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11 December 2019 | Story Leonie Bolleurs
Aids read more

According to Global Statistics, there were approximately 37,9 million people across the globe with HIV/Aids in 2018. They also state that in 2018, an estimated 1,7 million individuals worldwide became newly infected with HIV. 

In the city of Masvingo, Zimbabwe, Claris Shoko is a Statistics lecturer at the Great Zimbabwe University. In her PhD thesis at the University of the Free State (UFS) in the Department of Mathematical Statistics and Actuarial Sciences, she presented the argument that the inclusion of both the CD4 cell count and the viral-load counts in the monitoring and management of HIV+ patients on antiretroviral therapy (ART), is helping in reducing mortality rates, leading to improved life expectancy for HIV/Aids patients. 

She received her doctoral degree at the December UFS Graduation Ceremonies, with her thesis: Continuous-time Markov modelling of the effects of treatment regimens on HIV/Aids immunology and virology. 

CD4 cell count and viral-load count

Dr Shoko explains: “When the human immunodeficiency virus (HIV) enters the human body, the virus attacks the CD4 cells in their blood. This process damages CD4 cells, causing the number of white blood cells in the body to drop, making it difficult to fight infections.”

“Clinical markers such as CD4 cell count and viral-load count (number of HIV particles in a ml of blood) provide information about the progression of HIV/Aids in infected individuals. These markers fully define the immunology and the virology of HIV-infected individuals, thereby giving us a clear picture of how HIV/Aids evolve within an individual.”

Dr Shoko continues: “The development of highly active antiretroviral therapy (HAART) has helped substantially to reduce the death rate from HIV. HAART reduces viral load-count levels, blocking replication of HIV particles in the blood, resulting in an increase of CD4 cell counts and the life expectancy of individuals infected with HIV. This has made CD4 cell counts and viral-load counts the fundamental laboratory markers that are regularly used for patient management, in addition to predicting HIV/Aids disease progression or treatment outcomes.”

In the treatment of HIV/Aids, medical practitioners prescribe combination therapy to attack the virus at different stages of its life cycle, and medication to treat the opportunistic infections that may occur. “The introduction of combined antiretroviral therapy (cART) has led to the dramatic reduction in morbidity and mortality at both individual level and population level,” states Dr Shoko.

Once HIV-positive patients are put on cART, the effectiveness of treatment is monitored after the first three months and a further follow-up is done every six months thereafter. During the monitoring stages, CD4 cell count and viral load is measured. Patients are also screened for any tuberculosis (TB) co-infection and checked for any signs of drug resistance. These variables determine whether or not there is a need for treatment change. 

She continues: “Previous studies on HIV modelling could not include both CD4 cell count and viral load in one model, because of the collinearity between the two variables. In this study, the principal component approach for the treatment of collinearity between variables is used. Both variables were then included in one model, resulting in a better prediction of mortality than when only one of the variables is used.”

“Viral-load monitoring helps in checking for any possibilities of virologic failure or viral rebound, which increases the rate of mortality if not managed properly. CD4 cell count then comes in to monitor the potential development of opportunistic infections such as TB. TB is extremely fatal, but once detected and treated, the survival of HIV/Aids patients is assured,” Dr Shoko explains.

Markov model

She applied the Markov model in her study. The model, named after the Russian mathematician Andrey Markov, represents a general category of stochastic processes, characterised by six basic attributes: states, stages, actions, rewards, transitions, and constraints. 

According to Dr Shoko, Markov models assume that a patient is always in one of a finite number of discrete states, called Markov states. All events are modelled as transitions from one state to another. Each state is assigned a utility, and the contribution of this utility to the overall prognosis depends on the length of time spent in each state. For example, for a patient who is HIV positive, these states could be HIV+ (CD4 cell count above 200 cells/mm3), Aids (CD4 cell count below 200 cells/mm3) and Dead.

“Markov models are ideal for use in HIV/Aids studies, because they estimate the rate of transition between multiple-disease states while allowing for the possible reversibility of some states,” says Dr Shoko, quoting Hubbard and Zhou.

“Relatively fewer HIV modelling studies include a detailed description of the dynamics of HIV viral load count during stages of HIV disease progression. This could be due to the unavailability of data on viral load, particularly from low- and middle-income countries that have historically relied on monitoring CD4 cell counts for patients on ART because of higher costs of viral load-count testing,” Dr Shoko concludes

News Archive

UFS hikers to Cape Town reflect on their journey
2014-05-26

 

For the four volunteers from the university who are currently on their way to the Cape on foot, every hour of every day is a victory.

