Application Strategy and Research Progress of Large-Scale Population Drug Intervention in Malaria Control
Abstract
1. Introduction
2. Literature Search Strategy
3. Core Research Dimensions of MDA Anti-Malaria Strategy
3.1. Historical Context and Theoretical Foundations of MDA
3.2. Regional Variations in MDA Implementation in Tropical Regions
3.3. Key Implementation Factors and Cost-Effectiveness
3.4. The Balance Between Security and Ethical Management
3.5. Regional Analysis of Drug Resistance Risks in Tropical Regions
3.6. Limitations and Countermeasures for the Implementation of MDA in Tropical Regions
3.7. Synergistic Effects with Integrated Prevention and Control Systems
3.8. Future Strategy of MDA+
4. Summary
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Region | Sub-Saharan Africa (High Transmission, Resource-Poor) | Greater Mekong Subregion (Low Transmission, High Prevalence of Drug Resistance) | South America (Transboundary Spread Prominent) |
|---|---|---|---|
| MDA application condition | It is intended for use in the emergency suppression of outbreaks or rapid reduction in community parasite loads prior to seasonal transmission peaks, as a complement to vector control. | MDA is no longer recommended for the general population. It is primarily indicated for targeted clearance in specific high-risk populations (tMDA) or localized outbreak foci (fMDA). | It is suitable for local intervention in hard-to-reach cross-border migrant populations, specific occupational groups such as mining/forestry areas, or border transmission hotspots. |
| Core barriers and challenges |
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| Localization solutions |
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|
| Strategy | Applicable Context | Estimated Cost per Treatment Completed, USD | Key Cost Drivers | Benefit Characteristics |
|---|---|---|---|---|
| MDA | High transmission areas, emergency containment of outbreaks | $4.00–$8.00 | Drug procurement, large-scale logistics, and the mobilization of all staff for distribution | The incidence and mortality rates can be rapidly reduced in a short period of time, with significant scale effects. |
| tMDA | Low transmission areas/elimination phase, targeting high-risk subgroups | $12.00–$20.00+ | Screening and location costs (requiring initial identification of target populations) and labor costs for tracking migrant populations | Reducing drug waste and targeting infection sources precisely, but with high upfront identification costs. |
| fMDA | Low transmission areas, targeting identified outbreak villages or regions | $8.00–$15.00 | Hotspot identification and monitoring system and regional strengthened mobilization | Local areas should be cleared quickly to prevent the spread of the epidemic. |
| MDA + SMC Integration Mode | High seasonality transmission area, targeting the entire population (using SMC networks) | $3.00–$6.00 (Lower marginal cost) | Hotspot identification and monitoring system, regional strengthened mobilization | The high cost-effectiveness ratio enables synergy through existing platforms. |
| Region | Type | PfK13 Key Validation Mutation Prevalence | Status of Partner Drugs Used in Combination with ACT |
|---|---|---|---|
| Core resistance area | GMS (e.g., Cambodia, Thailand, Myanmar, border areas of Vietnam) | High (>15–50%+) (Common mutations: C580Y, Y493H, R539T, etc.) | Severe multidrug resistance |
| New threat area | Hotspots in East Africa (e.g., Rwanda, Uganda, parts of Tanzania) | Moderate/ascending (5–15%) (increased specific local mutations, such as R561H, A675V) | Still sensitive, but under threat |
| Relatively sensitive area | Most of sub-Saharan Africa (West Africa, Central Africa, and most of the high transmission areas in South Africa) | Low (<5%) (rare or below WHO alert in most areas) | Still sensitive |
| Other areas | The Amazon basin in South America and other regions | Local presence (sporadic >5%) (There is an independent origin of C580Y) | High variability |
| Limitation Category | Specific Manifestation in Tropics | Proposed Coping Strategies |
|---|---|---|
| Socio-cultural and Adherence | Tribal cultural barriers, distrust in modern medications, community fatigue caused by multiple rounds of medication, and challenges in reaching migrant populations. | Enhance community participatory design: Mobilize traditional leaders and local opinion leaders, adopt culturally appropriate outreach methods, transition to targeted tMDA in low-communication areas to minimize disruption to the general population. |
| Health System and Resources | The high dependence on resources and the extreme difficulty of logistics in remote tropical areas, as well as the frequent interruption of projects due to the discontinuation of external funding, have led to a resurgence of the epidemic. | Integration and Innovation: Utilize heat-resistant drugs to overcome cold chain bottlenecks, integrate MDA with existing SMC and EPI projects to share costs, and secure domestic fiscal commitments to reduce dependence on external single funding sources. |
| Biological and Technical | The inability to eradicate low-density infections of the asexual phase of Pf and dormant Pv parasites, the sensitivity of rapid diagnostic tests (RDT) is insufficient to support precise localization, and the potential risk of drug resistance. | Combination Toolkit: MDA must be combined with enhanced vector control, explore the use of single-dose tafquinine for eradication of Pv, introduce ultra-sensitive detection techniques to guide fMDA, and strictly monitor resistance markers. |
| Ethical Considerations | The ethical legitimacy of administering drugs to a large number of healthy, non-infected individuals in low-prevalence areas is questioned. | Transparency and precision: Establish robust informed consent mechanisms for communities and individuals, clarify the public health necessity of MDA, and, where possible, prioritize screening-based strategies over population-wide MDA to balance individual risks with collective benefits. |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Cao, Z.; Gu, Y.; Li, G.; Deng, C. Application Strategy and Research Progress of Large-Scale Population Drug Intervention in Malaria Control. Trop. Med. Infect. Dis. 2026, 11, 113. https://doi.org/10.3390/tropicalmed11050113
Cao Z, Gu Y, Li G, Deng C. Application Strategy and Research Progress of Large-Scale Population Drug Intervention in Malaria Control. Tropical Medicine and Infectious Disease. 2026; 11(5):113. https://doi.org/10.3390/tropicalmed11050113
Chicago/Turabian StyleCao, Zichao, Yunan Gu, Guoming Li, and Changsheng Deng. 2026. "Application Strategy and Research Progress of Large-Scale Population Drug Intervention in Malaria Control" Tropical Medicine and Infectious Disease 11, no. 5: 113. https://doi.org/10.3390/tropicalmed11050113
APA StyleCao, Z., Gu, Y., Li, G., & Deng, C. (2026). Application Strategy and Research Progress of Large-Scale Population Drug Intervention in Malaria Control. Tropical Medicine and Infectious Disease, 11(5), 113. https://doi.org/10.3390/tropicalmed11050113

