Malaria parasite transmission remains a barrier to elimination since asymptomatic individuals sustain the infectious reservoir. Transmission-blocking vaccine (TBV) candidates targeting Plasmodium falciparum (Pf) gametocyte surface proteins Pfs230 and Pfs48/45 have shown promise in clinical trials. Several vaccine candidates have been developed for these antigens, yet it is unclear which elicit the most robust and durable transmission-blocking responses. From structure-function relationships of monoclonal antibodies in complex with both antigens, we report the development of a stabilized tandem antigen chimera (STAC), which presents the most potent epitopes from Pfs230 domain 1Â (Pfs230-D1) and Pfs48/45 domain 3Â (Pfs48/45-D3) in a single construct, while masking non-functional epitopes using an engineered pseudo-native domain disposition. Iterative structure-guided optimization improved antigen yields and stability, while nanoparticle-based multimerization enhanced the functional transmission-reducing activity elicited by the immunogen in female mice. Immunizations with STAC genetically conjugated to self-assembling protein nanoparticles elicited antibodies with potent transmission-reducing activity comparable or superior to the multimerized Pfs230-D1 and Pfs48/45-D3. These findings establish STAC as a promising next-generation TBV candidate to disrupt malaria transmission and accelerate elimination efforts. More broadly, our results support the engineering of highly ordered and stable multi-domain antigens in a single protein as a strategy for the cost-efficient development of multi-component vaccines.
A stabilized tandem antigen chimera that elicits potent malaria transmission-reducing activity.
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作者:Ivanochko Danton, Miura Kazutoyo, Hailemariam Sophia, Ravichandran Rashmi, Song Yiting, Huang Wei-Chiao, Stoter Rianne, Teelen Karina, van Gemert Geert-Jan, Leaf Elizabeth M, Chan Sidney, Men Christine, Semesi Anthony, Shiu Carol, MacGill Randall S, Long Carole A, Jore Matthijs M, King Neil P, Lovell Jonathan F, Julien Jean-Philippe
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2026 | 起止号: | 2026 Jan 24; 17(1):2010 |
| doi: | 10.1038/s41467-026-68761-1 | ||
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