Results from tandem Phase 1 studies evaluating the safety, reactogenicity and immunogenicity of the vaccine candidate antigen Plasmodium falciparum FVO merozoite surface protein-1 (MSP1(42)) administered intramuscularly with adjuvant system AS01

Nekoye Otsyula, Evelina Angov, Elke Bergmann-Leitner, Margaret Koech, Farhat Khan, Jason Bennett, Lucas Otieno, James Cummings, Ben Andagalu, Donna Tosh, John Waitumbi, Nancy Richie, Meng Shi, Lori Miller, Walter Otieno, Godfrey Allan Otieno, Lisa Ware, Brent House, Olivier Godeaux, Marie-Claude Dubois, Bernhards Ogutu, W Ripley Ballou, Lorraine Soisson, Carter Diggs, Joe Cohen, Mark Polhemus, D Gray Heppner Jr, Christian F Ockenhouse, Michele D Spring, Nekoye Otsyula, Evelina Angov, Elke Bergmann-Leitner, Margaret Koech, Farhat Khan, Jason Bennett, Lucas Otieno, James Cummings, Ben Andagalu, Donna Tosh, John Waitumbi, Nancy Richie, Meng Shi, Lori Miller, Walter Otieno, Godfrey Allan Otieno, Lisa Ware, Brent House, Olivier Godeaux, Marie-Claude Dubois, Bernhards Ogutu, W Ripley Ballou, Lorraine Soisson, Carter Diggs, Joe Cohen, Mark Polhemus, D Gray Heppner Jr, Christian F Ockenhouse, Michele D Spring

Abstract

Background: The development of an asexual blood stage vaccine against Plasmodium falciparum malaria based on the major merozoite surface protein-1 (MSP1) antigen is founded on the protective efficacy observed in preclinical studies and induction of invasion and growth inhibitory antibody responses. The 42 kDa C-terminus of MSP1 has been developed as the recombinant protein vaccine antigen, and the 3D7 allotype, formulated with the Adjuvant System AS02A, has been evaluated extensively in human clinical trials. In preclinical rabbit studies, the FVO allele of MSP142 has been shown to have improved immunogenicity over the 3D7 allele, in terms of antibody titres as well as growth inhibitory activity of antibodies against both the heterologous 3D7 and homologous FVO parasites.

Methods: Two Phase 1 clinical studies were conducted to examine the safety, reactogenicity and immunogenicity of the FVO allele of MSP142 in the adjuvant system AS01 administered intramuscularly at 0-, 1-, and 2-months: one in the USA and, after evaluation of safety data results, one in Western Kenya. The US study was an open-label, dose escalation study of 10 and 50 μg doses of MSP142 in 26 adults, while the Kenya study, evaluating 30 volunteers, was a double-blind, randomized study of only the 50 μg dose with a rabies vaccine comparator.

Results: In these studies it was demonstrated that this vaccine formulation has an acceptable safety profile and is immunogenic in malaria-naïve and malaria-experienced populations. High titres of anti-MSP1 antibodies were induced in both study populations, although there was a limited number of volunteers whose serum demonstrated significant inhibition of blood-stage parasites as measured by growth inhibition assay. In the US volunteers, the antibodies generated exhibited better cross-reactivity to heterologous MSP1 alleles than a MSP1-based vaccine (3D7 allele) previously tested at both study sites.

Conclusions: Given that the primary effector mechanism for blood stage vaccine targets is humoral, the antibody responses demonstrated to this vaccine candidate, both quantitative (total antibody titres) and qualitative (functional antibodies inhibiting parasite growth) warrant further consideration of its application in endemic settings.

Trial registrations: Clinical Trials NCT00666380.

