• 제목/요약/키워드: dorsal lateral geniculate nucleus

검색결과 2건 처리시간 0.017초

Tecto-reticulospinal pathway (TRS)와 dorsal lateral geniculate nucleus (dLGN)에서 역행성이동추적물질 이용 햄스터 상구에서 GluR1-, GluR4- 면역반응 신경세포 연구 (Retrograde Tracer Studies of Tecto-Reticulospinal Pathway and Dorsal Lateral Geniculate Nucleus on GluR1- and GluR4-Immunoreactive Neurons in the Hamster Superior Colliculus)

  • 최재식;이제영;장유진;이은실;전창진
    • 생명과학회지
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    • 제20권1호
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    • pp.1-8
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    • 2010
  • 본 연구자들의 앞선 연구에서는 햄스터 상구에서 AMPA 수용체의 아형인 GluR1과 GluR4의 분포와 눈 적출 이후 이들 수용체의 분포를 면역세포화학적 방법으로 연구하였다. 또한, 표지한 GluR1과 GluR4를 칼슘결합단백질인 calbindin D28K, calretinin, parvalbumin과 GABA로 표지하여 비교하였다. 본 연구에서 역행성이동추적물질(retrograde tracer)인 호스래디시퍼옥시다아제(horseradish peroxidase, HRP)를 상구의 각 주요 상행로와 하행로에 주입함으로써 GluR1- 면역반응 신경세포들과 GluR4- 면역반응 신경세포들이 투사신경세포(projection neurons)임을 밝혀내었다. Tecto-reticulospinal pathway (TRS)와 dorsal lateral geniculate nucleus (dLGN)으로 HRP 를 주입한후, 햄스터들은 회복을 위해 48시간 동안 살려둔 뒤 관류(perfusion)하였다. GluR- 면역반응 처리된 절편들은 역행성 표지된 신경세포를 지님을 확인하였다. HRP를 주입하였더니 단지 적은 수의 GluR1- 면역반응 신경세포들이 TRS (1.4%)와 dLGN (2.6%)으로 투사되었고, 반면에 많은 수의 GluR4- 면역반응 신경세포들이 TRS (32.7%)로 투사되었다. 사이/투사 신경세포(inter/projection neurons)들은 GluR 아단위들의 분류된 분포와 차별화된 양상을 보였고 이들의 이러한 분포는 칼슘결합단백질들과 GABA와는 겹쳐지지 않았으며, 일전에 발표했던 시각적 행동 반응에서 안구 적출 후 수용체 아단위들의 기능적 다양화와는 차별화된 양상을 보였다.

원숭이 외측슬상체배측핵에서 칼슘결합단백 Parvalbumin과 Calbindin-D 28K의 분포 (Immunocytochemical Localization of Parvalbumin and Calbindin-D 28K in Monkey Dorsal Lateral Geniculate Nucleus)

  • 고승희;배춘상;박성식
    • Applied Microscopy
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    • 제24권4호
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    • pp.61-77
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    • 1994
  • The calcium-binding proteins (CaBP), parvalbumin (PV) and calbindin-D 28K (calbindin) are particularly abundant and specific in their distribution, and present in different subsets of neurons in many brain regions. Although their physiological roles in the neurons have not been elucidated, they are valuable markers of neuronal subpopulations for anatomical and developmental studies. This study is designed to characterize dorsal lateral geniculate nucleus (dLGN) neurons and axon terminals in terms of differential expression of immunoreactivity (IR) for two well-known CaBPs, PV and calbindin. The experiments were carried out on 6 adult monkeys. Monkeys were perfused under deep Nembutal anesthesia with 2% paraformaldehyde and 0.2% glutaraldehyde in 0.1M phosphate buffer. After removal, the brains were postfixed for 6-8 hr in 2% paraformaldehyde at $4^{\circ}C$ and infiltrated with 30% sucrose at $4^{\circ}C$. Thereafter, they were frozen in dry ice. Serial sections of the thalamus, at $20{\mu}m$, were made in the frontal plane with a sliding microtome. The sections were stained for PV and calbindin with indirect immunocytochemical methods. For electron microscopy, after infiltration with 30% sucrose the blocks of thalamus were serially sectioned at $50{\mu}m$ with a Vibratome in the coronal plane and stained immediately by indirect ABC methods without Triton X-100 in incubation medium. Stained sections were postfixed in 0.2% osmium tetroxide, dehydrated and flat-embedded in Spurr resin. The block was then trimmed to contain only a selected lamina or interlaminar space. The dLGN proper showed strong PV IR in fibers in all laminae and interlaminar zones. Particularly dense staining was noted in layers 1 and 2 that contain many stained fibers from optic tract. Neuronal cell body stained with PV was concentrated only in the laminae. In these laminae staining was moderate in cell bodies of all large and medium-sized neurons, and was strong in cell bodies of some small neurons together with their processes. Calbindin IR was marked in the neuronal cell body and neuropil in the S layers and interlaminar zones whereas moderate in the neuropil throughout the nucleus. Regional difference in distribution of PV and calbindin IR cell is distinct; the former is only in the laminae and the latter in both the S layer and interlaminar space. The CaBP-IR elements were confined to about $10{\mu}m$ in depth of Vibratome section. The IR product for CaBP was mainly associated with synaptic vesicle, pre- and post-synaptic membrane, and outer mitochondrial membrane and along microtubule. PV-IR was noted in various neuronal elements such as neuronal soma, dendrite, RLP, F, PSD and some myelinated or unmyelinated axons, and was not seen in the RSD and glial cells. Only a few neuronal components in dLGN was IR for calbindin and its reaction product was less dense than that of PV, and scattered throughout cytoplasm of soma of some relay neurons, and was also persent in some dendrite, myelinated axons and RLP. The RSD, F, PSD and glial elements were always non-IR for calbindin. Calbindin labelled RLP were presynaptic to unlabeled dendrite or dendritic spine and PSD. Calbindin-labeled dendrite of various sizes were always postsynaptic to unlabeled RSD, RLP or F. From this study it is suggested that dLGN cells of different functional systems and their differential projection to the visual cortex can be distinguished by differential expression of PV and calbindin.

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