Submitted:
21 July 2026
Posted:
21 July 2026
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Abstract
Keywords:
1. Introduction
2. Methods
3. Immunological and Virological Challenges in Dengue Vaccine Development
4. Licensed or Authorized Dengue Vaccines
4.1. CYD-TDV (Dengvaxia®, Sanofi Pasteur)
4.2. TAK-003 (Qdenga®, Takeda)
4.3. Butantan-DV
5. Vaccines in Advanced or Early Clinical Development
5.1. NIH TV003/TV005
5.2. Purified Inactivated Dengue Vaccines
5.3. DNA Vaccines
5.4. Viral-Vectored Vaccines
5.5. Virus-Like Particle Vaccines
5.6. mRNA Vaccines
5.7. Pan-Flavivirus and Universal Vaccine Approaches
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Challenge | Biological basis | Implications for vaccine development |
|---|---|---|
| Four antigenically distinct serotypes | DENV comprises DENV-1, DENV-2, DENV-3, and DENV-4. Infection with one serotype generally induces long-term homologous immunity but only transient and incomplete heterologous protection. | Vaccines must induce balanced and durable protection against all four serotypes rather than strong immunity against only one or two. |
| Antibody-dependent enhancement | Cross-reactive antibodies present at non-neutralizing or sub-neutralizing concentrations may facilitate viral entry into Fcγ receptor-bearing cells and increase the risk of severe dengue | Vaccines must elicit potent, durable, and functionally neutralizing antibodies while minimizing potentially enhancing responses. |
| Unequal tetravalent immunogenicity | Vaccine components may differ in replication fitness, antigen expression, and immunodominance. | Unbalanced responses may result in weaker protection against specific serotypes and leave recipients susceptible to heterologous infection. |
| Complex antigenic structure | Potent neutralizing antibodies frequently recognize conformational or quaternary epitopes displayed on mature, intact virions | Vaccine platforms should preserve native antigenic architecture and relevant virion conformations. |
| Absence of a definitive correlate of protection | Neutralizing antibody titers vary according to assay methods and do not consistently predict clinical protection across serotypes and populations. | Candidate selection and comparison between trials remain difficult; antibody quality and cellular immunity must also be considered. |
| Role of cellular immunity | CD4+ and CD8+ T cells recognize epitopes in structural and non-structural proteins, including NS1, NS3, and NS5, and contribute to viral clearance and disease modulation. | Platforms inducing both neutralizing antibodies and broad dengue-specific T-cell responses may provide more durable and heterotypic protection. |
| Baseline dengue serostatus | Prior dengue infection substantially influences vaccine immunogenicity, efficacy, and, for some vaccines, safety. | Vaccine performance must be evaluated separately in seropositive and seronegative individuals. |
| Viral genetic diversity | Each serotype comprises multiple genotypes and lineages that vary geographically and evolve over time. | Molecular surveillance is required to assess whether circulating strains influence vaccine effectiveness. |
| Population and epidemiological heterogeneity | Age, transmission intensity, prior flavivirus exposure, circulating serotypes, and host factors differ across settings. | Vaccination strategies cannot be uniformly applied and should be adapted to local epidemiology and target populations. |
| Programmatic feasibility | Multidose schedules, serological screening, cost, cold-chain requirements, and follow-up may limit uptake. | An ideal vaccine should be safe, affordable, effective after few doses, and suitable for large-scale implementation. |
| Characteristic | CYD-TDV (Dengvaxia®) | TAK-003 (Qdenga®) | Butantan-DV |
|---|---|---|---|
| Developer | Sanofi Pasteur | Takeda | Instituto Butantan and US NIH |
| Vaccine platform | Live-attenuated chimeric tetravalent vaccine using the yellow fever 17D backbone | Live-attenuated tetravalent vaccine based on an attenuated DENV-2 backbone | Live-attenuated tetravalent vaccine derived from the NIH TV003 platform |