Figures

Figure 1
Figure 1
Subject flow chart for Phase 1 study in the USA.
Figure 2
Figure 2
Subject flow chart for Phase 1 study in Kenya.
Figure 3
Figure 3
Antibody titres to MSP142 FVO by ELISA. Log ELISA OD 1.0 titres are reported as the geomean and 95% confidence intervals (CIs). Hatched line and filled-in squares are Kenyan subjects receiving 50 μg MSP142 FVO/AS01, hatched lines and triangles are Kenyan subjects receiving rabies vaccine, solid lines and filled in circles are US subjects receiving 10 μg MSP142 FVO/AS01 and solid line with open diamond are US subjects receiving 50 μg MSP142 FVO/AS01. X axis is day of study and Y axis is dilution reporting an OD =1.0 of MSP142 specific antibody. Plate antigen was the WRAIR E. coli expressed recombinant protein, MSP142 FVO.
Figure 4
Figure 4
Results of serum GIA for 10 μg and 50 μg MSP142 (FVO)/AS01 vaccine in malaria-naïve adults. Percent parasite growth inhibition against P. falciparum FVO clone parasites from the US MSP142 FVO/AS01 study. The net percent growth inhibition of pre-and post third immunization sera obtained for 10 μg and 50 μg MSP142/AS01 dose subjects is shown tested at 20% (v/v, final). Dashed horizontal lines indicate the median response, while the filled bars indicate the 25 and 75% quartiles. Individual responses are represented as either filled circles for the 10 μg or filled squares for the 50 μg dose subjects. P value calculated from two-tailed t-test.
Figure 5
Figure 5
Results of serum GIA against Plasmodium falciparum FVO parasites for subjects receiving rabies vaccine and the 50 μg MSP142 (FVO)/AS01 vaccines in both Phase 1 studies. Percent parasite growth inhibition against the P. falciparum FVO clone parasites, comparing serum antibody responses obtained from Kenyan adults and US naïve subjects immunized with the 50 μg dose of MSP142 FVO/AS01. Left panel are the day 0 and post third immunization, day 70, responses from Kenya adults either receiving the rabies comparator control vaccine or the 50 μg dose of MSP142 FVO/AS01. Right panel are the net percent growth inhibitory responses for the US subjects receiving the 50 μg dose of MSP142 FVO/AS01. Dashed horizontal lines indicate median responses, while the filled lines indicate the 25 and 75% quartiles. Individual responses are represented as either filled circles for the Kenyan adults receiving the rabies vaccine, filled triangles for the Kenyan adults receiving the MSP142 FVO/AS01 vaccine or filled gray squares for the US naïve subjects receiving the 50 μg dose MSP142 FVO/AS01.
Figure 6
Figure 6
Allele specific antibody titres to 50 μg MSP142 (FVO)/AS01 vs 50 μg MSP142 (3D7)/AS02 post third immunization. Comparison of MSP142 allele specific antibody responses induced by immunization with 50 μg MSP142 3D7/AS02 and MSP142 FVO/AS01. Log ELISA OD 1.0 titres are reported as the median and 25 and 75% quartile antibody response. Hatched boxes indicate the antigen specific antibody responses induced by the MSP142 3D7/AS02 vaccine, a study conducted at WRAIR in 2001 (reference 7), and open boxes indicate the responses induced by the MSP142 FVO/AS01 vaccine. Plate antigens were the WRAIR E. coli expressed recombinant proteins, MSP142 3D7, FVO and CAMP alleles. P values are calculated from two-tailed t-tests.

