김명환 교수
Myoung-Hwan Kim
서울대학교 · 의학
연구실 소개
김명환 교수의 연구실은 신경세포의 구조와 기능, 특히 시냅스 전달, 칼슘 동역학, 그리고 뇌의 세포 신호 전달 메커니즘을 중심으로 연구를 진행하고 있습니다. 특히 뉴런의 극성과 시냅스 구조를 조절하는 단백질(IRSp53), 시냅스 전달의 조절 메커니즘(NMDA/AMPA 수용체 비율), 칼슘 이온의 세포 내 조절 및 신경전달물질 분비에 영향을 미치는 이온 교환체(NCKX)의 기능에 중점을 두고 있습니다. 또한 뇌 기능 이상과 관련된 대사질환 및 신경발달 장애의 기전을 밝히는 데에도 기여하고 있습니다. 이와 같은 연구를 통해 뇌의 기초 생리학과 정신질환의 병태생리학적 기전을 밝히는 데 기여하고자 합니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15IRSp53 is an adaptor protein that acts downstream of Rac and Cdc42 small GTPases and is implicated in the regulation of membrane deformation and actin filament assembly. In neurons, IRSp53 is an abundant postsynaptic protein and regulates actin-rich dendritic spines; however, its in vivo functions have not been explored. We characterized transgenic mice deficient of IRSp53 expression. Unexpectedly, IRSp53(-/-) neurons do not show significant changes in the density and ultrastructural morphologie
The clearance of Ca2+ from nerve terminals is critical for determining the build-up of residual Ca2+ after repetitive presynaptic activity. We found previously that K+-dependent Na+/Ca2+ exchangers (NCKXs) show polarized distributions in axon terminals of supraoptic magnocellular neurons and play a major role in Ca2+ clearance. The role of NCKXs in presynaptic terminals, however, has not been studied. We investigated the contribution of NCKX in conjunction with other Ca2+ clearance mechanisms at
Neurons are polarized into compartments such as the soma, dendrites, and axon terminals, each of which has highly specialized functions. To test whether Ca2+ is differently handled in different compartments of a neuron, we investigated Ca2+ clearance mechanisms in somata of supraoptic magnocellular neurosecretory cells (MNCs) and in their axon terminals located in neurohypophyses. Using patch-clamp and microfluorometry techniques, Ca2+ transients were evoked by depolarizing pulses. Endogenous Ca
Metabolic diseases affect various organs including the brain. Accumulation or depletion of substrates frequently leads to brain injury and dysfunction. Deficiency of aminopeptidase P1, a cytosolic proline-specific peptidase encoded by the Xpnpep1 gene, causes an inborn error of metabolism (IEM) characterized by peptiduria in humans. We previously reported that knockout of aminopeptidase P1 in mice causes neurodevelopmental disorders and peptiduria. However, little is known about the pathophysiol
Abstract Despair is a common human feeling characterized by the loss of hope and is a core symptom of depressive disorders. However, little is known regarding neural circuits mediating despair and their modulation by antidepressants. Here we show that alterations in inhibitory synaptic transmission in the hippocampus affect behavioral despair in mice. Reduced interneuron density, knockdown of GABA A receptor gamma 2 subunit gene ( Gabrg2 ) or DREADD-mediated suppression of interneuron activity r
Inborn errors of metabolism are often associated with neurodevelopmental disorders and brain injury. A deficiency of aminopeptidase P1, a proline-specific endopeptidase encoded by the Xpnpep1 gene, causes neurological complications in both humans and mice. In addition, aminopeptidase P1-deficient mice exhibit hippocampal neurodegeneration and impaired hippocampus-dependent learning and memory. However, the molecular and cellular changes associated with hippocampal pathology in aminopeptidase P1
For a fuller understanding of Mark Twain’s Pudd’nhead Wilson, I attempt to analyze the white elites’ reified views about private property as well as the often irrational ethos of ordinary white citizens in Dawson’s Landing. I also examine the pervading irony we find in the characterization of Roxy, Tom, and David Wilson. The key issue to evaluating this controversial work of fiction is how to explain the anti-climatic latter part of the story after the murder of Judge Driscoll. It is also closel
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