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Dive into the research topics where Mahamadou A. Thera is active.

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Featured researches published by Mahamadou A. Thera.


Science | 2009

The Genetic Structure and History of Africans and African Americans

Sarah A. Tishkoff; Floyd A. Reed; Françoise R. Friedlaender; Christopher Ehret; Alessia Ranciaro; Alain Froment; Jibril Hirbo; Agnes A. Awomoyi; Jean-Marie Bodo; Ogobara K. Doumbo; Muntaser E. Ibrahim; Abdalla T. Juma; Maritha J. Kotze; Godfrey Lema; Jason H. Moore; Holly M. Mortensen; Thomas B. Nyambo; Sabah A. Omar; Kweli Powell; Gideon S. Pretorius; Michael W. Smith; Mahamadou A. Thera; Charles Wambebe; James L. Weber; Scott M. Williams

African Origins The modern human originated in Africa and subsequently spread across the globe. However, the genetic relationships among the diverse populations on the African continent have been unclear. Tishkoff et al. (p. 1035; see the cover, published online 30 April) provide a detailed genetic analysis of most major groups of African populations. The findings suggest that Africans represent 14 ancestral populations. Populations tend to be of mixed ancestry which documents historical migrations. The data mainly support but sometimes challenge proposed relationships between groups of self-identified ethnicity previously hypothesized on the basis of linguistic studies. The authors also examined populations of African Americans and individuals of mixed ancestry from Cape Town, documenting the variation and origins of admixture within these groups. A genetic study illuminates population history, as well as the relationships among and the origin of major language families. Africa is the source of all modern humans, but characterization of genetic variation and of relationships among populations across the continent has been enigmatic. We studied 121 African populations, four African American populations, and 60 non-African populations for patterns of variation at 1327 nuclear microsatellite and insertion/deletion markers. We identified 14 ancestral population clusters in Africa that correlate with self-described ethnicity and shared cultural and/or linguistic properties. We observed high levels of mixed ancestry in most populations, reflecting historical migration events across the continent. Our data also provide evidence for shared ancestry among geographically diverse hunter-gatherer populations (Khoesan speakers and Pygmies). The ancestry of African Americans is predominantly from Niger-Kordofanian (~71%), European (~13%), and other African (~8%) populations, although admixture levels varied considerably among individuals. This study helps tease apart the complex evolutionary history of Africans and African Americans, aiding both anthropological and genetic epidemiologic studies.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Blood group O protects against severe Plasmodium falciparum malaria through the mechanism of reduced rosetting

J. Alexandra Rowe; Ian Handel; Mahamadou A. Thera; Anne-Marie Deans; Kirsten E. Lyke; Abdoulaye K. Kone; Dapa A. Diallo; Ahmed Raza; Oscar Kai; Kevin Marsh; Christopher V. Plowe; Ogobara K. Doumbo; Joann M. Moulds

Malaria has been a major selective force on the human population, and several erythrocyte polymorphisms have evolved that confer resistance to severe malaria. Plasmodium falciparum rosetting, a parasite virulence phenotype associated with severe malaria, is reduced in blood group O erythrocytes compared with groups A, B, and AB, but the contribution of the ABO blood group system to protection against severe malaria has received little attention. We hypothesized that blood group O may confer resistance to severe falciparum malaria through the mechanism of reduced rosetting. In a matched case-control study of 567 Malian children, we found that group O was present in only 21% of severe malaria cases compared with 44–45% of uncomplicated malaria controls and healthy controls. Group O was associated with a 66% reduction in the odds of developing severe malaria compared with the non-O blood groups (odds ratio 0.34, 95% confidence interval 0.19–0.61, P < 0.0005, severe cases versus uncomplicated malaria controls). In the same sample set, P. falciparum rosetting was reduced in parasite isolates from group O children compared with isolates from the non-O blood groups (P = 0.003, Kruskal–Wallis test). Statistical analysis indicated a significant interaction between host ABO blood group and parasite rosette frequency that supports the hypothesis that the protective effect of group O operates through the mechanism of reduced P. falciparum rosetting. This work provides insights into malaria pathogenesis and suggests that the selective pressure imposed by malaria may contribute to the variable global distribution of ABO blood groups in the human population.