References

    1. RTS,S Clinical Trial Partnership. First results of Phase 3 trial of RTS,S/AS01 malaria vaccine in African children. N Engl J Med. 2011;365:1863–1875.
    1. Heppner DG Jr, Kester KE, Ockenhouse CF, Tornieporth N, Ofori O, Lyon JA, Stewart VA, Dubois P, Lanar DE, Krzych U, Moris P, Angov E, Cummings JF, Leach A, Hall BT, Dutta S, Schwenk R, Hillier C, Barbosa A, Ware LA, Nair L, Darko CA, Withers MR, Ogutu B, Polhemus ME, Fukuda M, Pichyangkul S, Gettyacamin M, Diggs C, Soisson L. Towards an RTS,S-based, multi-stage, multi-antigen vaccine against falciparum malaria: progress at the Walter Reed Army Institute of Research. Vaccine. 2005;18:2243–2250. et al.
    1. Hui GS, Gosnell WL, Case SE, Hashiro D, Nikaido C, Hashimoto A, Kaslow DC. Immunogenicity of the C-terminal 19-kDa fragment of the Plasmodium falciparum merozoite surface protein 1 (MSP1), YMSP119 expressed in S. cerevisiae. J Immunol. 1994;153:2544–2553.
    1. Udhayakumar V, Anyona D, Kariuki S, Shi YP, Bloland PB, Branch OH, Weiss W, Nahlen BL, Kaslow DC, Lal AA. Identification of T and B cell epitopes recognized by humans in the C-terminal 42-kDa domain of the Plasmodium falciparum merozoite surface protein (MSP1) J Immunol. 1995;154:6022–6030.
    1. Renia L, Ling IT, Marussig M, Miltgen F, Holder AA, Mazier D. Immunization with a recombinant C-terminal fragment of Plasmodium yoelii merozoite surface protein 1 protects mice against homologous but not heterologous P. yoelii sporozoite challenge. Infect Immun. 1997;65:4419–4423.
    1. Lyon JA, Angov E, Kay MP, Sullivan JS, Giroud AS, Robinson SJ, Bergmann-Leitner ES, Duncan EH, Darko CA, Collins WE, Long CA, Barnwell JW. Protection induced by Plasmodium falciparum MSP142 is strain-specific, antigen and adjuvant dependent, and correlates with antibody responses. PLoS One. 2008;3:e2830. doi: 10.1371/journal.pone.0002830.
    1. Angov E, Aufiero BA, Van Handenhove M, Ockenhouse CF, Kester K, Walsh D, McBride JS, Dubois MC, Cohen J, Haynes JD, Eckels KH, Heppner DH, Ballou WR, Diggs CL, Lyon JA. Development and preclinical analysis of a recombinant P. falciparum Merozoite Surface Protein-142 malaria vaccine. Mol Biochem Parasitol. 2003;128:195–204. doi: 10.1016/S0166-6851(03)00077-X.
    1. Ockenhouse CF, Angov EA, Kester KE, Diggs C, Soisson L, Cummings JF, Stewart VA, Palmer DP, Mahajan B, Krzych U, Tornieporth N, Delchambre M, Vanhandenhove M, Ofori-Anyinam O, Cohen J, Lyon JA, Heppner DG. Phase 1 safety and immunogenicity trial of FMP1/AS02A, a Plasmodium falciparum MSP-1 asexual blood stage vaccine. Vaccine. 2006;24:3009–3017. doi: 10.1016/j.vaccine.2005.11.028.
    1. Stoute JA, Gombe J, Withers MR, Siangla J, McKinney D, Onyango M, Cummings JF, Milman J, Tucker K, Soisson L, Stewart VA, Lyon JA, Angov EA, Leach A, Cohen J, Kester KE, Ockenhouse CF, Holland CA, Diggs CL, Wittes J, Heppner DG. Phase 1 randomized double-blind safety and immunogenicity trial of Plasmodium falciparum malaria merozoite surface protein FMP1 vaccine, adjuvanted with AS02A, in adults in western Kenya. Vaccine. 2006;25:176–184.
    1. Thera MA, Doumbo OK, Coulibaly D, Diallo DA, Sagara I, Dicko A, Diemert DJ, Heppner DG, Stewart VA, Angov EA, Soisson L, Leach A, Tucker K, Lyke KE, Plowe CV. Mali FMP1 Working Group. Safety and allele specific immunogenicity of a malaria vaccine in adults: Results of a Phase 1 randomized trial. PLoS Clin Trials. 2006;1:e34. doi: 10.1371/journal.pctr.0010034.
