Updated on 2025/12/15

写真a

 
HIRANO Minako
 
Organization
Faculty of Interdisciplinary Science and Engineering in Health Systems Associate Professor
Position
Associate Professor
External link

Degree

  • 博士(理学) ( 大阪大学 )

Research Interests

  • 光遺伝学

  • 1分子計測

  • 電気生理

  • イオンチャネル

Research Areas

  • Life Science / Biophysics

Education

  • Osaka University   大学院生命機能研究科   生命機能専攻

    2007.4 - 2010.3

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  • Nagoya University   大学院理学研究科   生命理学専攻

    2002.4 - 2004.3

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  • Nagoya University   理学部   生命理学科

    1998.4 - 2002.4

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Research History

  • Okayama University   学術研究院ヘルスシステム統合科学学域   Associate Professor

    2022.4

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  • 光産業創成大学院大学 光産業創成研究科   講師

    2012.5 - 2022.3

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  • 理化学研究所   特別研究員

    2010.4 - 2012.4

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Professional Memberships

Committee Memberships

  • 日本生物物理学会   分野別専門委員  

    2023   

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  • 日本生物物理学会   分野別専門委員  

    2020   

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  • 文部科学省 科学技術・学術政策研究所   科学技術専門家ネットワーク 専門調査員  

    2019   

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  • 日本生物物理学会   分野別専門委員  

    2019   

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    Committee type:Academic society

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  • 日本生物物理学会   分野別専門委員  

    2017   

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  • 公益財団法人新世代研究所   バイオ単分子研究会 委員  

    2015 - 2020   

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Papers

  • Direct insertion of an ion channel immobilized on a soft agarose gel bead into a lipid bilayer: an optimized method. Reviewed International journal

    Mami Asakura, Shuyan Wang, Minako Hirano, Toru Ide

    Analytical sciences   41 ( 7 )   1073 - 1082   2025.7

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    Language:English   Publishing type:Research paper (scientific journal)  

    In this paper, we report the development of a device that improves the conventional artificial lipid bilayer method and can measure channel currents more efficiently. Ion channel proteins are an attractive research target in biophysics, because their functions can be measured at the single-molecule level with high time resolution. In addition, they have attracted attention as targets for drug discovery because of their crucial roles in vivo. Although electrophysiological methods are powerful tools for studying channel proteins, they suffer from low measurement efficiency and require considerable skill. In our previous paper, we reported that by immobilizing channel proteins on agarose gel beads and forming an artificial lipid bilayer on the bead surface, we simultaneously solved two problems that had been hindering the efficiency of the artificial bilayer method: the time-consuming formation of artificial lipid bilayers and the time-consuming incorporation of channels into artificial bilayers. Previous studies have utilized crosslinked hard beads; however, here we show that channel current measurement can be achieved more simply and efficiently using non-crosslinked soft beads. In this study, we detailed the process of immobilizing channel proteins on the surface of non-crosslinked beads through chemical modification, allowing us to measure their channel activity. This method enables current measurements without the need for stringent bead size selection or high negative pressure.

    DOI: 10.1007/s44211-025-00792-y

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  • Mutagenesis Targeting the S153 Residue Within the Transmembrane β-Hairpin of Mosquito-Larvicidal Mpp46Ab Affects Its Toxicity and the Synergistic Toxicity with Cry4Aa. Reviewed International journal

