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1.
Changes in Fos and Jun expression in the rat brainstem in the process of vestibular compensation // Acta oto-laryngol. Suppl., 1994, N 520.-С.401-404

2.
Depolarization-induced release of amino acids from the vestibular nuclear complex // Neurochem. Res., 2012. Vol. 37, N 4.-С.732-739

3.
Differential central projections of physiologically characterized horizontal semicircular canal vestibular nerve afferents in the toadfish, Opsanus tau // J. Compar. Neurol., 1997. Vol. 384, N 1.-С.71-85

4.
Differential central projections of physiologically characterized horizontal semicircular canal vestibular nerve afferents in the toadfish, Opsanus tau // J. Compar. Neurol., 1997. Vol. 384, N 1.-С.71-85

5.
Distribution and postnatal development of Ca++-binding proteins in rat brainstem: cerebellum and vestibular nucleus // Neurosci. Res., 1989, Suppl. N9.-С.97

6.
Sans Distribution of calretinin mRNA in the vestibular nuclei of rat and guinea pig and the effects of unilateral labyrinthectomy: A non-radioactive in situ hybridization study // Mol. Brain Res., 1995. Vol. 28, N 1.-С.1-11

7.
Distribution of the vestibular neurons projecting to the oculomotor and trochlear nuclei in rabbits // Brain, Behav. and Evol., 1991. Vol. 37, N 2.-С.111-124

8.
Effects of 5-hydroxytryptamine on the firing rates of neurons of the lateral vestibular nucleus in the rat // Exp. Brain Res., 1990. Vol. 79, N 2.-С.293-298

9.
Spencer Robert F. Evidence for glycine as an inhibitory neurotransmitter of vestibular, reticular, and prepositus hypoglossi neurons that project to the cat abducens nucleus // J. Neurosci., 1989. Vol. 9, N 8.-С.2718-2736

10.
Gilchrist Darrin P. Evidence that short ACTH fragments enhance vestibular compensation via direct action on the ipsilateral vestibular nucleus // NeuroReport, 1996. Vol. 7, N 9.-С.1489-1492

11.
Gilchrist Darrin P. Evidence that short ACTH fragments enhance vestibular compensation via direct action on the ipsilateral vestibular nucleus // NeuroReport, 1996. Vol. 7, N 9.-С.1489-1492

12.
Gilchrist Darrin P. Evidence that short ACTH fragments enhance vestibular compensation via direct action on the ipsilateral vestibular nucleus // NeuroReport, 1996. Vol. 7, N 9.-С.1489-1492

13.
Brichta A.M. Functional architecture of vestibular primary afferents from the posterior semicircular canal of a turtle, Pseudemys (Trachemys) scripta elegans // J. Compar. Neurol., 1994. Vol. 344, N 4.-С.481-507

14.
Histamine excites neurons of the inferior vestibular nucleus in rats by activation of H1 and H2 receptors // Neurosci. Lett., 2013. Vol. 541.-С.87-92

15.
Sato Identification of the Purkinje cell/climbing fiber zone and its target neurons responsible for eye-movement control by the cerebellar flocculus // Brain Res. Rev., 1991. Vol. 16, N 1.-С.39-64

16.
Inhibitory effects of tandospirone, a 5-HT[1A] agonist, on medial vestibular nucleus neurons responding to lateral roll tilt stimulation in rats // Brain Res., 2001. Vol. 910, N 1-2.-С.195-198

17.
Inhibitory effects of tandospirone, a 5-HT[1A] agonist, on medial vestibular nucleus neurons responding to lateral roll tilt stimulation in rats // Brain Res., 2001. Vol. 910, N 1-2.-С.195-198

18.
Sandor P. Intensity-dependent local cerebral blood flow changes along the auditory and vestibular pathways following acoustic and vestibular stimulation // J. Physiol. Proc., 2000. Vol. 526.-С.153P

19.
Sandor P. Intensity-dependent local cerebral blood flow changes along the auditory and vestibular pathways following acoustic and vestibular stimulation // J. Physiol. Proc., 2000. Vol. 526.-С.153P

20.
Microarray analysis of gene expression in the rat vestibular nucleus complex following unilateral vestibular deafferentiation // J. Neurochem., 2004. Vol. 91, N 4.-С.975-982

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