    1. Withers MR, McKinney D, Ogutu BR, Waitumbi JN, Milman JB, Apollo OJ, Allen OG, Tucker K, Soisson LA, Diggs C, Leach A, Wittes J, Dubovsky F, Stewart VA, Remich SA, Cohen J, Ballou WR, Holland CA, Lyon JA, Angov EA, Stoute JA, Martin SK, Heppner DG. MSP-1 Malaria Vaccine Working Group. Safety and Reactogenicity of an MSP-1 malaria vaccine candidate: A randomized Phase 1b dose escalation trial in Kenyan children. PLoS Clin Trials. 2006;1:e32. doi: 10.1371/journal.pctr.0010032.
    1. Ogutu BR, Apollo OJ, McKinney D, Okoth W, Siangla J, Dubovsky F, Tucker K, Waitumbi JN, Diggs C, Wittes J, Malkin E, Leach A, Soisson LA, Milman JB, Otieno L, Holland CA, Polhemus M, Remich SA, Ockenhouse CF, Cohen J, Ballou WR, Martin SK, Angov EA, Stewart VA, Lyon JA, Heppner DG. MR for the MSP-1 Malaria Vaccine Working Group. Blood stage malaria vaccine eliciting high antigen-specific antibody concentrations confers no protection to young children in Western Kenya. PLoS One. 2009;4:e4708. doi: 10.1371/journal.pone.0004708.
    1. Genton B, Betuela I, Felger I, Al-Yaman A, Anders RF, Saul A, Baea K, Mellombo M, Taraika J, Brown GV, Pye D, Irving DO, Felger I, Beck HP, Smith TA, Alpers MP. A recombinant blood stage malaria vaccine reduces Plasmodium falciparum density and exerts selective pressure on parasite populations in a Phase 1-2b trial in Papua New Guinea. J Infect Dis. 2002;185:820–827. doi: 10.1086/339342.
    1. Singh S, Kennedy MC, Long CA, Saul AJ, Miller LH, Stowers AW. Biochemical and immunological characterization of bacterially expressed and refolded Plasmodium falciparum 42-kilodalton C-terminal merozoite surface protein 1. Infect Immun. 2003;71:6766–6774. doi: 10.1128/IAI.71.12.6766-6774.2003.
    1. Darko CA, Angov E, Collins WE, Bergmann-Leitner ES, Girouard AS, Hitt SL, McBride JS, Diggs CL, Holder AA, Long CA, Barnwell JW, Lyon JA. Clinical grade Plasmodium falciparum FVO MSP142 Expressed in Escherichia coli protects Aotus nancymai against homologous erythrocytic-stage challenge. Infect Immun. 2005;73:287–297. doi: 10.1128/IAI.73.1.287-297.2005.
    1. Chang SP, Case SE, Gosnell WL, Hashimoto A, Kramer KJ, Tam LQ, Hashiro CQ, Nikaido CM, Gibson HL, Lee-Ng CT, Barr PJ, Yokota BT, Hui GS. A recombinant baculovirus 42-kilodalton C-terminal fragment of Plasmodium falciparum merozoite surface protein 1 protects Aotus monkeys against malaria. Infect Immun. 1996;64:253–261.
    1. Stowers AW, Chen LH, Zhang Y, Kennedy MC, Zou L, Lambert L, Rice TJ, Kaslow DC, Saul A, Long CA, Meade H, Miller LH. A recombinant vaccine expressed in the milk of transgenic mice protects Aotus monkeys from a lethal challenge with Plasmodium falciparum. Proc Natl Acad Sci USA. 2002;99:339–344. doi: 10.1073/pnas.012590199.
    1. Stowers AW, Cioce V, Shimp RL, Lawson M, Hui G, Muratova O, Kaslow DC, Robinson R, Long CA, Miller LH. Efficacy of two alternate vaccines based on Plasmodium falciparum merozoite surface protein 1 in an Aotus challenge trial. Infect Immun. 2001;69:1536–1546. doi: 10.1128/IAI.69.3.1536-1546.2001.
    1. Persson KE, Lee CT, Marsh K, Beeson JG. Development and optimization of high throughput methods to measure Plasmodium falciparum-specific growth inhibitory antibodies. J Clin Microbiol. 2006;44:1665–1673. doi: 10.1128/JCM.44.5.1665-1673.2006.
    1. Bergmann-Leitner ES, Duncan EH, Burge JR, Spring M, Angov E. Miniaturization of a high-throughput pLDH-based Plasmodium falciparum growth inhibition assay for small volume samples from preclinical and clinical vaccine trials. Am J Trop Med Hyg. 2008;78:468–471.