Nature Genetics | 2014

Reappraisal of known malaria resistance loci in a large multicenter study

Kirk A. Rockett; Geraldine M. Clarke; Kathryn Fitzpatrick; Christina Hubbart; Anna Jeffreys; Kate Rowlands; Rachel Craik; Muminatou Jallow; David J. Conway; Kalifa Bojang; Margaret Pinder; Stanley Usen; Fatoumatta Sisay-Joof; Giorgio Sirugo; Ousmane Toure; Mahamadou A. Thera; Salimata Konate; Sibiry Sissoko; Amadou Niangaly; Belco Poudiougou; V. Mangano; Edith C. Bougouma; Sodiomon B. Sirima; David Modiano; Lucas Amenga-Etego; Anita Ghansah; Kwadwo A. Koram; Michael D. Wilson; Anthony Enimil; Jennifer L. Evans

Many human genetic associations with resistance to malaria have been reported, but few have been reliably replicated. We collected data on 11,890 cases of severe malaria due to Plasmodium falciparum and 17,441 controls from 12 locations in Africa, Asia and Oceania. We tested 55 SNPs in 27 loci previously reported to associate with severe malaria. There was evidence of association at P < 1 × 10−4 with the HBB, ABO, ATP2B4, G6PD and CD40LG loci, but previously reported associations at 22 other loci did not replicate in the multicenter analysis. The large sample size made it possible to identify authentic genetic effects that are heterogeneous across populations or phenotypes, with a striking example being the main African form of G6PD deficiency, which reduced the risk of cerebral malaria but increased the risk of severe malarial anemia. The finding that G6PD deficiency has opposing effects on different fatal complications of P. falciparum infection indicates that the evolutionary origins of this common human genetic disorder are more complex than previously supposed.


Nature Genetics | 2009

Genome-wide and fine-resolution association analysis of malaria in West Africa.

Muminatou Jallow; Yik-Ying Teo; Kerrin S. Small; Kirk A. Rockett; Panos Deloukas; Taane G. Clark; Katja Kivinen; Kalifa Bojang; David J. Conway; Margaret Pinder; Giorgio Sirugo; Fatou Sisay-Joof; Stanley Usen; Sarah Auburn; Suzannah Bumpstead; Susana Campino; Alison J. Coffey; Andrew Dunham; Andrew E. Fry; Angela Green; Rhian Gwilliam; Sarah Hunt; Michael Inouye; Anna Jeffreys; Alieu Mendy; Aarno Palotie; Simon Potter; Jiannis Ragoussis; Jane Rogers; Kate Rowlands

We report a genome-wide association (GWA) study of severe malaria in The Gambia. The initial GWA scan included 2,500 children genotyped on the Affymetrix 500K GeneChip, and a replication study included 3,400 children. We used this to examine the performance of GWA methods in Africa. We found considerable population stratification, and also that signals of association at known malaria resistance loci were greatly attenuated owing to weak linkage disequilibrium (LD). To investigate possible solutions to the problem of low LD, we focused on the HbS locus, sequencing this region of the genome in 62 Gambian individuals and then using these data to conduct multipoint imputation in the GWA samples. This increased the signal of association, from P = 4 × 10−7 to P = 4 × 10−14, with the peak of the signal located precisely at the HbS causal variant. Our findings provide proof of principle that fine-resolution multipoint imputation, based on population-specific sequencing data, can substantially boost authentic GWA signals and enable fine mapping of causal variants in African populations.