| Vaccine composition | DENV-1-4 prM/E proteins expressed on a yellow fever 17D backbone | Attenuated DENV-2 plus chimeric DENV-1, DENV-3, and DENV-4 components on the DENV-2 backbone | Attenuated DENV-1, DENV-3, and DENV-4 strains plus a chimeric DENV-2 component |
| Dengue non-structural proteins | Absent; non-structural proteins are derived from yellow fever virus | Present and predominantly derived from DENV-2 | Present |
| Schedule | Three doses at 0, 6, and 12 months | Two doses three months apart | Single dose |
| Evidence in seropositive individuals | Strong protection against symptomatic, hospitalized, and severe dengue | Clinically meaningful protection against symptomatic dengue and hospitalization | High efficacy against symptomatic dengue and sustained protection against severe outcomes |
| Evidence in seronegative individuals | Increased long-term risk of hospitalized and severe dengue; use contraindicated without evidence of previous infection | Protection demonstrated, although efficacy is lower than in seropositive recipients and varies by serotype | Protection demonstrated, but lower than in seropositive individuals; evidence against DENV-3 and DENV-4 remains limited |
| Pre-vaccination serological screening | Required | Not routinely required | Not routinely required under the Brazilian authorization |
| Principal efficacy strengths | Effective in previously infected individuals; reduces hospitalization and severe dengue | Sustained protection against hospitalization in seropositive and seronegative recipients | Single-dose administration and efficacy in both seropositive and seronegative recipients |
| Principal limitations | Risk in seronegative individuals; three-dose schedule; lower efficacy against DENV-2; limited dengue-specific T-cell immunity | Heterogeneous serotype-specific efficacy, with uncertainty regarding DENV-3 and DENV-4 in seronegative populations | Limited data for DENV-3 and DENV-4; restricted international authorization; need for additional post-marketing safety data |
| Regulatory/public health position | Restricted to individuals with laboratory-confirmed previous dengue infection | Authorized in multiple jurisdictions; considered by WHO for children aged 6-16 years in high-transmission settings | Authorized in Brazil for selected age groups; broader use depends on further regulatory and safety assessment |
| Key references | [23,24,25,26,27,28,29,30,31,32,33] | [34,35,36,37,38,39,40,41,42,43,44,45] | [46,47,48,49,50,51,52,53] |
| Vaccine and study | Population and schedule | Follow-up | Principal efficacy findings | Key safety or interpretative findings |
|---|---|---|---|---|
| CYD-TDV, CYD14 [26] | 10,275 children aged 2-14 years in five Asian countries; three doses at 0, 6, and 12 months | Primary phase III analysis | Overall efficacy of 56.5% against virologically confirmed symptomatic dengue | Lower efficacy against DENV-2; subsequent follow-up identified increased hospitalization risk in younger recipients |
| CYD-TDV, CYD15 [27] | 20,869 participants aged 9-16 years in Latin America; three-dose schedule | Primary phase III analysis | Overall efficacy of 60.8% | Efficacy was higher in participants with previous dengue exposure |
| CYD-TDV, pooled and long-term analyses [28,29,30] | Participants from CYD14 and CYD15 | Multiyear follow-up | Overall pooled efficacy of 60.3%, increasing to 65.6% in participants aged ≥9 years | Baseline-seronegative recipients had an increased long-term risk of hospitalized and severe dengue; use was subsequently restricted |
| TAK-003, TIDES primary analysis [34] | 20,099 children and adolescents aged 4-16 years in eight endemic countries; two doses three months apart | 12 months after the second dose | Efficacy of 73.3% against virologically confirmed dengue and 80.2% against hospitalization | Protection was observed in both seropositive and seronegative participants |
| TAK-003, three-year analysis [42] | TIDES population | Approximately three years | Efficacy of 62.0% against virologically confirmed dengue and 83.6% against hospitalization | Among seronegative participants, efficacy was 54.3% against dengue and 77.1% against hospitalization |