    1. Polhemus ME, Remich SA, Ogutu BR, Waitumbi JN, Otieno L, Apollo S, Cummings JF, Kester KE, Ockenhouse CF, Stewart A, Ofori-Anyinam O, Ramboer I, Cahill CP, Lievens M, Dubois MC, Demoitie MA, Leach A, Cohen J, Ballou WR, Heppner DG Jr. Evaluation of RTS, S/AS02A and RTS, S/AS01B in adults in a high malaria transmission area. PLoS One. 2009;4:e6465. doi: 10.1371/journal.pone.0006465.
    1. Spring MD, Cummings JF, Ockenhouse CF, Dutta S, Reideler R, Angov E, Bergmann-Leitner E, Stewart VA, Bittner S, Juompan L, Kortepeter MK, Nielsen R, Krzych U, Tierney E, Ware LA, Dowler M, Hermsen CC, Sauerwein RW, De Vlas SJ, Ofori-Anyinam O, Lanar DE, Williams JL, Kester KE, Tucker K, Shi M, Malkin E, Long C, Diggs CL, Soisson L, Dubois MC. Phase 1/2a study comparing the safety, immunogenicity and efficacy of the malaria vaccine candidate Apical Membrane Antigen-1 (AMA-1) in adjuvant AS01B or AS02A in malaria-naïve adults. PLoS One. 2009;4:e5254. doi: 10.1371/journal.pone.0005254. et al.
    1. Cummings JF, Spring MD, Schwenk RJ, Ockenhouse CF, Kester KE, Polhemus ME, Walsh DS, Yoon IK, Prosperi C, Juompan LY, Lanar DE, Krzych U, Hall BT, Ware LA, Stewart VA, Williams J, Dowler M, Nielsen RK, Hillier CJ, Giersing BK, Dubovsky F, Malkin E, Tucker K, Dubois MC, Cohen JD, Ballou WR, Heppner DG. Recombinant Liver Stage Antigen-1 (LSA-1) formulated with AS01 or AS02 is safe, elicits high titer antibody and induces IFN-gamma/IL-2 CD4+ T cells but does not protect against experimental Plasmodium falciparum infection. Vaccine. 2009;28:5135–5144.
    1. Kester KE, Cummings JF, Ofori-Anyinam O, Ockenhouse CF, Krzych U, Moris P, Schwenk R, Nielsen RA, Debebe Z, Pinelis E, Juompan L, Williams J, Dowler M, Stewart VA, Wirtz RA, Dubois MC, Lievens M, Cohen J, Ballou WR, Heppner DG Jr. RTS, S Vaccine Evaluation Group. Randomized, double-blind, phase 2a trial of falciparum malaria vaccines RTS, S/AS01B and RTS, S/AS02A in malaria-naive adults: safety, efficacy, and immunologic associates of protection. J Infect Dis. 2009;200:337–346. doi: 10.1086/600120.
    1. Dluzewski AR, Ling IT, Hopkins JM, Grainger M, Margos G, Mitchell GH, Holder AA, Bannister LH. Formation of the food vacuole in Plasmodium falciparum: a potential role for the 19 kDa fragment of merozoite surface protein 1 (MSP1(19)) PLoS One. 2008;3:e3085. doi: 10.1371/journal.pone.0003085.
    1. Bergmann-Leitner ES, Duncan EH, Angov E. MSP-1p42-specific antibodies affect growth and development of intra-erythrocytic parasites of Plasmodium falciparum. Malar J. 2009;8:183. doi: 10.1186/1475-2875-8-183.
    1. Malkin E, Long CA, Stowers AW, Zou L, Singh S, MacDonald NJ, Narum DL, Miles AP, Orcutt AC, Muratova O, MOretz SE, Zhou H, Diouf A, Fay M, Tierney E, Leese P, Mahanty S, Miller LH, Saul A, Marton LB. Phase 1 study of two merozoite surface protein 1 (MSP142) vaccines for Plasmodium falciparum malaria. PLoS Clin Trials. 2007;2:e12. doi: 10.1371/journal.pctr.0020012.
    1. Ellis RD, Martin LB, Shaffer D, Long CA, Miura K, Fay MP, Narum DL, Zhu D, Mullen GED, Mahanty S, Miller LH, Durbin AP. Phase 1 trial of the Plasmodium falciparum blood stage vaccine MSP1(42)-C1/Alhydrogel with and without CPG 7909 in malaria naïve adults. PLoS One. 2010;5:e8787. doi: 10.1371/journal.pone.0008787.
