Kyoto University · Biochemistry, Genetics and Molecular Biology
Professor Kenta Terai's research lab specializes in developing advanced biosensors and molecular imaging techniques to study dynamic cellular processes in living systems. The lab focuses on understanding metabolic regulation, DNA damage response, and vascular development using genetically encoded FRET biosensors and live imaging in transgenic models. Key research directions include real-time monitoring of signaling molecules like AMPK and calcium, elucidating mechanisms of cell cycle checkpoint control, and uncovering novel regulators of vascular remodeling. The lab integrates molecular biology, live-cell imaging, and genetic models to explore fundamental biological processes with implications for disease mechanisms and therapeutic interventions.
Figures are computed from collected data and may differ slightly.
AMP-activated protein kinase (AMPK), a master regulator of cellular metabolism, is a potential target for type 2 diabetes. Although extensive in vitro studies have revealed the complex regulation of AMPK, much remains unknown about the regulation in vivo. We therefore developed transgenic mice expressing a highly sensitive fluorescence resonance energy transfer (FRET)-based biosensor for AMPK, called AMPKAR-EV. AMPKAR-EV allowed us to readily examine the role of LKB1, a canonical stimulator of A
Two decades have passed since the development of the first calcium indicator based on the green fluorescent protein (GFP) and the principle of Förster resonance energy transfer (FRET). During this period, researchers have advanced many novel ideas for the improvement of such genetically encoded FRET biosensors, which have allowed them to expand their targets from small molecules to signaling proteins and physicochemical properties. Although the merits of "genetically encoded" FRET biosensors bec
Oxide thin films are usually grown on substrates which offer the smallest mismatch with the desired structure of the film. The choice of high-quality substrates with suitable lattice constants is unfortunately very limited. Coherently grown films are therefore always under tensile or compressive in-plane strain. We report on the growth of a Ba1−xSrxTiO3/BaTiO3 bilayer buffer on a SrTiO3 substrate. Changing the Sr/Ba ratio in the Ba1−xSrxTiO3 layer can be used to select a desired in-plane lattice
After acute DNA damage, the cell arrests S-phase progression by inhibiting origin initiation and fork progression to repair damaged DNA. The intra-S-phase checkpoint kinase Chk1 phosphorylates Cdc25A to target the latter for degradation by CRL1(β-TrCP) and so inhibit origin firing. The mechanism for inhibiting fork progression, however, has not been identified. Here, we show that degradation of p12, the fourth subunit of DNA polymerase δ, is critical for inhibiting fork progression. CRL4(Cdt2) i
Vascular regression is essential to remove redundant vessels during the formation of an efficient vascular network that can transport oxygen and nutrient to every corner of the body. However, no mechanism is known to explain how major blood vessels regress during development. Here we use the dorsal part of the caudal vein plexus (dCVP) in Zebrafish to investigate the mechanism of regression and discover a new role of Yap/Taz in vascular regression. During regression, Yap/Taz is activated by bloo
Prostaglandin E<sub>2</sub> (PGE<sub>2</sub>) promotes tumor progression through evasion of antitumor immunity. In stark contrast to cyclooxygenase-dependent production of PGE<sub>2</sub>, little is known whether PGE<sub>2</sub> secretion is regulated within tumor tissues. Here, we show that VEGF-dependent release of thromboxane A<sub>2</sub> (TXA<sub>2</sub>) triggers Ca<sup>2+</sup> transients in tumor cells, culminating in PGE<sub>2</sub> secretion and subsequent immune evasion in the early s
We have studied the electronic and magnetic properties of epitaxially grown ${\text{CaMn}}_{1\ensuremath{-}x}{\text{Ru}}_{x}{\text{O}}_{3}$ thin films $(x=1.0,0.75,0.5)$ by soft x-ray absorption, soft x-ray magnetic circular dichroism (XMCD), and hard x-ray photoemission spectroscopy (HXPES) measurements. The XMCD studies indicated that the spin moments of Mn and Ru are aligned in opposite directions. The valence-band HXPES spectra revealed that the $\text{Ru}\text{ }4d$ ${t}_{2g}$ states around
Vasculogenesis is essential during early development to construct networks transporting oxygen, blood and nutrients. Tip and stalk cells are specialized endothelial cells involved in novel vessel formation because of their behavior such as sprouting as a leading cell and following tip cell. However, the spatiotemporal details determining the emergence of these cells are unknown. Here, we first show that the ERK activity in endothelial cells represents the precursor of tip and stalk cells for vas
Canonical epidermal growth factor (EGF) receptor (EGFR) activation involves the binding of seven EGFR ligands (EGFRLs); however, their extracellular dynamics remain elusive. Here, employing fluorescent probes and a tool for triggering ectodomain shedding, we show that epiregulin (EREG), a low-affinity EGFRL, rapidly and efficiently activates EGFR in Madin-Darby canine kidney (MDCK) epithelial cells and mouse epidermis. During collective cell migration, EGFR and extracellular signal-regulated kin
During muscle regeneration, extracellular signal-regulated kinase (ERK) promotes both proliferation and migration. However, the relationship between proliferation and migration is poorly understood in this context. To elucidate this complex relationship on a physiological level, we established an intravital imaging system for measuring ERK activity, migration speed, and cell-cycle phases in mouse muscle satellite cell-derived myogenic cells. We found that <i>in vivo</i>, ERK is maximally activat
Extracellular signal-regulated kinase (ERK) plays critical roles in T cell development in the thymus. Nevertheless, the dynamics of ERK activity and the role of ERK in regulating thymocyte motility remain largely unknown due to technical limitations. To visualize ERK activity in thymocytes, we here developed knockin reporter mice expressing a Förster/fluorescence resonance energy transfer (FRET)-based biosensor for ERK from the ROSA26 locus. Live imaging of thymocytes isolated from the reporter
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