| TAK-003, 4.5-year analysis [43] | TIDES population | 4.5 years | Efficacy of 61.2% against virologically confirmed dengue and 84.1% against hospitalization | Protection against hospitalization remained more durable than protection against symptomatic infection |
| TAK-003, extended follow-up [14,44] | TIDES population | Up to seven years | Persistent protection against dengue and dengue-related hospitalization | No signal suggestive of vaccine-associated disease enhancement was identified |
| Butantan-DV, phase III primary analysis [49] | 16,235 participants aged 2-59 years in Brazil; single dose | Two years | Overall efficacy of 79.6%; 73.6% in seronegative and 89.2% in seropositive participants | Efficacy was demonstrated against DENV-1 and DENV-2; insufficient cases were available for DENV-3 and DENV-4 |
| Butantan-DV, extended analysis [50] | Brazilian phase III population | Mean 3.7 years | Efficacy of 67.3% against virologically confirmed DENV-1 or DENV-2 disease | Protection persisted, although efficacy against symptomatic disease declined over time |
| Butantan-DV, five-year analysis [51] | Brazilian phase III population | Five years | Overall efficacy of 65.0%; 80.5% against severe dengue or dengue with warning signs | No vaccinated participant required hospitalization for dengue; data remained limited for DENV-3 and DENV-4 |
| Platform or candidate | Vaccine strategy | Stage of development | Main advantages | Principal limitations | References |
|---|---|---|---|---|---|
| NIH TV003/TV005 | Single-dose live-attenuated tetravalent vaccine containing attenuated DENV-1, DENV-3, and DENV-4 and a chimeric DENV-2 component | Phase I/II and controlled human infection studies; precursor of Butantan-DV | Broad tetravalent immunity after one dose; induction of humoral and cellular responses; protection in a DENV-2 challenge model | Limited direct phase III and regulatory development as an independent product | [47,54] |
| Purified inactivated dengue vaccines | Chemically inactivated whole-virus tetravalent formulations, generally combined with adjuvants | Phase I | Non-replicating platform; favorable theoretical safety profile; potential use when live vaccines are contraindicated | Modest durability of antibody responses; requirement for potent adjuvants, multiple doses, and possibly boosters | [55,56] |
| DNA vaccines | Plasmids encoding DENV prM/E proteins from one or more serotypes | Preclinical and phase I | Manufacturing simplicity, stability, absence of vaccine-virus replication, and induction of cellular immunity | Weak or inconsistent neutralizing antibody responses; repeated dosing required; no demonstrated clinical efficacy | [57,58,59] |
| Viral-vectored vaccines | Adenovirus-, vaccinia-, or measles-virus vectors expressing DENV structural or non-structural antigens | Preclinical and limited early-phase clinical studies | Strong intracellular antigen expression and potential induction of CD8+ T-cell responses | Uneven humoral responses, possible pre-existing vector immunity, and increased complexity of prime-boost strategies | [60] |
| Virus-like particle vaccines | Self-assembled structural proteins mimicking native virions without viral genetic material | Predominantly preclinical; limited human data | Non-replicating platform; preservation of conformational epitopes; manufacturing consistency | Difficulty achieving balanced tetravalent expression and durable immunity; possible need for adjuvants or repeated dosing | [61] |
| mRNA vaccines | Lipid nanoparticle-formulated mRNA encoding DENV envelope, prM/E, or selected antigens | Preclinical and early development | Rapid and scalable manufacturing; flexible antigen design; capacity to adjust serotype-specific antigen expression | No clinical efficacy data; optimal antigen design, dose, durability, and balance of tetravalent responses remain uncertain | [62] |
| Pan-flavivirus vaccines | Conserved envelope epitopes, non-structural proteins, or broadly reactive T-cell targets shared across flaviviruses | Discovery and preclinical development | Potential protection against dengue and other flaviviruses; utility for emerging pathogen preparedness | Risk of poorly neutralizing cross-reactive responses, uncertain correlates of protection, and complex regulatory pathway | [63] |
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