficacy of 60% will still contribute towards herd immunity and the prevention of severe disease, emphasising the importance of a rapid roll-out and hopefully a high uptake of the vaccine. Vaccination will not only protect the vaccinee but should contribute to minimising the risk of further variants emerging. 

The roll-out of vaccine, further research on immune responses in vaccinated communities, epidemiological data, and sequence data will all contribute towards monitoring the evolution of the outbreak. Flu vaccines are modified annually and if the COVID-19 vaccine needs to be modified, manufacturers have the capability to do this, and some have already started this process. 

Additional waves of infection are predicted to occur until herd immunity can be achieved. Whether the current variants will be responsible for the next wave is not possible to predict, and continued research analysing the gene sequences of future isolates will play an important role in determining how the virus is evolving. 

In the interim, until we have sufficient vaccine-induced herd immunity to provide protection, non-pharmaceutical interventions and human behaviour will continue to play the important role of minimising new infections. To quote CS Lewis: “You can’t go back and change the beginning, but you can start where you are and change the ending.”

 

News Archive

Help to rural women to become entrepreneurs
2006-10-24

Some of the guests who attended the ceremony were, from the left: Mr Donray Malabie (Head of the Alexander Forbes Community Trust), Ms Jemina Mokgosi (one of the ladies from Tabane Village who is participating in the Women in Agriculture project), Dr Limakatso Moorosi (Head: Veterinary Services, Free State Department of Agriculture), Prof Johan Greyling (Head: UFS Department of Animal and Wildlife and Grassland Sciences) and Ms Khoboso Lehloenya (coordinator of the project from UFS Department of Animal and Wildlife and Grassland Sciences). Photo: Leonie Bolleurs\

Alexander Forbes and UFS help rural women to become entrepreneurs
 
Today, the Alexander Forbes Community Trust and the University of the Free State (UFS) joined forces to create an enabling environment for rural women to become players in the private sector.

Three years ago the UFS set up a unique small-scale household egg production project called Women in Agriculture in Thaba ‘Nchu as a pilot project. The project was officially launched today by Mr Donray Malabie, Head of the Alexander Forbes Community Trust.

The aim of the Women in Agriculture Project is to create jobs, provide food security and to help develop rural women into entrepreneurs. A total of 25 women based in Tabane Village in Thaba ‘Nchu are the beneficiaries of the project.

“This is the first project in the Free State the Alexander Forbes Community Trust is involved with.  The project would help rural women acquire the skills they need to run their own egg-production business from their homes,” said Mr Malabie. 

“The ongoing debate on the shortage of skills ignores the fact that people with little or no education at all also need training. This project is special to the Trust as it provides for the creation of sustainable jobs, food security and the transfer of much needed skills all at once, particularly at this level,” he said.

Every woman in the group started with two small mobile cages that housed 12 hens each. The units are low in cost, and made of commercially available welded mesh and a metal frame. Now, each woman has four cages with 48 hens. The group manages to collectively produce 750 eggs daily.

The eggs are currently sold to local businesses, including spaza shops and the women are using the income generated to look after their families and to further develop their business.

The Department of Animal and Wildlife and Grassland Sciences at the UFS identified the project and did the initial research into the feasibility of setting up such a project.

“A demonstration and training unit has been established at the Lengau Agricultural Development Centre and the women attended a short practical training course. Subsidies are provided for feeding, together with all the material and the lay hens necessary for the start of the business,” said Ms Khoboso Lehloenya, coordinator of the project from the Department of Animal and Wildlife and Grassland Sciences at the UFS. 

“The advantage in using lay hens is that they are resistant to diseases and the women will not need electric heating systems for the egg production,” said Ms Lehloenya. 

According to Ms Lehloenya, the women are already benefiting from their egg production businesses.  “Some of them have used the profit to buy school uniforms and tracksuits for their children and others are now able to make a monthly contribution to their household expenses,” said Ms Lehloenya. 
“In South Africa, possibly due to cultural reasons and circumstances, most black people prefer to eat older and tougher chickens, compared to younger soft commercially available broiler chickens. This preference creates a further advantage for the women. At the end of their production cycle, old hens can be sold for a higher price than point-of-lay or young hens. This brings in further money to pay for more hens,” said Ms Lehloenya.

The Alexander Forbes Trust contributed R191 000 towards the project aimed at expanding it to benefit 15 more women.

“We are in the process of recruiting an additional 15 women in Thaba ‘Nchu who will be trained by the Lengau Agricultural Development Centre in order to replicate the model and extend its reach”, said Ms Lehloenya.

Media release
Issued by: Lacea Loader
Media Representative
Tel:   (051) 401-2584
Cell:  083 645 2454
E-mail:  loaderl@mail.uovs.ac.za
20 October 2006

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