    1. Dent AE, Bergmann-Leitner ES, Wilson DW, Tisch DJ, Kimmel R, Vulule J, Sumba PO, Beeson JG, Angov EA, Moormann AM, Kazura JW. Antibody-mediated growth inhibition of Plasmodium falciparum: relationship to age and protection from parasitemia in Kenyan children and adults. PLoS One. 2008;3:e3557. doi: 10.1371/journal.pone.0003557.
    1. Perraut R, Marrama L, Diouf B, Sokhna C, Tall A, Nabeth P, Trape JF, Longacre S, Mercereau-Puijalon O. Antibodies to the conserved C-terminal domain of the Plasmodium falciparum merozoite surface protein 1 and to the merozoite extract and their relationship with in vitro inhibitory antibodies and protection against clinical malaria in a Senegalese village. J Infect Dis. 2005;191:264–271. doi: 10.1086/426398.
    1. Courtin D, Oesterholt M, Huismans H, Kusi K, Milet J, Badaut C, Gaye O, Roeffen W, Remarque EJ, Sauerwein R, Garcia A, Luty AJF. The quantity and quality of African children’s IgG responses to merozoite surface antigens reflect protection against Plasmodium falciparum malaria. PLoS One. 2009;4:e7590. doi: 10.1371/journal.pone.0007590.
    1. McCallum FJ, Persson KE, Mugyenyi CK, Fowkes FJ, Simpson JA, Richards JS, Williams TN, Marsh K, Beeson JG. Acquisition of growth-inhibitory antibodies against blood-stage Plasmodium falciparum. PLoS One. 2008;3:e3571. doi: 10.1371/journal.pone.0003571.
    1. Crompton PD, Miura K, Traore B, Kayentao K, Ongoiba A, Weiss G, Doumbo S, Doumtabe D, Kone Y, Huang CY, Doumbo OK, Miller LH, Long CA, Pierce SK. In vitro growth inhibitory activity and malaria risk in a cohort study in Mali. Infect Immun. 2010;78:737–745. doi: 10.1128/IAI.00960-09.
    1. Holder AA, Guevara Patiño JA, Uthaipibull C, Syed SE, Ling IT, Scott-Finnigan T, Blackman MJ. Merozoite surface protein 1, immune evasion, and vaccines against asexual blood stage malaria. Parassitologia. 1999;41:409–414.
    1. Nwuba RI, Sodeinde O, Anumudu CI, Omosun YO, Odaibo AB, Holder AA, Nwagwu M. The human immune response to Plasmodium falciparum includes both antibodies that inhibit merozoite surface protein 1 secondary processing and blocking antibodies. Infect Immun. 2002;70:5328–5331. doi: 10.1128/IAI.70.9.5328-5331.2002.
    1. Okech BA, Corran PH, Todd J, Joynson-Hicks A, Uthaipibull C, Egwang TG, Holder AA, Riley EM. Fine specificity of serum antibodies to Plasmodium falciparum merozoite surface protein, PfMSP1(19), predicts protection from malaria infection and high-density parasitemia. Infect Immun. 2004;72:1557–1567. doi: 10.1128/IAI.72.3.1557-1567.2004.
    1. De Koning-Ward TF, O’Donnell RA, Drew DR, Thomson R, Speed TP, Crabb BS. A new rodent model to assess blood stage immunity to the Plasmodium falciparum antigen merozoite surface protein 119 reveals a protective role for invasion inhibitory antibodies. J Exp Med. 2003;198:869–875. doi: 10.1084/jem.20030085.
    1. Galamo CD, Jafarshad A, Blanc C, Druilhe P. Anti-MSP1 block 2 antibodies are effective at parasite killing in an allele-specific manner by monocyte-mediated antibody-dependent cellular inhibition. J Infect Dis. 2009;199:1151–1154. doi: 10.1086/597426.
    1. McIntosh RS, Shi J, Jennings RM, Chappel JC, De Koning-Ward TF, Smith T, Green J, Van Egmond M, Leusen JHW, Lazarou M, Van de Winkel J, Jones TS, Crabb BS, Holder AA, Pleass RJ. The importance of human FcgammaRI in mediating protection to malaria. PLoS Pathog. 2007;3:e72. doi: 10.1371/journal.ppat.0030072.

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