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1 d, exhibit deletions of neural arches in the cervical vertebrae.
2 own for their very characteristic, elongated cervical vertebrae.
3  stemming from the pneumatic features in the cervical vertebrae.
4 ite being composed of only 13 hyper-elongate cervical vertebrae [1-8].
5                 Mammals as a rule have seven cervical vertebrae, a number which remains remarkably co
6 inently convex prezygoepipophyseal lamina on cervical vertebrae and a divided infraprezygapophyseal f
7 so, elongated prezygapophyseal facets on the cervical vertebrae and a specialized first dorsal verteb
8  structures, including elements of the face, cervical vertebrae and distal extremities.
9 tralopithecus skeleton to preserve all seven cervical vertebrae and provides evidence for 12 thoracic
10  low penetrance in the formation of both the cervical vertebrae and the IXth cranial nerve.
11           These included skeletal defects in cervical vertebrae and the rib cage.
12 ructures including elements of the face, the cervical vertebrae, and the distal extremities.
13 zygotes do not manifest abnormalities in the cervical vertebrae, but instead show vertebral defects t
14 valuating the morphological structure of the cervical vertebrae in cephalometric images can clearly d
15                              The analysis of cervical vertebrae in cephalometric radiographs appears
16 to modern humans, articulation of lumbar and cervical vertebrae indicating pronounced lordosis, and B
17 singly, with respect to the formation of the cervical vertebrae, mice doubly mutant for Hoxa3 and Hox
18 tetanurans, but sporadically present in some cervical vertebrae of piatnitzkysaurids).
19 g with robust scapulae, sternum, and unfused cervical vertebrae, support the interpretation that this
20 bserve a homeotic transformation of the last cervical vertebrae toward a thoracic identity.
21 n an analysis of a morphological maturity of cervical vertebrae utilizing cephalometric radiographs.