    Tohru Hayakawa, Syun Yamaoka, Mami Asakura, Minako Hirano, Toru Ide

    Biology   14 ( 5 )   489   2025.4

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    We constructed a library of Mpp46Ab mutants, in which S153 within the transmembrane β-hairpin was randomly replaced by other amino acids. Mutagenesis and subsequent primary screening yielded 10 different Mpp46Ab mutants in addition to the wild type. Remarkably, S153 was replaced with a more hydrophobic amino acid in most of the mutants, and the S153I mutant in particular exhibited significantly increased toxicity. Electrophysiologic analysis using artificial lipid bilayers revealed that the single-channel conductance and PK/PCl permeability ratio were significantly increased for S153I pores. This suggests that the formation of highly ion-permeable and highly cation-selective toxin pores increases the influx of cations and water into cells, thereby facilitating osmotic shock. In addition, the S153F, S153L, and S153I mutants exhibited significantly reduced synergistic toxicity with Cry4Aa. Electrophysiologic analysis showed that the S153F, S153L, and S153I mutants form toxin pores with a significantly reduced PK/PNa permeability ratio and a significantly increased PK/PCa permeability ratio compared to wild-type pores. Thus, our results suggest that pore formation is central to the insecticidal activity of Mpp46Ab and that the ion permeability of toxin pores is a potential indicator correlated with both toxicity and synergistic toxicity with other toxins.

    DOI: 10.3390/biology14050489

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  • Efficient single-channel current measurements of the human BK channel using a liposome-immobilized gold probe Reviewed International journal

    Minako Hirano, Mami Asakura, Toru Ide

    Analytical Sciences   41 ( 4 )   329 - 334   2025.4

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    Authorship:Lead author, Corresponding author   Language:English   Publishing type:Research paper (scientific journal)   Publisher:Springer Science and Business Media LLC  

    Abstract

    The human BK channel (hBK) is an essential membrane protein that regulates various biological functions, and its dysfunction leads to serious diseases. Understanding the biophysical properties of hBK channels is crucial for drug development. Artificial lipid bilayer recording is used to measure biophysical properties at the single-channel level. However, this technique is time-consuming and complicated; thus, its measurement efficiency is very low. Previously, we developed a novel technique to improve the measurement efficiency by rapidly forming lipid bilayer membranes and incorporating ion channels into the membrane using a hydrophilically modified gold probe. To further improve our technique for application to the hBK channel, we combined it using the gold probe with a liposome fusion method. Using a probe on which liposomes containing hBK channels were immobilized, the channels were efficiently incorporated into the lipid bilayer membrane, and the measured channel currents showed the current characteristics of the hBK channel. This technique will be useful for the efficient measurements of the channel properties of hBK and other biologically important channels.

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    DOI: 10.1007/s44211-024-00707-3

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    Other Link: https://link.springer.com/article/10.1007/s44211-024-00707-3/fulltext.html

  • Potency of agarose gel‐supported lipid bilayers for electrophysiologic analysis of channel pores formed by Bacillus thuringiensis insecticidal proteins Reviewed International journal

    Tsubasa Okuda, Tomoya Takeuchi, Mami Asakura, Minako Hirano, Toru Ide, Tohru Hayakawa

    The FEBS Journal   292 ( 13 )   3508 - 3520   2025.3

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Wiley  

    Electrophysiologic analysis using artificial lipid bilayers is useful for studying the formation of pores by insecticidal proteins, especially the ion permeability of toxin pores. However, such studies are time‐consuming and require special skills, particularly regarding the construction of lipid bilayers and promoting toxin pore formation. To facilitate the analysis of toxin pore formation in the present study, we evaluated the usefulness of agarose gel‐supported lipid bilayers for electrophysiologic measurements using two structurally different mosquito‐larvicidal proteins, Mpp46Ab and Cry4Aa. The agarose gel‐supported lipid bilayers enabled the measurement of channel currents through pores made by both toxins and, notably, the lipid bilayers could be easily reconstructed even after disruption of the lipid bilayer. Using this system, measurements could be repeated at least five times using the same apparatus and toxins. We also investigated the effect of the lipid bilayer component on toxin pore formation and found that the incorporation of both cholesterol and sphingomyelin into the lipid bilayer facilitates the formation of pores by both Mpp46Ab and Cry4Aa. Both cholesterol and sphingomyelin are major components of lipid raft microdomains, suggesting that, in addition to recruiting toxin receptors, raft microdomains play a key role in membrane insertion and pore formation by insecticidal proteins.

