CCL

Összesen 6 találat.
#/oldal:
Részletezés:
Rendezés:

1.

001-es BibID:BIBFORM078411
035-os BibID:(PMID)30734834 (WoS)000472512500009 (Scopus)85061242629
Első szerző:Baksa Brigitta (fogorvos)
Cím:Characterization of functional subgroups among genetically identified cholinergic neurons in the pedunculopontine nucleus / Baksa B., Kovács A., Bayasgalan T., Szentesi P., Kőszeghy Á., Szücs P., Pál B.
Dátum:2019
ISSN:1420-682X
Megjegyzések:The pedunculopontine nucleus (PPN) is a part of the reticular activating system which is composed of cholinergic, glutamatergic and GABAergic neurons. Early electrophysiological studies characterized and grouped PPN neurons based on certain functional properties (i.e. the presence or absence of the A-current, spike latency, and low threshold spikes). Although other electrophysiological characteristics of these neurons were also described (as high threshold membrane potential oscillations, great differences in spontaneous firing rate and the presence or absence of the M-current), systematic assessment of these properties and correlation of them with morphological markers are still missing. In this work, we conducted electrophysiological experiments on brain slices of genetically identified cholinergic neurons in the PPN. Electrophysiological properties were compared with rostrocaudal location of the neuronal soma and selected morphometric features obtained with post hoc reconstruction. We found that functional subgroups had different proportions in the rostral and caudal subregions of the nucleus. Neurons with A-current can be divided to early-firing and late-firing neurons, where the latter type was found exclusively in the caudal subregion. Similar to this, different parameters of high threshold membrane potential oscillations also showed characteristic rostrocaudal distribution. Furthermore, based on our data we propose that high threshold oscillations rather emerge from neuronal somata and not from the proximal dendrites. In summary, we demonstrated the existence and spatial distribution of functional subgroups of genetically identified PPN cholinergic neurons, which are in accordance with differences found in projection and in vivo functional findings of the subregions. Being aware of functional differences of PPN subregions will help the design and analysis of experiments using genetically encoded opto- and chemogenetic markers for in vivo experiments.
Tárgyszavak:Orvostudományok Elméleti orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
pedunculopontine nucleus
cholinergic neuron
spike delay
A-current
rostrocaudal gradient
high threshold oscillation
Megjelenés:Cellular And Molecular Life Sciences. - 76 : 14 (2019), p. 2799-2815. -
További szerzők:Kovács Adrienn (1989-) (molekuláris biológus) Bayasgalan, Tsogbadrakh (1983-) (Általános orvos) Szentesi Péter (1967-) (élettanász) Kőszeghy Áron (1983-) (Ph.D hallgató, élettanász) Szűcs Péter (1974-) (kutatóorvos) Pál Balázs (1975-) (élettanász)
Pályázati támogatás:KTIA_13_NAP-A-I/10
Egyéb
2017-1.2.1-NKP-2017-00002
Egyéb
Internet cím:Szerző által megadott URL
DOI
Intézményi repozitóriumban (DEA) tárolt változat
Borító:

2.

001-es BibID:BIBFORM095571
035-os BibID:(WoS)000627328400001 (Scopus)85102438552 (PubMed)33716672 (cikkazonosító)614947
Első szerző:Bayasgalan, Tsogbadrakh (Általános orvos)
Cím:Topographical Organization of M-Current on Dorsal and Median Raphe Serotonergic Neurons / Tsogbadrakh Bayasgalan, Andrea Csemer, Adrienn Kovacs, Krisztina Pocsai, Balazs Pal
Dátum:2021
ISSN:1662-5102
Megjegyzések:Dorsal and median raphe nuclei (DR and MR, respectively) are members of the reticular activating system and play important role in the regulation of the sleepwakefulness cycle, movement, and affective states. M-current is a voltage-gated potassium current under the control of neuromodulatory mechanisms setting neuronal excitability. Our goal was to determine the proportion of DR and MR serotonergic neurons possessing M-current and whether they are organized topographically. Electrophysiological parameters of raphe serotonergic neurons influenced by this current were also investigated. We performed slice electrophysiology on genetically identified serotonergic neurons. Neurons with M-current are located rostrally in the DR and dorsally in the MR. M-current determines firing rate, afterhyperpolarization amplitude, and adaptation index (AI) of these neurons, but does not affect input resistance, action potential width, and high threshold oscillations.These findings indicate that M-current has a strong impact on firing properties of certain serotonergic neuronal subpopulations and it might serve as an effective contributor to cholinergic and local serotonergic neuromodulatory actions.
Tárgyszavak:Orvostudományok Elméleti orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
Megjelenés:Frontiers in Cellular Neuroscience. - 15 (2021), p. 614947. -
További szerzők:Csemer Andrea (1994-) (molekuláris biológus) Kovács Adrienn (1989-) (molekuláris biológus) Pocsai Krisztina (1978-) (élettanász) Pál Balázs (1975-) (élettanász)
Internet cím:Szerző által megadott URL
DOI
Intézményi repozitóriumban (DEA) tárolt változat
Borító:

3.

