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The European mole ( Talpa europaea) is a of the order . It is also known as the common mole and the northern mole. Talpa europaea, nomen.at

This mole lives in a tunnel system, which it constantly extends. It uses these tunnels to hunt its prey. Under normal conditions, the displaced earth is pushed to the surface, resulting in the characteristic . It is an that feeds mainly on , but also on , and mammals such as and other moles. Its saliva contains toxins which paralyze earthworms in particular.


Taxonomy
The ( T. aquitania) was formerly considered conspecific, but was described as a distinct species in 2017.


Distribution
The European mole has a wide range throughout and westernmost , being found as far north as the and southern , as far south as northern , and as far east as western . It is the only mole species in most of this range. The in was thought to form the western barrier to the species' range, separating it from the Aquitanian mole, but studies indicate that while this is largely true, it is not a strict barrier, as member of either species have been found on opposite sides of the river, likely making them in at least some places.


Description
The European mole has a cylindrical body and is long, weighing . Species fact sheet: Mole ( Talpa eureopaea), The Mammal Society Females are typically smaller than males. The eyes are small and hidden behind fur, while the ears are just small ridges in the skin. The fur is usually dark grey, but the actual range of colors is larger, as due to the subterranean habits there is no disadvantage in having off-colored fur. European moles with white, light grey, tan, taupe, and black fur have all been reported.
(2025). 9781873580868, Whittet Books.


Habitat
While moles are typically found in tunnel systems, the European mole is not exclusively an underground dweller. In the spring and early summer when the young moles leave their mothers' burrows they must find new territories. This forces them to leave their burrows and they can either make new tunnel systems or enter existing systems. In the summer time, however, they are likely to much more superficially. The superficial burrowing could be due in part to the that is much harder, which makes burrowing a greater challenge.

T. europaea have also been found to spend a lot of time at the sides of drainage lines and streams but do not inhabit flooded or dry soils. However, dry areas do become important when their normal habitats become flooded. Factors such as the type of soil, vegetation present, and altitude have no effect on the areas that moles choose to inhabit. The one factor that does greatly influence the mole population in a specific area is the abundance of earthworms. In suitable urban greenspace, an area of 10 hectares is required for population persistence, and the number of mole territories increases with available habitat.


Reproduction
The European mole has a relatively short , in the spring. Mating occurs over a span of a few weeks in March and April, followed by a period of four to five weeks. Most births occur at the end of April or at the beginning of May. The litter size ranges from two to seven. The period lasts for four to five weeks but at the end of June, the young are usually required to leave the tunnels. The lifespan is from three to five years.


Feeding habits
One common belief about European moles is that they typically consume their own weight in food every 24 hours, but this is an exaggeration. Studies have been performed that show European moles eat about half of their body weight in food each day. When in captivity, European moles will eat a wide variety of food items, including liver, , , and . However, they tend to prefer over all other options. In areas without as many earthworms, are the main dietary constituent. Moles eat both larval and adult insects.


Vision
Due to the subterranean nature of this mole, there is an anatomical regression of its eyes at several organizational levels. Its eye has a of only , it is buried beneath fur and has a cellular lens. The organization of the is quite similar to that of a typical mammal. It has been determined that there are about 2000 ganglion cells and the is roughly 50 μm with 3000 . Roughly 15% of these axons are myelinated. The photoreceptors are not the normal -like or -like shape that one would expect to see. Instead they all have one uniform shape with three distinct features:
  1. The receptors are short along the radial axis
  2. The inner and outer segments are similar in length
  3. The outer segments appear to be significantly degenerated

Studies have shown that T. europaea does have , contrary to popular belief that all moles are blind. Two cone have been found in the eyes of T. europaea but their function is still under investigation. In a study of the mole eyes it was found that Talpa withdraws when exposed to a flashlight and it can also perform light/dark discrimination tasks. The in the eye are unlikely to provide high-resolution vision but they could allow a detection of movement and some discrimination. It is suggested that in subterranean mammals vision is used to detect predators that have broken into the tunnels.


Hearing
In mammals, the cues for directional hearing are usually based on inter-aural intensity differences, which occur as a result of the diffraction of a progressive by the head and pinna. They could also be based on inter-aural time differences that are present because of the distance between their two ears. European moles have no pinnae, so they are thought to hear at low frequencies. In addition to this, their inner ear is unusual for that of a mammal, due to the large trabeculation of the posterior between the ears. The of the ear lies almost horizontally and the manubrial tips are separated by a distance of . The results of several studies confirm that there is good transmission through the European mole's head for a range of low . Because of this it is expected that there will be acoustic interaction at each tympanic membrane. There are also suggestions that the ears of this mole act as balanced pressure-difference receivers. This system has never been suggested for a in the past, but , , , and have been shown to have a direct air pathway between the tympana.


Skeletal development
In Talpa europaea, there are several unique changes in ossification sequence in the elements. Many of the shifts are seen in the , specifically the and regions. The shifts allow the moles to have a more stabilized body axis and cervical region after they are born.

After a European mole is born and begins to develop, it will begin to crawl around and dig. As a result of the constant digging action, elements of the forelimb that are associated with those movements will begin to ossify. Some elements in the hands of Talpa europaea, formally described as distal , are actually the first to ossify. These elements build up a groove for the distal phalanges, but ultimately do not fuse with them. These bony elements develop directly, meaning they do not have any precursors. The extra-calcified elements are created from small, calcified particles that are found in the part of the flexor digitorum profundus. The particles then fuse later in life to form the solid element of the hand. Additionally, the sesamoid bone in the European mole sensu stricto is a bone that develops within a . It does have a chondrified precursor and it assists the tendon in transmitting force.


Dentition
The variance of morphology between species is very important to , as it can help define a species. Unlike other characteristics that do not fossilize, like color and , can be studied, as it fossilizes well and varies from species to species. Studying dentition can be very beneficial in recognizing the differences between fossils and subsequently being able to classify them.

The Roman mole ( ) was once considered a subspecies of the European mole, as they are of similar size. The only obvious difference between the two is that T. romana has skin-covered eyes and it also has a caecoid pelvis, whereas T. europaea has a europoid pelvis. Although similar in body, the dentition of T. romana is obviously larger in size than that T. europaea. Both the length of the tooth row and the individual elements are larger. Moreover, the mesostyle of the upper is generally divided. The dentition of T. europaea is small and the length of M1-M3 is less than 19% of the length of the condyle base. This mole also has relatively small molars for its size.


See also
  • which was first isolated in European moles

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