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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Sorghum mosaic
Sorghum mosaic
Sorghum mosaic
Sorghum mosaic
Sorghum ramulispora leaf spot
Ramulispora sorghicola
Sorghum rust
Puccinia purpurea
Sorghum smut
Sporisorium ehrenbergii
Sorghum stunt
Sorghum stunt
Sorghum yellow dwarf
Yellow sorghum
Sorghum yellow dwarf virus
Sorghum yellow
Sosa
Sosa
Sour cherry
Sour cherry
Southern bean mosaic virus
Southern bean
Southern blight
Athelia rolsfii
Southern Blight
Sclerotium rolfsii
Southern blight
Pellicularia rolfsii
Southern corn leaf blight
Bipolaris maydis
Southern corn leaf blight
Drechslera maydis
Southern Corn Leaf Blight
Helminthosporium maydis
Southern rice black-streaked dwarf virus
Southern rice
Sowbane mosaic
Sowbane mosaic
Sowthistle yellow vein virus
Sowthistle yellow
Soybean chlorotic mottle virus
Soybean chlorotic
Soybean chlorotic mottle virus
Soybean chlorotic
Soybean crinkle
Soybean crinkle
Soybean downy mildew
Soybean
Soybean drechslera blight
Drechslera glycines
Soybean dwarf
Soybean dwarf
Soybean dwarf virus
Soybean dwarf
Soybean dwarf virus
Soybean dwarf
Soybean mild mosaic virus
Soybean mild
Soybean mild mosaic virus
Soybean mild
Soybean mosaic
Soybean mosaic
Soybean mosaic
Glycine mosaic
Soybean mosaic virus
Soybean blistering
Soybean mosaic virus
Soybean yellow
Soybean mosaic virus
Indonesian soybean
Soybean powdery mildew
Erysiphe glycines
Soybean scab
Sphaceloma glycines
Soybean severe stunt virus
Soybean severe
Soybean stunt virus
Soybean stunt
Soybean vein necrosis virus
Soybean vein
Soybean yellow mosaic virus
Soybean yellow
Spencermartinsia viticola
Spencermartinsia viticola
Spencermartinsia westrale
Spencermartinsia westrale
Spermoedia microcephala
Spermoedia microcephala
Sphacelia sorghi
Sphacelia sorghi
Sphaceloma perseae
Sphaceloma perseae
Sphaerella exitialis
Sphaerella exitialis
Sphaerella tassiana
Sphaerella tassiana
Sphaeria alopecuri
Sphaeria alopecuri
Sphaeria graminicola
Sphaeria graminicola
Sphaeria graminis
Sphaeria graminis
Sphaerodothis acrocomiola
Sphaerodothis acrocomiola
Sphaeronaema fimbriatum
Sphaeronaema fimbriatum
Sphaeropsis porosa
Sphaeropsis porosa
Sphaeropsis rot
Sphaeropsis malorum
Sphaerotheca
Sphaerotheca
Sphaerotheca fusca
Sphaerotheca fusca
Sphaerotheca humuli
Sphaerotheca humuli
Sphaerulina oryzina
Sphaerulina oryzina
Sphaerulina rehmiana
Sphaerulina rehmiana
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.