It is three weeks since two employees from the University of the Free State (UFS), Adéle van Aswegen and Ntokozo Nkabinde, together with two other Bloemfontein residents, Nico Piedt and Ronel Warner, left Bloemfontein on fóót for the Cape, in order to highlight the problem of food insecurity among students.

On Sunday 18 May they crossed the halfway mark at Beaufort West and will conclude their journey on Tuesday 3 June in Cape Town.

This is what the hikers have to say after three weeks on the road:

Adéle van Aswegen
It isn’t only a physical journey, but rather an emotional journey you undertake. You learn what it means to be truly thankful for basic things like clothes, a place to sleep and food.

Nico Piedt
I know what it feels like to survive on only a glass of water in your stomach – a cup of weak tea if you’re lucky – for the whole day. If I can help (through the hike) to give someone a better chance in life, then it is worthwhile.

Ronel Warner
You think and grow simultaneously. As you plan every stride ahead of you, you also plan your life ahead.

Ntokozo Nkabinde
You don’t walk for yourself. You undertake this journey, maybe because you want to help someone, but this journey is actually in honour of something bigger and you just have to endure.”

These boots are made for walking ... to Cape Town (Article of 02 May 2014)
“Aren’t auntie and them hungry yet?” Country folk worried about NSH hikers (15 May 2014)

Daily updates:
(You can also follow us on @UFSweb for daily tweets)

Day 33: 2 June 2014
13:40
20 km
Sunset Beach, Cape Town

Day 32: 1 June 2014
16:05
26 km
Mervyn and Sanet Wessels, Belville

Day 31: 31 May 2014
16:31
39.6 km
Rhonell and Gavin Julain, Paarl

Day 30: 30 May 2014
14:00
16 km
Monte Rosa, Rawsonville

Day 29: 29 May 2014
13:16
31 km
The Habit, Worcester

Day 28: 28 May 2014
11:00
22.4 km
Monte Roza, De doorns

Day 27: 27 May 2014
17:00
21.1 km
Karoo Hotel

Day 26: 26 May 2014
18:27
43.3 km
Tows river

Day 25: 25 May 2014
12:18
Lord Milner Hotel, Matjiesfontein

Day 24: 24 May 2014
16:30
42 km
Laingsburg Country Lodge

Day 23: 23 May 2014
17:32
41.8 km
Vergenoeg

Day 22: 22 May 2014
16:42
43 km
Assendelft Lodge and Bush Camp, Prins Albert

Day 21: 21 May 2014
15:09
42 km
Leeu Gamka Hotel

Day 20: 20 May 2014
13:39
20 km
Alida, Springfontein

Day 19: 19 May 2014
12:31
27.6 km
Teri Moja Game Lodge

Day 18: 18 May 2014
First rest day
Nagenoeg Guesthouse, Beaufort West

Day 17: 17 May 2014
19:30
62.3 km
Nagenoeg Guesthouse, Beaufort West

Day 16: 16 May 2014
13:00
14 km
Taaibochfontein

Day 15: 15 May 2014
16:03
32 km
Travalia, Three Sisters

Day 14: 14 May 2014
18:33
43 km
Joalani Guest Farm

Day 13: 13 May 2014
17:30
33 km
Die Rondawels

Day 12: 12 May 2014
16:49
40 km
Aandrus B&B in Richmond

Day 11: 11 May 2014
39 km
Wortelfontein (Magdel and Christiaan)

Day 10: 10 May 2014
15:44
34 km
Hanover Lodge

Day 9: 09 May 2014
40.8 km
Camping between Colesberg and Hanover

Day 8: 08 May 2014
15:25
33.7 km
Colesberg, The Lighthouse Guesthouse

Day 7: 07 May 2014
15:08
23 km
Orange River Lodge

Day 6: 06 May 2014
15:57
51.06 km
Gariep Forever Resort

Day 5: 05 May 2014
12:18
28 km
Rondefontein

Day 4: 04 May 2014
15:27
35 km
Trompsburg: Fox Den

Day 3: 03 May 2014
17:30
46.74 km
Edenburg Country Lodge (Hotel)

Day 2: 02 May 2014
11:44 am
15.3 km
Tom's Place

Day 1: 01 May 2014
32 km
Leeuwberg

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