Summary:
Cutaneous leishmaniasis, a parasitic disease transmitted by sand flies, could be forecast months in advance in parts of North Africa using large-scale Atlantic climate signals alongside local weather conditions.
Researchers led by the Barcelona Institute for Global Health (ISGlobal), together with the Pasteur Institutes of Tunisia and Morocco and other collaborators, analysed the North Atlantic Oscillation and Atlantic Multidecadal Variability. Changes in these climate systems were associated with rainfall across Morocco and Tunisia on seasonal and longer timescales, corresponding with multiyear periods of higher and lower disease activity.
The team combined Atlantic climate signals with local temperature and precipitation in a transmission model for Leishmania major and Leishmania tropica. Incorporating this climate information improved predictive skill across the study settings, with forecasts reaching up to 12 months ahead. Gains were smaller in Tunisia, where Atlantic climate influence is weaker and less consistent.
The research, published in Science Advances, demonstrates that long-lead seasonal forecasting of a climate-sensitive vector-borne disease is feasible in the Mediterranean region. Earlier warning could give public health authorities more time for vector control, reservoir management and healthcare preparation.

— Press Release —
Study reveals that Atlantic climate variability enables the prediction of leishmaniasis outbreaks in North Africa
Climate variability in the Atlantic Ocean can help predict cutaneous leishmaniasis outbreaks in North Africa several months in advance. This is the finding of a new study led by the Barcelona Institute for Global Health (ISGlobal), a centre supported by the la Caixa Foundation, together with researchers from the Pasteur Institutes of Tunisia, Morocco and France. The study identifies how specific climate patterns affecting rainfall across the region influence, over different timescales, the transmission of this disease and make it possible to develop a seasonal forecasting system with up to one yearโs lead time.
Cutaneous leishmaniasis is a parasitic disease transmitted through the bite of Phlebotomine, tiny insects commonly known as โsand fliesโ. Although it is not usually life-threatening, it causes skin lesions and ulcers that may persist for months or even years and can leave permanent scarring, with significant physical, psychological and social consequences. It is estimated that there are around one million new cases worldwide each year, particularly across the Mediterranean Basin, the Middle East, Central Asia and the Americas.
Until now, early warning systems for climate-sensitive diseases had been developed mainly for tropical regions, where phenomena such as El Niรฑo make it possible to produce forecasts several months ahead. In temperate regions, by contrast, the atmosphere has been considered far less predictable, making it difficult to develop similar tools for vector-borne diseases.
The study shows that this limitation can be overcome by incorporating two major patterns of Atlantic climate variability: the North Atlantic Oscillation (NAO) and the Atlantic Multidecadal Variability (AMV). The NAO is an atmospheric phenomenon that modulates winds over the Atlantic and influences winter rainfall across Europe and North Africa, while the AMV describes slow changes in Atlantic sea surface temperatures that unfold over years or even decades. The studyโs findings show that the interaction between these two patterns modulates rainfall across North Africa and, indirectly, influences the evolution of leishmaniasis.
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From Atlantic climate to disease transmission
Variations in Atlantic sea surface temperatures alter atmospheric circulation and the winds that transport moisture towards North Africa, thereby influencing rainfall. These rains regulate vegetation growth in desert ecosystems and, in turn, the populations of rodents that act as reservoirs for the parasite. Because cutaneous leishmaniasis depends closely on this chain of processes, its occurrence can also be predicted from Atlantic climate signals.
โThe desert acts as a natural filter that reveals the Atlanticโs climate memory. Because it is influenced by fewer climate processes, it allows the Atlantic signal in rainfall patterns to be isolated much more clearly. Thanks to this, we identified a region where rainfall is remarkably predictable, the deserts of Tunisia and Morocco, and demonstrated that this predictability is also transferred to an infectious disease,โ says Adriร San-Josรฉ, ISGlobal researcher and first author of the study.
Building on this understanding of disease transmission, the research team developed a dynamic model that reproduces transmission of the parasite between humans, sand flies and rodents. The model integrates local temperature and rainfall with information from both the atmosphere and the Atlantic Ocean. As a result, it was able to predict both the timing and intensity of outbreaks of Leishmania major and Leishmania tropica in Morocco and Tunisia up to 12 months in advance. In Tunisia, however, where the Atlanticโs climatic influence is weaker and more heterogeneous, improvements in forecasting were more modest.
Implications for public health
โIt was widely believed that this type of forecasting was only possible in the tropics. What is remarkable is that we have identified a source of predictability in a temperate region as well and incorporated it into a model that is ready for operational use. In this respect, our study is clearly pioneering and opens up new opportunities to develop early warning systems in places where they were previously considered unfeasible,โ explains Xavier Rodรณ, ICREA researcher at ISGlobal and senior author of the study.
The ability to anticipate risk several months in advance provides valuable time to implement preventive measures, such as vector control, management of animal reservoirs and preparation of healthcare systems for potential outbreaks. Beyond leishmaniasis, the research team believes that the methodology developed could also be applied to other rainfall-modulated diseases across both Europe and North Africa.
Journal Reference:
San-Josรฉ, A., Aoun, K.; Lemrani, M., Lรณpez, L., Idris, M., Bouratbine, A., Paul, R., Rodรณ, X., ‘Coupled Atlantic atmosphere-ocean variability modulates cutaneous leishmaniasis in North Africa, enabling long-lead seasonal forecasts’, Science Advances 12, 34: eaeb0774 (2026). DOI: 10.1126/sciadv.aeb0774
Article Source:
Press Release/Material by Barcelona Institute for Global Health (ISGlobal)
Featured image credit: James Gathany | CDC