    DOI: 10.1111/febs.70070

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  • MEMSミラー型レーザーマイクロダイセクション装置の開発 Reviewed

    長谷川 正仁, 工藤 靖, 平野 美奈子, 横田 浩章

    生体医工学   59 ( 4-5 )   95 - 103   2022.1

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    Language:Japanese   Publishing type:Research paper (scientific journal)  

    DOI: 10.11239/jsmbe.59.95

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  • Development of an automated system to measure ion channel currents using a surface-modified gold probe. Reviewed International journal

    Minako Hirano, Masahisa Tomita, Chikako Takahashi, Nobuyuki Kawashima, Toru Ide

    Scientific reports   11 ( 1 )   17934 - 17934   2021.9

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    Authorship:Lead author, Corresponding author   Language:English   Publishing type:Research paper (scientific journal)  

    Artificial lipid bilayer single-channel recording technique has been employed to determine the biophysical and pharmacological properties of various ion channels. However, its measurement efficiency is very low, as it requires two time-consuming processes: preparation of lipid bilayer membranes and incorporation of ion channels into the membranes. In order to address these problems, we previously developed a technique based on hydrophilically modified gold probes on which are immobilized ion channels that can be promptly incorporated into the bilayer membrane at the same time as the membrane is formed on the probes' hydrophilic area. Here, we improved further this technique by optimizing the gold probe and developed an automated channel current measurement system. We found that use of probes with rounded tips enhanced the efficiency of channel current measurements, and introducing a hydrophobic area on the probe surface, beside the hydrophilic one, further increased measurement efficiency by boosting membrane stability. Moreover, we developed an automated measurement system using the optimized probes; it enabled us to automatically measure channel currents and analyze the effects of a blocker on channel activity. Our study will contribute to the development of high-throughput devices to identify drug candidates affecting ion channel activity.

    DOI: 10.1038/s41598-021-97237-z

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  • Low-Light Photodetectors for Fluorescence Microscopy Reviewed

    Hiroaki Yokota, Atsuhito Fukasawa, Minako Hirano, Toru Ide

    APPLIED SCIENCES-BASEL   11 ( 6 )   2021.3

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  • A Lipid Bilayer Formed on a Hydrogel Bead for Single Ion Channel Recordings. Reviewed International journal

    Minako Hirano, Daiki Yamamoto, Mami Asakura, Tohru Hayakawa, Shintaro Mise, Akinobu Matsumoto, Toru Ide

    Micromachines   11 ( 12 )   2020.12

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    Ion channel proteins play important roles in various cell functions, making them attractive drug targets. Artificial lipid bilayer recording is a technique used to measure the ion transport activities of channel proteins with high sensitivity and accuracy. However, the measurement efficiency is low. In order to improve the efficiency, we developed a method that allows us to form bilayers on a hydrogel bead and record channel currents promptly. We tested our system by measuring the activities of various types of channels, including gramicidin, alamethicin, α-hemolysin, a voltage-dependent anion channel 1 (VDAC1), a voltage- and calcium-activated large conductance potassium channel (BK channel), and a potassium channel from Streptomyces lividans (KcsA channel). We confirmed the ability for enhanced measurement efficiency and measurement system miniaturizion.

    DOI: 10.3390/mi11121070

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  • The C-terminal region affects the activity of photoactivated adenylyl cyclase from Oscillatoria acuminata. Reviewed International journal

    Minako Hirano, Masumi Takebe, Tomoya Ishido, Toru Ide, Shigeru Matsunaga

    Scientific reports   9 ( 1 )   20262 - 20262   2019.12

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    Authorship:Lead author, Corresponding author   Language:English   Publishing type:Research paper (scientific journal)  