The New England Journal of Medicine | 2011

A Field Trial to Assess a Blood-Stage Malaria Vaccine

Mahamadou A. Thera; Ogobara K. Doumbo; Drissa Coulibaly; Matthew B. Laurens; Amed Ouattara; Abdoulaye K. Kone; Ando Guindo; Karim Traore; Idrissa Traore; Bourema Kouriba; Dapa A. Diallo; Issa Diarra; Modibo Daou; Amagana Dolo; Youssouf Tolo; Mahamadou S Sissoko; Amadou Niangaly; Mady Sissoko; Shannon Takala-Harrison; Kirsten E. Lyke; Yukun Wu; William C. Blackwelder; Olivier Godeaux; Johan Vekemans; Marie-Claude Dubois; W. Ripley Ballou; Joe Cohen; Darby Thompson; Tina Dube; Lorraine Soisson

BACKGROUND Blood-stage malaria vaccines are intended to prevent clinical disease. The malaria vaccine FMP2.1/AS02(A), a recombinant protein based on apical membrane antigen 1 (AMA1) from the 3D7 strain of Plasmodium falciparum, has previously been shown to have immunogenicity and acceptable safety in Malian adults and children. METHODS In a double-blind, randomized trial, we immunized 400 Malian children with either the malaria vaccine or a control (rabies) vaccine and followed them for 6 months. The primary end point was clinical malaria, defined as fever and at least 2500 parasites per cubic millimeter of blood. A secondary end point was clinical malaria caused by parasites with the AMA1 DNA sequence found in the vaccine strain. RESULTS The cumulative incidence of the primary end point was 48.4% in the malaria-vaccine group and 54.4% in the control group; efficacy against the primary end point was 17.4% (hazard ratio for the primary end point, 0.83; 95% confidence interval [CI], 0.63 to 1.09; P=0.18). Efficacy against the first and subsequent episodes of clinical malaria, as defined on the basis of various parasite-density thresholds, was approximately 20%. Efficacy against clinical malaria caused by parasites with AMA1 corresponding to that of the vaccine strain was 64.3% (hazard ratio, 0.36; 95% CI, 0.08 to 0.86; P=0.03). Local reactions and fever after vaccination were more frequent with the malaria vaccine. CONCLUSIONS On the basis of the primary end point, the malaria vaccine did not provide significant protection against clinical malaria, but on the basis of secondary results, it may have strain-specific efficacy. If this finding is confirmed, AMA1 might be useful in a multicomponent malaria vaccine. (Funded by the National Institute of Allergy and Infectious Diseases and others; ClinicalTrials.gov number, NCT00460525.).


Molecular and Biochemical Parasitology | 2006

Differential var gene transcription in Plasmodium falciparum isolates from patients with cerebral malaria compared to hyperparasitaemia

Helen M. Kyriacou; Graham N. Stone; Richard J. Challis; Arif Ahmed Raza; Kirsten E. Lyke; Mahamadou A. Thera; Abdoulaye K. Kone; Ogobara K. Doumbo; Christopher V. Plowe; J. Alexandra Rowe

The Plasmodium falciparum variant erythrocyte surface antigens known as PfEMP1, encoded by the var gene family, are thought to play a crucial role in malaria pathogenesis because they mediate adhesion to host cells and immuno-modulation. Var genes have been divided into three major groups (A, B and C) and two intermediate groups (B/A and B/C) on the basis of their genomic location and upstream sequence. We analysed expressed sequence tags of the var gene DBLα domain to investigate var gene transcription in relation to disease severity in Malian children. We found that P. falciparum isolates from children with cerebral malaria (unrousable coma) predominantly transcribe var genes with DBLα1-like domains that are characteristic of Group A or B/A var genes. In contrast, isolates from children with equally high parasite burdens but no symptoms or signs of severe malaria (hyperparasitaemia patients) predominantly transcribe var genes with DBLα0-like domains that are characteristic of the B and C-related var gene groups. These results suggest that var genes with DBLα1-like domains (Group A or B/A) may be implicated in the pathogenesis of cerebral malaria, while var genes with DBLα0-like domains promote less virulent malaria infections.


