Fungi
Late blight is a devastating plant disease caused by the oomycete Phytophthora infestans. Taxonomically, this pathogen belongs to the kingdom Chromista. It is best known for causing the Irish Potato Famine and remains one of the most significant threats to potato and tomato production worldwide. The pathogen functions as an obligate parasite, rapidly colonizing host tissues and causing necrosis.
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Selenophoma linicola
Selenophoma linicola
Selenosporium equiseti
Selenosporium equiseti
Selenosporium tricinctum
Selenosporium tricinctum
Septobasidium bogoriense
Septobasidium bogoriense
Septobasidium pilosum
Septobasidium pilosum
Septobasidium pseudopedicellatum
Septobasidium pseudopedicellatum
Septogloeum potentillae
Septogloeum potentillae
Septoria
Septoria
Septoria albopunctata
Septoria albopunctata
Septoria blotch of rye
Septoria secalis
Septoria brown spot
Septoria glycines
Septoria leaf blotch
Zymoseptoria tritici
Septoria leaf blotch
Sphaerella graminicola
Septoria leaf blotch
Septoria tritici
Septoria leaf blotch
Septoria selenophomoides
Septoria leaf blotch
Mycosphaerella graminicola
Septoria leaf spot
Septoria lycopersici
Septoria leaf spot of blueberry
Blueberry leaf
Septoria leaf spot of hop
Septoria humuli
Septoria leaf spot of lettuce
Septoria lactucae
Septoria leaf spot of mint
Septoriamenthae
Septoria leaf spot of pistachio
Septoria pistaciae
Septoria leaf spot of rhododendron
Septoria rhododendri
Septoria leaf spot of sorghum
Septoria holci
Septoria leaf spot of sunflower
Septoria helianthicola
Septoria leaf spot of sunflower
Septoria helianthina
Septoria leaf spot of sweet potato
Depazea batatas
Serrano golden
Serrano golden
Serratia marcescens
Serratia marcescens
Seshadri
Seshadri
Shallot latent virus
Shallot latent
Shimanuki
Shimanuki
Shot hole disease
Stigmina carpophila
Shot hole disease of stone fruits
Wilsonomyces carpophilus
Sida micrantha
Sida micrantha
Sida mottle virus
Sida mottle
Siddiqi
Siddiqi
Silicon deficiency
Silicon deficiency
Silver leaf fungus
Stereum purpureum
Silver scurf
Helminthosporium solani
Sinaloa tomato leaf curl virus
Sinaloa tomato
Slippers
Slippers
Smut fungi
Hot
Snow mold
Lanosa nivalis
Snow mold
Sclerotinia borealis
Soil-borne cereal pathogens
Soil-borne cereal
Soil-borne wheat mosaic virus
Soil-borne wheat
Soil-borne wheat mosaic virus
Wheat soil-borne
Sonchus yellow net virus
Sonchus yellow
Sooty mold
Fumago vagans
Sooty mold
Capnodium citri
Sooty mold of citrus
Capnodium citricola
Sorghum anthracnose
Colletotrichum sublineola
Sorghum chlorotic spot virus
Sorghum chlorotic
Sorghum downy mildew
Peronosclerospora sorghi
Sorghum downy mildew
Sclersopora sorghi
Sorghum ergot
Claviceps africana
Sorghum leaf spot
Phoma sorghina
Sorghum leaf spot
Ramulispora sorghi
Fungi
Symptoms typically begin as water-soaked lesions on the leaves, which eventually turn dark brown or black. Under humid conditions, a characteristic white fuzzy growth, representing sporangia, appears on the underside of the leaves. In potatoes, the tubers can also become infected, developing dark, sunken spots that render the produce unsuitable for consumption and storage.
The life cycle of the pathogen is highly adapted to environmental fluctuations. It produces motile zoospores that can swim through thin films of water to reach host tissues. Oospores are formed through sexual reproduction, allowing the pathogen to overwinter in soil debris. Sporangia are easily dispersed by wind, allowing the infection to travel over long distances, which complicates regional control efforts.
The development and spread of late blight are heavily dependent on weather conditions. It thrives in cool to moderate temperatures ranging from 15°C to 22°C, accompanied by prolonged leaf wetness or high humidity. Such environments accelerate the production and germination of sporangia, leading to explosive epidemics that can destroy large fields in a very short amount of time if left unmanaged.
Effective management requires an integrated approach. Growers should prioritize the use of resistant varieties, maintain proper crop rotation, and ensure adequate spacing between plants to improve airflow. Chemical control is often necessary, utilizing protectant and systemic fungicides strategically based on environmental forecasting. Early detection and rapid response are essential to limit the economic impact of the disease.