Jeehyun Kwag
Seoul National University · Neuroscience
About the Lab
Professor Jeehyun Kwag's research lab focuses on the neural circuits and cellular mechanisms underlying learning, memory, and synaptic plasticity, with a particular emphasis on the roles of specific interneuron subtypes—such as parvalbumin (PV)- and somatostatin (SST)-positive interneurons—in regulating hippocampal network oscillations and information processing. The lab integrates in vivo electrophysiology, optogenetics, advanced MRI techniques, and computational modeling to investigate how pathological factors like amyloid-β oligomers disrupt neural circuit function in Alzheimer’s disease. A central theme is understanding the dynamic contributions of inhibitory interneurons to precise spike timing, oscillatory activity, and synaptic plasticity across development and disease states. The lab also pioneers noninvasive neuroimaging methods to bridge cellular-level neural activity with whole-brain dynamics in real time.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15There has been a long-standing demand for noninvasive neuroimaging methods that can detect neuronal activity at both high temporal and high spatial resolution. We present a two-dimensional fast line-scan approach that enables direct imaging of neuronal activity with millisecond precision while retaining the high spatial resolution of magnetic resonance imaging (MRI). This approach was demonstrated through in vivo mouse brain imaging at 9.4 tesla during electrical whisker-pad stimulation. In vivo
Abstract Background Abnormal accumulation of amyloid β 1–42 oligomers (AβO 1–42 ), a hallmark of Alzheimer’s disease, impairs hippocampal theta-nested gamma oscillations and long-term potentiation (LTP) that are believed to underlie learning and memory. Parvalbumin-positive (PV) and somatostatin-positive (SST) interneurons are critically involved in theta-nested gamma oscillogenesis and LTP induction. However, how AβO 1–42 affects PV and SST interneuron circuits is unclear. Through optogenetic m
Synchronization of precise spike times across multiple neurons carries information about sensory stimuli. Inhibitory interneurons are suggested to promote this synchronization, but it is unclear whether distinct interneuron subtypes provide different contributions. To test this, we examined single-unit recordings from barrel cortex in vivo and used optogenetics to determine the contribution of parvalbumin (PV)- and somatostatin (SST)-positive interneurons to the synchronization of spike times ac
Accumulation of amyloid β oligomers (AβO) in Alzheimer's disease (AD) impairs hippocampal theta and gamma oscillations. These oscillations are important in memory functions and depend on distinct subtypes of hippocampal interneurons such as somatostatin-positive (SST) and parvalbumin-positive (PV) interneurons. Here, we investigated whether AβO causes dysfunctions in SST and PV interneurons by optogenetically manipulating them during theta and gamma oscillations in vivo in AβO-injected SST-Cre o
Hippocampal long-term potentiation (LTP) is believed to be important for learning and memory. Experimentally, the pairing of precisely timed pre- and postsynaptic spikes within a time window of ∼10 ms can induce timing-dependent LTP (tLTP), but the requirements for induction of tLTP change with development: in young rodents single postsynaptic spikes are sufficient to induce tLTP, whereas postsynaptic burst firing appears to be required in the adult. However, hippocampal neurons in vivo show the
Precisely controlled spike times relative to theta-frequency network oscillations play an important role in hippocampal memory processing. Here we study how inhibitory synaptic input during theta oscillation contributes to the control of spike timing. Using whole-cell patch-clamp recordings from CA1 pyramidal cells in vitro with dynamic clamp to simulate theta-frequency oscillation (5 Hz), we show that gamma-aminobutyric acid-A (GABA(A)) receptor-mediated inhibitory postsynaptic potentials (IPSP
Memory deficits in Alzheimer's disease (AD) show a strong link with GABAergic interneuron dysfunctions. 1 , 2 , 3 , 4 , 5 , 6 , 7 The ensemble dynamics of GABAergic interneurons represent memory encoding and retrieval, 8 , 9 , 10 , 11 , 12 but how GABAergic interneuron dysfunction affects inhibitory ensemble dynamics in AD is unknown. As the retrosplenial cortex (RSC) is critical for episodic memory 13 , 14 , 15 , 16 and is affected by β-amyloid accumulation in early AD, 17 , 18 , 19 , 20 , 21 w
The phase of firing of hippocampal neurons during theta oscillations encodes spatial information. Moreover, the spike phase response to synaptic inputs in individual cells depends on the expression of the hyperpolarization-activated mixed cation current (I h ), which differs between CA3 and CA1 pyramidal neurons. Here, we compared the phase response of these two cell types, as well as their intrinsic membrane properties. We found that both CA3 and CA1 pyramidal neurons show a voltage sag in resp
Rate and phase codes are believed to be important in neural information processing. Hippocampal place cells provide a good example where both coding schemes coexist during spatial information processing. Spike rate increases in the place field, whereas spike phase precesses relative to the ongoing theta oscillation. However, what intrinsic mechanism allows for a single neuron to generate spike output patterns that contain both neural codes is unknown. Using dynamic clamp, we simulate an in vivo-
The nature of the neural code remains elusive. Increasing evidence supports a role for network oscillations in the coding strategy used by neural circuits. Here we argue that network oscillations provide a temporal reference structure that enables efficient representation of information via the phase of firing. Both tonic and phasic synaptic input contribute to controlling the firing phase of individual neurons, allowing cycle-to-cycle updating and rapid storage of information via spike timing-d
Egocentric neural representations of environmental features, such as edges and vertices, are important for constructing a geometrically detailed egocentric cognitive map for goal-directed navigation and episodic memory. While egocentric neural representations of edges like egocentric boundary/border cells exist, those that selectively represent vertices egocentrically are yet unknown. Here we report that granular retrosplenial cortex (RSC) neurons in male mice generate spatial receptive fields e
Hippocampus is one of the earliest brain regions that gets affected by ischemia, however, no pharmacological therapy exists yet that can fully counteract the ischemic damage. Here we study the effect of sulbutiamine, a synthetic thiamine analogue that can cross the blood-brain barrier easily, on hippocampal neurons under an in vitro model of ischemia, oxygen-glucose deprivation (OGD). We find that exposure to OGD in the presence of sulbutiamine significantly increases neuronal viability and enha
Research Areas
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