001-es BibID:BIBFORM095575
035-os BibID:(cikkazonosító)707789 (WoS)000683012200001 (Scopus)85112145519 (PubMed)34381336
Első szerző:Bayasgalan, Tsogbadrakh (Általános orvos)
Cím:Alteration of mesopontine cholinergic function by the lack of KCNQ4 subunit / Bayasgalan T., Stupniki S., Kovács A., Csemer A., Szentesi P., Pocsai K., Dionisio L., Spitzmaul G., Pál B.
Dátum:2021
ISSN:1662-5102
Tárgyszavak:Orvostudományok Elméleti orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
Megjelenés:Frontiers in Cellular Neuroscience. - 15 (2021), p. 707789. -
További szerzők:Stupniki, S. Kovács Adrienn (1989-) (molekuláris biológus) Csemer Andrea (1994-) (molekuláris biológus) Szentesi Péter (1967-) (élettanász) Pocsai Krisztina (1978-) (élettanász) Dionisio, L. Spitzmaul, G. Pál Balázs (1975-) (élettanász)
Internet cím:Intézményi repozitóriumban (DEA) tárolt változat
DOI
Borító:

4.

001-es BibID:BIBFORM095573
035-os BibID:(cikkazonosító)109594 (WoS)000688508300032 (Scopus)85113379671 (PubMed)34433068
Első szerző:Dautan, Daniel
Cím:Modulation of motor behavior by the mesencephalic locomotor region / Daniel Dautan, Adrienn Kovács, Tsogbadrakh Bayasgalan, Miguel Diaz, Balazs Pal, Juan Mena-Segovia
Dátum:2021
ISSN:2211-1247
Megjegyzések:The mesencephalic locomotor region (MLR) is a functionally-defined area located in the midbrain that serves as an interface between higher-order motor systems (e.g. basal ganglia and cortex) and lower motor neurons (brainstem and spinal cord). The excitatory module of the MLR is composed of the pedunculopontine nucleus (PPN) and the cuneiform nucleus (CnF) and their activation has been proposed to elicit different modalities of movement, but whether differences in connectivity and physiological properties explain their contributions to motor activity is not known. Here we report that CnF-glutamatergic neurons are functionally homogeneous and have short-range axonal projections, whereas PPN-glutamatergic neurons are heterogeneous and maintain long-range connections with other motor circuits, most notably the basal ganglia. Optogenetic activation of CnF-neurons produced short-lasting muscle activation and fast-onset, involuntary motor activity, whereas activation of PPN-neurons produced long-lasting muscle activation, decreased locomotion and disrupted gait. Our results thus reveal a differential contribution to motor behavior in the structures that compose the MLR.
Tárgyszavak:Orvostudományok Elméleti orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
Megjelenés:Cell Reports. - 36 : 8 (2021), p. 109594. -
További szerzők:Kovács Adrienn (1989-) (molekuláris biológus) Bayasgalan, Tsogbadrakh (1983-) (Általános orvos) Diaz-Acevedo, Miguel A. Pál Balázs (1975-) (élettanász) Mena-Segovia, Juan
Internet cím:Intézményi repozitóriumban (DEA) tárolt változat
DOI
Borító:

5.

