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Copyright © 2009 Prieur and Druilhe; licensee BioMed Central Ltd. The malaria candidate vaccine liver stage antigen-3 is highly conserved in Plasmodium falciparum isolates from diverse geographical areas 1Biochemical Parasitology Unit, Institut Pasteur, 25 rue du docteur Roux, 75724 Paris, France Corresponding author.Eric Prieur: prieur/at/pasteur.fr; Pierre Druilhe: druilhe/at/pasteur.fr Received August 12, 2009; Accepted October 29, 2009. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Abstract Background A high level of genetic stability has been formerly identified in segments of the gene coding for the liver stage antigen-3 (LSA-3), a subunit vaccine candidate against Plasmodium falciparum. The exploration of lsa-3 polymorphisms was extended to the whole sequence of this large antigen in 20 clinical isolates from four geographical areas; Senegal, Comoro islands, Brazil and Thailand. Methods The whole 4680 bp genomic sequence of lsa-3 was amplified by polymerase chain reaction and sequenced. The clinical isolate sequences were aligned on the sequence of the laboratory reference P. falciparum strain 3D7. Results The non-repeated sequence of lsa-3 was very well conserved with only a few allelic variations scattered along the sequence. Interestingly, a formerly identified immunodominant region, employed for the majority of pre-clinical vaccine development, was totally conserved at the genetic level. The most significant variations observed were in the number and organization of tetrapeptide repeated units, but not in their composition, resulting in different lengths of these repeated regions. The shorter repeated regions were from Brazilian origin. A correlation between the geographical distribution of the parasites with single nucleotide polymorphisms was not detected. Conclusion The lack of correlation between allelic polymorphisms with a specific transmission pressure suggests that LSA-3 is a structurally constrained molecule. The unusual characteristics of the lsa-3 gene make the molecule an interesting candidate for a subunit vaccine against malaria. Background The human malaria parasite Plasmodium falciparum is responsible for 300-500 million clinical cases and 1-2 million deaths every year mainly among young African children [1]. The incidence of malaria among travellers from non-endemic areas is on the rise [2]. The emergence and spread of resistances against anti-malarial drugs makes the development of a vaccine an urgent need. Naïve volunteers immunized with radiation-attenuated sporozoites [3], the form of the parasite injected in the host by a mosquito bite, but not killed parasites, were protected from a challenge with wild-type parasites. This observation suggests that the partial intra-hepatic development of the parasite was necessary to confer protection against the pre-erythrocytic (PE) stages of P. falciparum as it has been further verified with recently developed genetically attenuated parasites [4]. A subset of twenty parasite antigens expressed during the PE stages were identified by screening an expression library of P. falciparum with sera from Europeans living in endemic areas that followed a continuous prophylactic treatment against the pathogenic blood stages of the parasite [5]. The liver stage antigen-3 (LSA-3) was further selected using discriminating sera of volunteers immunized by radiation-attenuated parasites that were protected against an experimental challenge versus sera from volunteers receiving over-irradiated parasites who were not protected. LSA-3 is a molecule of 1558 amino acids in the strain 3D7 of P. falciparum, which includes a majority of non-repetitive sequences and a block of tetrapeptide repeats organized in a-helices [6,7]. These repeats contain the motif E-E-X-hydrophobic amino acid-E-E shared by three other parasite antigens; RESA, Pf11.1 and Ag332 [8] and recognized by a human monoclonal antibody developed against a parasite of Liberian origin [9]. LSA-3 is the only molecule of this cross-reacting family of glutamic acid dipeptides-containing antigens that is specifically expressed during the PE stages, both on the surface of sporozoites and in the parasitophorous membrane in the liver cells [7]. The immunogenicity and protective potential of LSA-3 was established by a series of murine and primate pre-clinical studies [7,10-12]. Its antigenicity was demonstrated by several immuno-epidemiological studies in malaria-exposed populations [13]. The implication of LSA-3 in the immune response against the PE stages was demonstrated in a murine model where intra-hepatic granulomas of immune cells developed both around the liver forms and around LSA-3 peptide-coated beads that were injected in the portal vein of LSA-3 immunized animals [14]. Recently, an early serodiagnosis test at the PE stages of P. falciparum infection was developed with a recombinant LSA-3 enzyme-linked immunosorbent assay in Burmese patients [15], and in French troops stationed in Africa (Pradines, Rogier, personal communication). The antigens polymorphism represents a major hurdle in the development of vaccines against malaria [16]. Natural epitope polymorphisms require to include all known alleles in a given vaccine formulation and, in addition can alter the nature of the immune response against the original epitope. Indeed, CSP-specific CD4+ T cells shifted their cytokine production from IFN-γ towards the immunosuppressive interleukin-10 in presence of the variant epitope called an altered peptide ligand (APL) [17]. Owing to the vaccine potential of LSA-3, the genetic stability of this antigen in clinical isolates from different areas of the world was investigated. The former results obtained on an immunodominant region of LSA-3 were confirmed in this study [7,10] and extended to the whole genetic sequence of lsa-3. Strikingly, this molecule appears to be strongly conserved in samples from such distant areas as South America, Africa and South East Asia. The only significant variations consisted in the number of tetrapeptides repeated units, but not in their composition. No obvious geographical pattern of allelic diversity in the lsa-3 gene was identified. This characteristic adds arguments in favour of the usefulness of this molecule in a subunit vaccine against malaria. Methods Genomic material from Plasmodium falciparum strains Genomic DNA from field isolates of the parasite blood stages was obtained by extraction with the Qiamp DNA blood minikit (Qiagen, USA) on blood samples received from Dielmo in Senegal (n = 7), Brazil (n = 5), Comoro islands (n = 6) and Thailand (n = 2). Nucleotide sequence data reported in this paper are available in the GenBank™, EMBL and DDBL databases under the accession numbers GQ222688-GQ22707. PCR amplification, cloning and sequencing of lsa-3 The complete sequence of lsa-3 was obtained by a set of six PCR amplifications (Figure (Figure1)1
Analysis of lsa-3 sequences The mutations observed after the two sets of PCR amplifications were considered as true polymorphisms whereas mutations observed after a single set of PCR were considered as errors introduced by the Taq polymerase in the amplification step. The sequencing traces were aligned with the SeqMan software (Lasergene, Germany). The derived nucleic and protein sequences were aligned by the MegAlign software (Lasergene, Germany) using the clustalW algorithm and compared to the lsa-3 sequence of the P. falciparum laboratory strain 3D7 believed to have originated from Africa [18]. Sequences coding for repeats in the molecule were further aligned manually (Additional file 1). The sequences corresponding to the short intron (Figure (Figure1)1 Results and discussion Amplification of the lsa-3 gene The amplification of the gene was achieved by using PCR primers based on the sequence of the previously cloned and fully sequenced lsa-3 gene from the strain K1 of P. falciparum [7]. A scheme of the DNA sequence of lsa-3 in the generic strain 3D7 is shown in the Figure Figure11 Polymorphism of lsa-3 at the genetic and protein levels in the non-repeated regions The sequences of the full length of the lsa-3 gene from the 20 clinical isolates were compared with the published sequence of the laboratory strain 3D7 [18]. The number of punctual mutations in the sequence coding for the large non-repeated regions of the molecule among the 20 isolates was remarkably low with only 15 single nucleotide polymorphisms (SNPs) out of 3444 base pairs (Figure (Figure22
The singleton variations could be classified in three categories (Figure (Figure2).2 The very low number of SNPs in lsa-3 compared to most of the actual malaria candidate vaccines, mainly expressed during the asexual blood stages (ABS), might relate to the PE expression of the protein. The PE antigens are likely less exposed to immunological pressure; Firstly, because of the tremendously lower numbers of PE schizonts as compared to ABS schizonts [21]. Secondly, once injected in the host blood by an infected mosquito, the sporozoites infect liver cells within a few minutes were they expand and mature inside hepatocytes hidden from antibodies. Finally, the liver maintains a tolerogenic response towards incoming harmless antigens [22] that might favour the development of the parasite. However, the sequence of msp-3 coding for the C-terminal region of the merozoite surface protein-3, which is expressed on the surface of merozoites in ABS that are more exposed to immune surveillance, was also remarkably conserved in the same clinical isolates [23]. These results suggest that, independently of the stage of expression, mechanisms such as structural constraints may drive the genetic stability observed in these antigens and act against the occurrence of mutations. Polymorphism of the repeated regions of lsa-3 The amplification of the sequence coding for the repeated contiguous regions I and II of LSA-3 showed considerable size variation ranging from 264 nucleotides in the isolate Bra 1853 to 1800 in the K1 strain, respectively (Figure (Figure3).3
