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Updated: Jul 10, 2025

qKAT: Quantitative Semi-automated Typing of Killer-cell Immunoglobulin-like Receptor Genes
Published on: March 6, 2019
A paradoxical population structure of var DBLα types in Africa
Mun Hua Tan1, Kathryn E Tiedje1, Qian Feng2
1Department of Microbiology and Immunology, The University of Melbourne, Bio21 Institute and Peter Doherty Institute, Melbourne, AU.
Abstract:
The var multigene family encodes the P. falciparum erythrocyte membrane protein 1 (PfEMP1), which is important in host-parasite interaction as a virulence factor and major surface antigen of the blood stages of the parasite, responsible for maintaining chronic infection. Whilst important in the biology of P. falciparum, these genes (50 to 60 genes per parasite genome) are routinely excluded from whole genome analyses due to their hyper-diversity, achieved primarily through recombination. The PfEMP1 head structure almost always consists of a DBLα-CIDR tandem. Categorised into different groups (upsA, upsB, upsC), different head structures have been associated with different ligand-binding affinities and disease severities. We study how conserved individual DBLα types are at the country, regional, and local scales in Sub-Saharan Africa. Using publicly-available sequence datasets and a novel ups classification algorithm, cUps, we performed an in silico exploration of DBLα conservation through time and space in Africa. In all three ups groups, the population structure of DBLα types in Africa consists of variants occurring at rare, low, moderate, and high frequencies. Non-rare variants were found to be temporally stable in a local area in endemic Ghana. When inspected across different geographical scales, we report different levels of conservation; while some DBLα types were consistently found in high frequencies in multiple African countries, others were conserved only locally, signifying local preservation of specific types. Underlying this population pattern is the composition of DBLα types within each isolate DBLα repertoire, revealed to also consist of a mix of types found at rare, low, moderate, and high frequencies in the population. We further discuss the adaptive forces and balancing selection, including host genetic factors, potentially shaping the evolution and diversity of DBLα types in Africa.
Insights
The study explores the conservation of Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1) DBLα types across Africa. Some DBLα types are conserved globally, while others show local preservation, indicating diverse evolutionary pressures.
Area of Science:
- Genetics and Genomics
- Parasitology
- Evolutionary Biology
Background:
- The var multigene family encodes Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1), a key virulence factor and surface antigen in malaria.
- PfEMP1 mediates chronic infection and host-parasite interactions but is often excluded from genomic analyses due to high diversity from recombination.
- PfEMP1 head structures, including DBLα-CIDR tandems categorized into upsA, upsB, and upsC groups, correlate with ligand-binding and disease severity.
Conclusions:
- The population structure of DBLα types is a mix of globally and locally conserved variants, suggesting diverse evolutionary pressures.
- Local preservation of specific DBLα types indicates localized adaptation and potentially host-parasite co-evolution.
- Understanding DBLα diversity is crucial for comprehending malaria pathogenesis and developing effective control strategies.
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