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This work analyses several granitic bodies of the Variscan Orogen of Central and Western Europe in order to improve our knowledge about different aspects of their evolution, regarding their ascent and emplacement mechanisms, as well as their deformation history. In the Iberian Massif two granitoid bodies, namely the La Bazana pluton and the Nisa-Alburquerque batholith, were studied in order to decipher their ascent and emplacement history. The La Bazana pluton is a small, sub-circular body in map view that intruded into rocks of the Ossa-Morena Zone in the core of a late upright antiform. Its three-dimensional drop-pipe shape, its internal dome foliation pattern and the structure of the host rock suggest that the magma ascended and emplaced diapirically. The Nisa-Alburquerque batholith is a large body that intruded into rocks of the Central Iberian Zone, the Central Unit, and the Ossa-Morena Zone. Its cartographic shape is elongate and parallel to the NW—SE to WNW—ESE Variscan structures. In the light of the available structural data and the gravimetric models, the intrusion is viewed as a continuous lateral magma flow from the eastern root guided towards the west through the southern limb of a kilometre-scale antiform. As mass-transfer mechanisms, a combination of rigid translation of the country rocks, stoping, and possibly ballooning is proposed. In the Bohemian Massif several small granitoid bodies showing a strong solid-state deformation were studied in order to integrate their tectonometamorphic history in the geotectonic framework of the south-western Bohemian Massif, focusing principally on the deformation phase referred to as D3. Four ductile deformation phases are proposed for the study area. D1 produced high-temperature fabrics under upper amphibolite to granulite facies conditions. Its kinematics is unknown. D2 occurred under amphibolite to upper greenschist facies conditions under N—S to NNW—SSE compression. It is responsible for a subvertical NW—SE striking foliation in migmatites developed under dextral simple shear and for the deformation at the Bayerischer Pfahl shear-zone system at its earlier stages. Many granitoid dykes and stocks were found to be affected by sinistral shear along subvertical planes trending ENE to ESE. Since this deformation, which is called D3 in the present work, is not compatible with a N—S to NNW—SSE compression, it is proposed that these sinistral shear zones in granites do not belong to the Bayerischer Pfahl shear-zone system and constitute themselves a separated one, which is called “D3 shear-zone system”. D3 took place under upper greenschist to lower amphibolite facies conditions (~480-550°C). Both the intrusion and the deformation of the granites affected by D3 occurred at deep to intermediate levels of the crust, whereas the deformation took place under NE—SW compression. Datings on two of the deformed granites yielded 324.4 ± 0.8 Ma and 315.0 ± 1.0 Ma: Thus, the age of D3 is most probably ~315 Ma. The intrusion of most of the sheared granitoids was pre-kinematic with respect to D3. After D3 the N—S to NNW—SSE compression which governed D2 was restored, giving way to the next deformation phase D4, which was linked to further deformation at and next to the principal shears of the Bayerischer Pfahl shear-zone system under greenschist facies conditions. The causes for the change of the stress field leading to a NE—SW compression during D3 might be related to (1) global changes in the dynamics of the tectonic plates in late Variscan times, (2) orogenic collapse leading to the sinking of the Teplá-Barrandian and lateral extrusion of the surrounding Moldanubian rocks, (3) distortion of the regional stress field by local intrusion of large stocks, such as the Saldenburg granite of the Fürstenstein Massif, or (4) distortion of the regional stress field due to the existence of ephemeral releasing bends in the Bayerischer Pfahl shear zone during its early evolution.