Pyralidae
Pyralid moths (Pyralidae) are a vast family of Lepidoptera, comprising thousands of species worldwide. Adult moths generally possess slender bodies and narrow wings that are typically folded along the body when at rest, creating a triangular or elongated profile.
What the section contains
Lima bean pod borer
Etiella grisea
Limnanthes leaf moth
Monoptilota pergratialis
Liriodendron borer
Euzophera ostricolorella
Macalla
Macalla
Macalla moncusalis
Macalla moncusalis
Mango leaf webber
Orthaga exvinacea
Manioc moth
Pyralis manihotalis
Mediterranean flour moth
Ephestia kuehniella
Mediterranean flour moth
Ephestia
Melitara
Melitara
Melitara nephelepasa
Melitara nephelepasa
Mescinia
Mescinia
Mescinia peruella
Mescinia peruella
Meyriccia
Meyriccia
Meyriccia latro
Meyriccia latro
Mill moth
Moodna bisinuella
Mimoschinia
Mimoschinia
Mimoschinia rufofascialis
Mimoschinia rufofascialis
Mineola
Mineola
Monoptilota
Monoptilota
Moodna
Moodna
Mugwort borer
Euzophera cinerosella
Myelois moth
Myelois
Navel orangeworm
Amyelois transitella
Nephopterix
Nephopterix
Nephopterix beharella moth
Nephopterix beharella
Northern nut borer
Acrobasis septentrionella
Oak knot horn
Acrobasis tumidella
Oak knot-horn
Phycita roborella
Oak knot-horn moth
Acrobasis sylviella
Oak knot-horn moth
Acrobasis tumidana
Oak leaf-roller moth
Acrobasis consociella
Orthaga
Orthaga
Orthaga euandrusalis
Orthaga euandrusalis
Palm moth
Tirathaba mundella
Palm moth
Tirathaba rufivena
Paralipsa
Paralipsa
Pear fruit borer
Euzophera pyriella
Pecan nut casebearer
Acrobasis caryae
Pecan nut casebearer
Acrobasis caryaevorella
Pecan nut casebearer
Acrobasis demotella
Pecan nut casebearer
Acrobasis nuxvorella
Pempelia moth
Pempelia
Phycita
Phycita
Phycita clientella
Phycita clientella
Phycita fuscopilella
Phycita fuscopilella
Phycita poteriella
Phycita poteriella
Phycita rubizonella
Phycita rubizonella
Pine cone moth
Dioryctria clarioralis
Pine cone moth
Dioryctria disclusa
Pine cone moth
Dioryctria mutatella
Pine cone moth
Dioryctria rubella
Pine coneworm
Dioryctria auranticella
Pine moth
Dioryctria ponderosa
Pine moth
Dioryctria xanthaenobares
Pine webworm
Tetralopha robustella
Pistachio fruit moth
Myelois duplipunctatella
Plum fruit moth
Acrobasis suavella
Plum fruit moth
Euzophera plumbeifasciella
Plum moth
Acrobasis stigmella
Products in this section · 12
Pyralidae
The coloration of these moths ranges from dull grey or brown to bright yellow, often featuring intricate cross-bands and spots. Caterpillars, which represent the primary pest stage, are usually smooth-skinned with well-developed legs and a distinct head capsule, appearing in various shades depending on their host plant.
Systematically, they belong to the order Lepidoptera. Their life cycle consists of four distinct stages: egg, larva (caterpillar), pupa, and adult. Many species are multivoltine, meaning they produce several generations per season, which poses significant management challenges.
Most pyralid species are nocturnal or crepuscular, making them difficult to detect during daylight hours. Females lay eggs in small clusters or individually on various plant parts, including foliage, stems, and blossoms, ensuring larvae have immediate access to food upon hatching.
Overwintering typically occurs as a caterpillar or pupa inside a protective silken cocoon. These cocoons can be found in soil, plant debris, or within the stems of host plants, which provides them with high resistance to harsh winter conditions.
Pyralids are notorious polyphagous pests, capable of damaging a broad spectrum of agricultural crops, including fruits, berries, cereals, vegetables, and technical crops. They are also major pests in storage facilities, affecting grain and processed goods.
Caterpillars cause damage by feeding on virtually all plant parts: they bore into buds, flowers, developing fruit, roots, and stems. Internal feeding is particularly destructive, as the larvae consume the interior of fruits or stalks, rendering the produce unmarketable.
In storehouses, these moths can decimate grain, flour, nuts, and dried fruit stocks. The larvae feed on the seed endosperm and contaminate the produce with frass and webbing, leading to significant economic losses and spoilage of stored items.
A hallmark of many pyralid larvae is the production of silk webbing. They use this silk to bind leaves, flowers, or fruit together, forming protective nests that shelter them from predators, harsh weather, and chemical applications.
Severe infestations often result in reduced yields, deformation of produce, and, in cases of stem-boring species, the total collapse and death of the plant, especially in younger or more vulnerable specimens.
The most prominent sign of a pyralid infestation is the presence of silk webbing, which binds plant parts together. In fruit crops, small holes on the skin, often surrounded by accumulations of frass (larval waste), indicate internal feeding by larvae.
In stem-boring species, plants may exhibit wilting, yellowing, or structural weakness. Cutting into the stem often reveals internal tunnels filled with larval frass and possibly the caterpillar itself.
The sight of adult moths flying around crops during dusk is a key indicator that egg-laying is underway. Monitoring these flights is crucial for predicting potential outbreaks and timing preventative measures.
In stored products, symptoms include the clumping of grains or flour caused by larval silk, a musty odor, and the visible presence of small caterpillars or pupae near the surface of the storage bins.
Early-stage detection is difficult because the larvae hide inside plant tissue or nests; therefore, identifying the initial presence of moths or minor surface damage is essential to prevent rapid population growth.
Managing pyralid moths requires an integrated pest management (IPM) strategy that combines cultural, biological, and chemical methods throughout the growing season.
- Thorough cultivation and deep tilling of soil after harvest to disturb and destroy overwintering pupae.
- Rigorous sanitation by removing and destroying crop residues and weeds that serve as alternative hosts.
- Using pheromone traps for population monitoring to pinpoint the exact time for intervention.
- Applying biological insecticides containing Bacillus thuringiensis, which is highly effective against young larvae before they penetrate plant tissue.
- Strategic use of contact or systemic insecticides, strictly adhering to pre-harvest intervals to ensure safety.
The timing of chemical applications is critical: insecticides must be applied before larvae bore into the fruit or stems, where they become inaccessible. Consistent field scouting and the use of targeted control measures are the most effective ways to mitigate damage.