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Published on: December 4, 2015
Genetic control of resistance to human malaria
1Alavita Pharmaceuticals, Inc., 325 E Middlefield Rd., Mountain View, CA 94043, USA. aallison@alavita.com
Abstract:
The term 'innate resistance' covers mechanisms of resistance that operate early in the course of infections, preceding adaptive immune responses which exert effects after several days. The first example of genetically controlled innate resistance to human malaria was the demonstration in 1954 that sickle-cell heterozygotes have less severe Plasmodium falciparum infections than do children with normal adult hemoglobin. This observation has been repeatedly confirmed, most recently by independent studies of genome-wide associations in severe falciparum malaria, which have identified the HBB locus as the major signal of association. Other abnormal hemoglobins, glucose-6-phosphate dehydrogenase deficiency and pyruvate kinase deficiency also confer some degree of resistance against falciparum malaria. A second early example of inherited innate resistance to malaria was the finding that nonexpression of the Duffy antigen/chemokine receptor (DARC) on erythrocytes confers resistance to P. vivax. However, this parasite can enter nonhuman primate red cells independently of DARC, and in some human populations P. vivax has been observed in persons lacking DARC. Hence DARC is not the only receptor for P. vivax, but it is likely to be a major one for human transmission. Innate resistance to malaria is rapidly reinforced by adaptive immune responses, both cell-mediated and humoral. Among the factors influencing the efficacy of adaptive immune responses to malaria is the MHC complex constitution of hosts. This differs among populations, presumably because of variations in the structure of parasite antigens recognized by the immune systems of hosts.
Insights
Genetic factors like sickle cell trait and Duffy antigen negativity provide innate resistance to malaria by impacting Plasmodium parasite infections early on. These genetic traits influence disease severity and transmission, complementing adaptive immunity.
Area of Science:
- Immunology
- Genetics
- Infectious Diseases
Background:
- Innate resistance mechanisms operate early in infections, preceding adaptive immune responses.
- Genetic factors influencing innate resistance to malaria have been identified, impacting Plasmodium falciparum and Plasmodium vivax.
- Adaptive immunity, including cell-mediated and humoral responses, reinforces innate resistance, with MHC complex influencing efficacy.
Purpose of the Study:
- To summarize the mechanisms of innate resistance to malaria.
- To highlight key genetic factors conferring resistance to Plasmodium infections.
- To discuss the interplay between innate and adaptive immunity in malaria.
Main Methods:
- Review of historical and recent genetic studies on malaria resistance.
- Analysis of genome-wide association studies (GWAS) for severe falciparum malaria.
- Examination of erythrocyte receptor expression (Duffy antigen) and parasite interactions.
Main Results:
- Sickle-cell trait (heterozygotes) and other hemoglobinopathies confer resistance to Plasmodium falciparum.
- Glucose-6-phosphate dehydrogenase and pyruvate kinase deficiencies also offer protection against falciparum malaria.
- Duffy antigen negativity on erythrocytes confers resistance to Plasmodium vivax, though other receptors exist.
Conclusions:
- Innate genetic resistance plays a crucial role in early defense against malaria.
- Specific genetic traits significantly reduce the severity of Plasmodium infections.
- Understanding these genetic factors is vital for developing malaria control strategies.
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