The Journal of Infectious Diseases | 2005

Impact of Trimethoprim-Sulfamethoxazole Prophylaxis on Falciparum Malaria Infection and Disease

Mahamadou A. Thera; Paul S. Sehdev; Drissa Coulibaly; Karim Traore; Mamane N. Garba; Yacouba Cissoko; Abdoulaye K. Kone; Ando Guindo; Alassane Dicko; Abdoul H. Beavogui; Abdoulaye Djimde; Kirsten E. Lyke; Dapa A. Diallo; Ogobara K. Doumbo; Christopher V. Plowe

BACKGROUND Trimethoprim-sulfamethoxazole (TS) prophylaxis is recommended for persons living with human immunodeficiency virus infection and acquired immunodeficiency syndrome in Africa. TS and the antimalarial combination sulfadoxine-pyrimethamine (SP) share mechanisms of action and resistance patterns, and concerns about the impact of TS resistance on SP efficacy have contributed to reluctance to implement TS prophylaxis in Africa. METHODS To determine whether TS prophylaxis impairs SP efficacy for treatment of uncomplicated falciparum malaria, we conducted a randomized, controlled, open-label study of TS prophylaxis. Two hundred and forty children 5-15 years old were randomized in a 2 : 1 fashion to receive either thrice-weekly TS for 12 weeks or no prophylaxis and were treated with SP for subsequent episodes of malaria. The incidence of malaria, SP efficacy, and the prevalence of parasite mutations that confer antifolate drug resistance were measured. RESULTS TS prophylaxis had a 99.5% protective efficacy against episodes of clinical malaria, with 97% efficacy against infection. Four SP treatment failures occurred in the control group, and none occurred in the TS group. No evidence was seen for selection by TS of antifolate resistance-conferring mutations in parasite dihydrofolate reductase or dihydropteroate synthase during subclinical infections. CONCLUSIONS In this setting of low antifolate resistance, TS was highly effective in preventing falciparum malaria infection and disease and did not appear to select for SP-resistant parasites.


Science Translational Medicine | 2009

Extreme Polymorphism in a Vaccine Antigen and Risk of Clinical Malaria: Implications for Vaccine Development

Shannon L. Takala; Drissa Coulibaly; Mahamadou A. Thera; Adrian H. Batchelor; Michael P. Cummings; Ananias A. Escalante; Amed Ouattara; Karim Traore; Amadou Niangaly; Abdoulaye Djimde; Ogobara K. Doumbo; Christopher V. Plowe

Children from Mali who are repeatedly infected with malaria are more likely to get sick if the parasite is highly variable, a possible obstacle to an effective vaccine. From the point of view of the parasite, malaria is a successful disease. Transmitted by the bite of infected mosquitoes, malaria sickens about 400 million people a year. Although drugs, insecticides, and bed nets can help, a vaccine would be the most effective way to fight malaria. But the malaria parasite is coated with ever-changing proteins, and it has proven difficult to develop an effective vaccine against these constantly moving targets. By examining the natural immune response to malaria infection in children from Mali, West Africa, Takala et al. have identified antibody targets in the parasite that can best protect children from infection, a boon in designing a vaccine to combat this quick-change artist. Vaccines against the malaria parasite, Plasmodium falciparum, are directed against proteins on its surface in order to prevent these proteins from initiating the invasion of host cells by the parasite. The main target protein for vaccines currently in development is the highly variable apical membrane antigen–1 (AMA-1). For 3 years, the authors of this study collected P. falciparum organisms that naturally infected 100 children, ages 3 months to 20 years, in a remote rural town. Because each child was repeatedly infected, the authors could determine which characteristics of the infecting parasite determined whether the child was protected from subsequent illness. Sequencing of the parasites’ AMA-1 genes revealed a startling amount of diversity; ~500 separate infections exhibited 214 unique combinations of altered nucleotides. The overall number of resulting amino acid changes in the AMA-1 protein from one infection to another determined whether the child would succumb to sickness with the second infection. That is, the child’s natural immunity from the first infection could only protect against illness in a subsequent infection if AMA-1 from the second infecting parasite was similar to that of the first. This seems like bad news for malaria vaccine development, but additional data suggest a new approach. The authors’ analysis points to a particular region of AMA-1 (domain I c1L) that is highly variable and is responsible for much of the parasite’s ability to escape control by the human immune system. Thus, a vaccine that elicits protective antibodies to the most common variations of this region might be effective. Understanding how natural immunity to P. falciparum can (and cannot) protect against malaria will help to harness our own immune systems for protection against this serious disease. Vaccines directed against the blood stages of Plasmodium falciparum malaria are intended to prevent the parasite from invading and replicating within host cells. No blood-stage malaria vaccine has shown clinical efficacy in humans. Most malaria vaccine antigens are parasite surface proteins that have evolved extensive genetic diversity, and this diversity could allow malaria parasites to escape vaccine-induced immunity. We examined the extent and within-host dynamics of genetic diversity in the blood-stage malaria vaccine antigen apical membrane antigen–1 in a longitudinal study in Mali. Two hundred and fourteen unique apical membrane antigen–1 haplotypes were identified among 506 human infections, and amino acid changes near a putative invasion machinery binding site were strongly associated with the development of clinical symptoms, suggesting that these residues may be important to consider in designing polyvalent apical membrane antigen–1 vaccines and in assessing vaccine efficacy in field trials. This extreme diversity may pose a serious obstacle to an effective polyvalent recombinant subunit apical membrane antigen–1 vaccine.