The region I is composed of 14 tetrapeptides in the strain 3D7. Deletions of six tetrapeptides in isolates Bra 1915, Bra 1882 and Bra 1853 and insertions of two tetrapeptides in Com 524 were detected (Additional file 1). The polymorphism E253G was observed in all strains but not in the strain 3D7. This suggests that the glutamic acid residue at the position 253 of the LSA-3 protein in the strain 3D7 could result from an artificially introduced mutation during the sequencing process of the gene. The region II contributes the most to the repeat length heterogeneity between isolates (Figures (Figures33 The region III show little variations compared to the sequence of 3D7 composed of eleven tetrapeptides with only a tetrapeptide deletion in all strains but Tha 28 (no deletion) and Com 119 (two deletions) (Additional file 1). The repeats composition were identical in all strains apart from two polymorphisms in Sen 5533 changing a tetrapeptide IDED to a unique IEEN. The results show that apart from some unique repeats in region II, the composition of most of the tetrapeptide repeats was identical in all strains but solely their number and organisation in the repeated regions varied (Figures (Figures33 Overall, twenty-two SNPs scattered along the lsa-3 sequence (Figure (Figure22 The strong disparity in the number of repeats in region I and II suggest that the length of this area of the molecule is dispensable for the fitness of the parasite. The repetitive organization of these sequences usually produces B cell epitopes that are immunodominant in other genes, as compared to non-repeated regions. It has been proposed that repeated sequences might act on the intensity and quality of the immune response [24] and thus contribute to the immune escape of the parasite. A putative escape mechanism could be to divert the immune response from protective epitopes towards these repeated regions of the parasite antigens. However, in the case of LSA-3, detailed immunological studies in hyperendemic areas revealed that B-cell epitopes defined in non-repeated regions were as much the target of antibodies as the repeat blocks [13]. Hence, in contrast to other genes encoding repeats and particularly Glu-rich repeats, the Glu-rich block of LSA-3 does not seem to be immunodominant. The presence of such repeats in several malarial antigens and the network of cross-reactivity they generate across those molecules have been frequently stressed, however their functions remain poorly understood. Conclusion LSA-3 is a highly conserved antigen among clinical isolates of P. falciparum originating from diverse geographical areas. There is a significant allelic polymorphism solely in the number and organization of the repeated tetrapeptide units. These results question the functionality of the repeated regions of LSA-3 and other genes containing similar structures, and their interaction with the immune system. The paucity of single nucleotide polymorphisms is a positive feature for the development of LSA-3 as a deployable subunit vaccine candidate against malaria for populations living in endemic areas as well as for naïve travellers. However, the effect of LSA-3 repeats length on the host immune response should be carefully analysed and the vaccine candidate tailored accordingly. Competing interests The authors declare that they have no competing interests. Authors' contributions EP carried out the molecular genetic studies, the sequence alignment and drafted the manuscript. PD participated in the design of the study. Both authors read and approved the final manuscript. Additional file 1 Alignments of amino acid sequences corresponding to the repeated regions of the Plasmodium falciparum LSA-3 molecule. The sequences of LSA-3 from 20 clinical isolates from Senegal, Comoro islands, Brazil, Thailand and the laboratory strain K1 are compared to the one of the generic strain 3D7 (Plasmo dB accession number: PFB0915w). Click here for file(49K, RTF) Additional file 2 Alignments of amino acid sequences corresponding to the non-repeated regions of the Plasmodium falciparum LSA-3 molecule. The sequences of LSA-3 from 20 clinical isolates from Senegal, Comoro islands, Brazil, Thailand and the laboratory strain K1 are compared to the one of the generic strain 3D7 (Plasmo dB accession number: PFB0915w). Click here for file(62K, RTF) Acknowledgements This study was financially supported by a European Community grant number QLK2-CT-2001-01886. References
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PLoS Med. 2008 Feb; 5(2):e38.
[PLoS Med. 2008]Malar J. 2008 Apr 8; 7():56.
[Malar J. 2008]J Infect Dis. 2002 Apr 15; 185(8):1155-64.
[J Infect Dis. 2002]Proc Natl Acad Sci U S A. 2009 Aug 4; 106(31):13004-9.
[Proc Natl Acad Sci U S A. 2009]Bull World Health Organ. 1990; 68 Suppl():158-64.
[Bull World Health Organ. 1990]Exp Parasitol. 1995 Aug; 81(1):79-89.
[Exp Parasitol. 1995]Nat Med. 2000 Nov; 6(11):1258-63.
[Nat Med. 2000]Parasite Immunol. 1989 Jan; 11(1):15-29.
[Parasite Immunol. 1989]Nature. 1989 Apr 27; 338(6218):763-5.
[Nature. 1989]Indian J Pathol Microbiol. 2005 Oct; 48(4):429-38.
[Indian J Pathol Microbiol. 2005]Immunity. 1999 Jun; 10(6):651-60.
[Immunity. 1999]Nat Med. 2000 Nov; 6(11):1258-63.
[Nat Med. 2000]Eur J Immunol. 1997 May; 27(5):1242-53.
[Eur J Immunol. 1997]Nat Med. 2000 Nov; 6(11):1258-63.
[Nat Med. 2000]Nature. 2002 Oct 3; 419(6906):498-511.
[Nature. 2002]Nature. 2002 Oct 3; 419(6906):498-511.
[Nature. 2002]Nat Med. 2000 Nov; 6(11):1258-63.
[Nat Med. 2000]Nature. 2002 Oct 3; 419(6906):498-511.
[Nature. 2002]Nat Med. 2000 Nov; 6(11):1258-63.
[Nat Med. 2000]Eur J Immunol. 1997 May; 27(5):1242-53.
[Eur J Immunol. 1997]Exp Parasitol. 2008 May; 119(1):144-51.
[Exp Parasitol. 2008]Infect Immun. 2000 Jan; 68(1):227-32.
[Infect Immun. 2000]Cell Host Microbe. 2008 Sep 11; 4(3):209-18.
[Cell Host Microbe. 2008]Immunol Rev. 2000 Apr; 174():21-34.
[Immunol Rev. 2000]PLoS Med. 2007 Nov 13; 4(11):e320.
[PLoS Med. 2007]Biochim Biophys Acta. 1998 Feb 27; 1406(1):10-27.
[Biochim Biophys Acta. 1998]Infect Immun. 2009 Mar; 77(3):1189-96.
[Infect Immun. 2009]