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2016 | 76 | 2 |

Tytuł artykułu

Somatic and dendritic perforated-patch recordings reveal b-adrenergic receptor-induced depolarization in medial prefrontal cortex pyramidal neurons

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The aim of this perforated-patch study was to test the effect of isoproterenol on the membrane potential in mPFC (medial prefrontal cortex) pyramidal neurons. Isoproterenol depolarized the membrane potential recorded from the soma. This effect was absent in the presence of metoprolol, suggesting the involvement of β1-adrenergic receptors. The adenylate cyclase activator forskolin also depolarized the membrane potential. Moreover, the effect of isoproterenol was abolished by the adenylate cyclase inhibitor SQ 22536. This suggested that adenylate cyclase was involved in mediating the effect of the β-adrenergic receptor agonist. The isoproterenol-induced depolarization persisted after inhibition of protein kinase A with H-89. The effect of β-adrenergic receptor activation on the membrane potential was dependent on Ih channels because it was abolished in the presence of the Ih channel inhibitor ZD 7288. Dendritic recordings were also performed. In the dendritic segments between 100 μm and 150 μm from the soma and between 200 μm and 250 μm from the soma, isoproterenol also depolarized the membrane potential. The magnitude of the β-adrenergic receptor-stimulated depolarization was the same in the soma and in both dendritic localizations. The depolarization exerted by isoproterenol may influence PFC cognitive functions.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

76

Numer

2

Opis fizyczny

p.158-164,fig.,ref.

Twórcy

autor
  • Department of Physiology and Pathophysiology, Medical University of Warsaw, Warsaw, Poland
  • Department of Drug Technology and Pharmaceutical Biotechnology, Medical University of Warsaw, Warsaw, Poland

Bibliografia

  • Berger T, Larkum ME, Luscher HR (2001) High I(h) channel density in the distal apical dendrite of layer V pyramidal cells increases bidirectional attenuation of EPSPs. J Neurophysiol 85: 855–868.
  • Egorov AV, Hamam BN, Fransén E, Hasselmo ME, Alonso AA (2002) Graded persistent activity in entorhinal cortex neurons. Nature 420: 173–178.
  • Fuster JM, Alexander GE (1971) Neuron activity related to short-term memory. Science 173: 652–654.
  • Hains AB, Arnsten AF (2008) Molecular mechanisms of stress-induced prefrontal cortical impairment: implications for mental illness. Learn Mem 15: 551–564.
  • Huang CC, Wang SJ, Gean PW (1998) Selective enhancement of P-type calcium currents by isoproterenol in the rat amygdala. J Neurosci 18: 2276–2282.
  • Ji XH, Cao XH, Zhang CL, Feng ZJ, Zhang XH, Ma L, Li BM (2008) Pre- and postsynaptic beta-adrenergic activation enhances excitatory synaptic transmission in layer V/VI pyramidal neurons of the medial prefrontal cortex of rats. Cereb Cortex 18: 1506–1520.
  • Kurowski P, Gawlak M, Szulczyk P (2015) Muscarinic receptor control of pyramidal neuron membrane potential in the medial prefrontal cortex (mPFC) in rats. Neuroscience 303: 474–488.
  • Pisani A, Bonsi P, Centonze D, Martorana A, Fusco F, Sancesario G, De Persis C, Bernardi G, Calabresi P (2003) Activation of beta1-adrenoceptors excites striatal cholinergic interneurons through a cAMP-dependent, protein kinase-independent pathway. J Neurosci 23: 5272–5282.
  • Ramos BP, Arnsten AF (2007) Adrenergic pharmacology and cognition: focus on the prefrontal cortex. Pharmacol Ther 113: 523–536.
  • Szulczyk B (2015) Beta-Adrenergic receptor agonist increases voltagegated Na(+) currents in medial prefrontal cortex pyramidal neurons. Neurosci Lett 595: 87–93.
  • Szulczyk B, Książek A, Ładno W, Szulczyk P (2012) Effect of dopamine receptor stimulation on voltage-dependent fast-inactivating Na(+) currents in medial prefrontal cortex (mPFC) pyramidal neurons in adult rats. Acta Neurobiol Exp (Wars) 72: 351–364.
  • Tahvildari B, Fransén E, Alonso AA, Hasselmo ME (2007) Switching between “On” and “Off” states of persistent activity in lateral entorhinal layer III neurons. Hippocampus 17: 257–263.
  • Thuault SJ, Malleret G, Constantinople CM, Nicholls R, Chen I, Zhu J, Panteleyev A, Vronskaya S, Nolan MF, Bruno R, Siegelbaum SA, Kandel ER (2013) Prefrontal cortex HCN1 channels enable intrinsic persistent neural firing and executive memory function. J Neurosci 33: 13583–13599.
  • van Brederode JF, Takigawa T, Alzheimer C (2001) GABA-evoked chloride currents do not differ between dendrites and somata of rat neocortical neurons. J Physiol 533: 711–716.
  • Yuan LL, Adams JP, Swank M, Sweatt JD, Johnston D (2002) Protein kinase modulation of dendritic K+ channels in hippocampus involves a mitogen-activated protein kinase pathway. J Neurosci 22: 4860–4868.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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