001-es BibID:BIBFORM082078
035-os BibID:(WoS)000509325000003 (Scopus)85071744080 (PubMed)31469725
Első szerző:Kovács Adrienn (molekuláris biológus)
Cím:Orexinergic actions modify occurrence of slow inward currents on neurons in the pedunculopontine nucleus / Kovács Adrienn, Baksa Brigitta, Bayasgalan Tsogbadrakh, Szentesi Péter, Csemer Andrea, Pál Balázs
Dátum:2019
ISSN:0959-4965
Megjegyzések:Orexins are neuromodulatory peptides of the lateral hypothalamus which regulate homeostatic mechanisms including sleep-wakefulness cycles. Orexinergic actions stabilize wakefulness by acting on the nuclei of the reticular activating system, including the pedunculopontine nucleus. Orexin application to pedunculopontine neurons produces a noisy tonic inward current and an increase in the frequency and amplitudes of excitatory postsynaptic currents. In the present project, we investigated orexinergic neuromodulatory actions on astrocyte-mediated neuronal slow inward currents of pedunculopontine neurons and their relationships with tonic currents by using slice electrophysiology on preparations from mice. We demonstrated that, in contrast to several other neuromodulatory actions and in line with literature data, orexin predominantly elicited a tonic inward current. A subpopulation of the pedunculopontine neurons possessed slow inward currents. Independently from the tonic currents, actions on slow inward currents were also detected, which resembled other neuromodulatory actions: if slow inward currents were almost absent on the neuron, orexin induced an increase of the charge movements by slow inward currents, whereas if slow inward current activity was abundant on the neurons, orexin exerted inhibitory action on it. Our data support the previous findings that orexin elicits only inward currents in contrast with cannabinoid, cholinergic or serotonergic actions. Similar to the aforementioned neuromodulatory actions, orexin influences slow inward currents in a way depending on control slow inward current activity. Furthermore, we found that orexinergic actions on slow inward currents are similarly independent from its actions on tonic currents, as it was previously found with other neuromodulatory agonists.
Tárgyszavak:Orvostudományok Elméleti orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
neuromodulation
orexin
pedunculopontine nucleus
slow inward current
tonic inward current
Megjelenés:Neuroreport. - 30 : 14 (2019), p. 933-938. -
További szerzők:Baksa Brigitta (1989-) (fogorvos) Bayasgalan, Tsogbadrakh (1983-) (Általános orvos) Szentesi Péter (1967-) (élettanász) Csemer Andrea (1994-) (molekuláris biológus) Pál Balázs (1975-) (élettanász)
Internet cím:Szerző által megadott URL
DOI
Intézményi repozitóriumban (DEA) tárolt változat
Borító:

6.

001-es BibID:BIBFORM109964
035-os BibID:(scopus)85148082398 (wos)000935540500006
Első szerző:Maamrah, Baneen
Cím:KCNQ4 potassium channel subunit deletion leads to exaggerated acoustic startle reflex in mice / Maamrah Baneen, Pocsai Krisztina, Bayasgalan Tsogbadrakh, Csemer Andrea, Pál Balázs
Dátum:2023
ISSN:0959-4965
Megjegyzések:The potassium voltage-gated channel subfamily Q member 4 (KCNQ4) subunit forms channels responsible for M-current, a muscarine-sensitive potassium current regulating neuronal excitability. In contrast to other KCNQ subunits, its expression is restricted to the cochlear outer hair cells, the auditory brainstem and other brainstem nuclei in a great overlap with structures involved in startle reflex. We aimed to show whether startle reflexis affected by the loss of KCNQ4 subunit and whether these alterations are similar to the ones caused by brainstem hyperexcitability. Young adult KCNQ4 knockout mice and wild-type littermates, as well as mice expressing hM3D chemogenetic actuator in the pontine caudal nucleus and neurons innervating it were used for testing acoustic startle. The acoustic startle reflex was significantly increased in knockout mice compared with wild-type littermates. When mice expressing human M3 muscarinic (hM3D) in nuclei related to startle reflex were tested, a similar increase of the first acoustic startle amplitude and a strong habituation of the further responses was demonstrated. We found that the acoustic startle reflex is exaggerated and minimal habituation occurs in KCNQ4 knockout animals. These changes are distinct from the effects of the hyperexcitability of nuclei involved in startle. One can conclude that the exaggerated startle reflex found with the KCNQ4 subunit deletion is the consequence of both the cochlear damage and the changes in neuronal excitability of startle networks.
Tárgyszavak:Orvostudományok Klinikai orvostudományok idegen nyelvű folyóiratközlemény külföldi lapban
folyóiratcikk
Megjelenés:Neuroreport. - 34 : 4 (2023), p. 232-237. -
További szerzők:Pocsai Krisztina (1978-) (élettanász) Bayasgalan, Tsogbadrakh (1983-) (Általános orvos) Csemer Andrea (1994-) (molekuláris biológus) Pál Balázs (1975-) (élettanász)
Pályázati támogatás:TKP2020-NKA-04
Egyéb
2020-4.1.1-TKP2020
Egyéb
Internet cím:Szerző által megadott URL
DOI
Intézményi repozitóriumban (DEA) tárolt változat
Borító:
Rekordok letöltése1