PLOS ONE | 2008

Safety and immunogenicity of an AMA1 malaria vaccine in Malian children: results of a phase 1 randomized controlled trial.

Mahamadou A. Thera; Ogobara K. Doumbo; Drissa Coulibaly; Dapa A. Diallo; Abdoulaye K. Kone; Ando Guindo; Karim Traore; Alassane Dicko; Issaka Sagara; Mahamadou S Sissoko; Mounirou Baby; Mady Sissoko; Issa Diarra; Amadou Niangaly; Amagana Dolo; Modibo Daou; Sory I. Diawara; D. Gray Heppner; V. Ann Stewart; Evelina Angov; Elke S. Bergmann-Leitner; David E. Lanar; Sheetij Dutta; Lorraine Soisson; Carter Diggs; Amanda Leach; Alex Owusu; Marie-Claude Dubois; Joe Cohen; Jason N. Nixon

Background The objective was to evaluate the safety, reactogenicity and immunogenicity of the AMA-1-based blood-stage malaria vaccine FMP2.1/AS02A in adults exposed to seasonal malaria. Methodology/Principal Findings A phase 1 double blind randomized controlled dose escalation trial was conducted in Bandiagara, Mali, West Africa, a rural town with intense seasonal transmission of Plasmodium falciparum malaria. The malaria vaccine FMP2.1/AS02A is a recombinant protein (FMP2.1) based on apical membrane antigen-1 (AMA-1) from the 3D7 clone of P. falciparum, adjuvanted with AS02A. The comparator vaccine was a cell-culture rabies virus vaccine (RabAvert). Sixty healthy, malaria-experienced adults aged 18–55 y were recruited into 2 cohorts and randomized to receive either a half dose or full dose of the malaria vaccine (FMP2.1 25 µg/AS02A 0.25 mL or FMP2.1 50 µg/AS02A 0.5 mL) or rabies vaccine given in 3 doses at 0, 1 and 2 mo, and were followed for 1 y. Solicited symptoms were assessed for 7 d and unsolicited symptoms for 30 d after each vaccination. Serious adverse events were assessed throughout the study. Titers of anti-AMA-1 antibodies were measured by ELISA and P. falciparum growth inhibition assays were performed on sera collected at pre- and post-vaccination time points. Transient local pain and swelling were common and more frequent in both malaria vaccine dosage groups than in the comparator group. Anti-AMA-1 antibodies increased significantly in both malaria vaccine groups, peaking at nearly 5-fold and more than 6-fold higher than baseline in the half-dose and full-dose groups, respectively. Conclusion/Significance The FMP2.1/AS02A vaccine had a good safety profile, was well-tolerated, and was highly immunogenic in malaria-exposed adults. This malaria vaccine is being evaluated in Phase 1 and 2 trials in children at this site. Trial Registration ClinicalTrials.gov NCT00308061


PLOS Medicine | 2007

Valid consent for genomic epidemiology in developing countries.

Dave A. Chokshi; Mahamadou A. Thera; Michael W. Parker; Mahamadou Diakite; Julie Makani; Dominic P. Kwiatkowski; Ogobara K. Doumbo

Drawing on experience gained from ongoing research in Mali, this paper describes practical ethical challenges relating to the achievement of valid consent in genomic epidemiology.

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Amadou Niangaly

University of the Sciences

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