    Photoactivated adenylyl cyclase (PAC) is a unique protein that, upon blue light exposure, catalyzes cAMP production. The crystal structures of two PACs, from Oscillatoria acuminata (OaPAC) and Beggiatoa sp. (bPAC), have been solved, and they show a high degree of similarity. However, the photoactivity of OaPAC is much lower than that of bPAC, and the regulatory mechanism of PAC photoactivity, which induces the difference in activity between OaPAC and bPAC, has not yet been clarified. Here, we investigated the role of the C-terminal region in OaPAC, the length of which is the only notable difference from bPAC. We found that the photoactivity of OaPAC was inversely proportional to the C-terminal length. However, the deletion of more than nine amino acids did not further increase the activity, indicating that the nine amino acids at the C-terminal critically affect the photoactivity. Besides, absorption spectral features of light-sensing domains (BLUF domains) of the C-terminal deletion mutants showed similar light-dependent spectral shifts as in WT, indicating that the C-terminal region influences the activity without interacting with the BLUF domain. The study characterizes new PAC mutants with modified photoactivities, which could be useful as optogenetics tools.

    DOI: 10.1038/s41598-019-56721-3

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  • Electrostatic state of the cytoplasmic domain influences inactivation at the selectivity filter of the KcsA potassium channel. Reviewed International journal

    Minako Hirano, Toru Ide

    Biochimica et biophysica acta. Biomembranes   1861 ( 1 )   220 - 227   2019.1

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    Authorship:Lead author, Corresponding author   Language:English   Publishing type:Research paper (scientific journal)  

    KcsA is a proton-activated K+ channel that is regulated at two gates: an activation gate located in the inner entrance of the pore and an inactivation gate at the selectivity filter. Previously, we revealed that the cytoplasmic domain (CPD) of KcsA senses proton and that electrostatic changes of the CPD influences the opening and closing of the activation gate. However, our previous studies did not reveal the effect of CPD on the inactivation gate because we used a non-inactivating mutant (E71A). In the present study, we used mutants that did not harbor the E71A mutation, and showed that the electrostatic state of the CPD influences the inactivation gate. Three novel CPD mutants were generated in which some negatively charged amino acids were replaced with neutral amino acids. These CPD mutants conducted K+, but showed various inactivation properties. Mutants carrying the D149N mutation showed high open probability and slow inactivation, whereas those without the D149N mutation showed low open probability and fast inactivation, similar to wild-type KcsA. In addition, mutants with D149N showed poor K+ selectivity, and permitted Na+ to flow. These results indicated that electrostatic changes in the CPD by D149N mutation triggered the loss of fast inactivation and changes in the conformation of selectivity filter. Additionally, the loss of fast inactivation induced by D149N was reversed by R153A mutation, suggesting that not only the electrostatic state of D149, but also that of R153 affects inactivation.

    DOI: 10.1016/j.bbamem.2018.07.011

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  • A gold nano-electrode for single ion channel recordings. Reviewed International journal

    Daichi Okuno, Minako Hirano, Hiroaki Yokota, Junya Ichinose, Takamitsu Kira, Taiki Hijiya, Chihiro Uozumi, Masahiro Yamakami, Toru Ide

    Nanoscale   10 ( 8 )   4036 - 4040   2018.2

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    The artificial bilayer single channel recording technique is commonly used to observe the detailed physiological properties of various ion channel proteins. It permits easy control of the solution and membrane lipid composition, and is also compatible with pharmacological screening devices. However, its use is limited due to low measurement efficiency. Here, we developed a novel artificial bilayer single channel recording technique in which solubilized ion channel proteins immobilized on a gold nano-electrode are directly incorporated into a lipid bilayer at the same time as the bilayer is formed at the tip of it on coming in contact with an aqueous-oil interface. Using this technique, we measured the single channel currents of several types of channels including KcsA, MthK, hBK and P2X4. This technique requires only one action to simultaneously form the bilayers and reconstitute the channels into the membranes. This simplicity greatly increases the measurement efficiency and allows the technique to potentially be combined with high-throughput screening devices.

    DOI: 10.1039/c7nr08098k

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  • Liposome chaperon in cell-free membrane protein synthesis: One-step preparation of KcsA-integrated liposomes and electrophysiological analysis by the planar bilayer method Reviewed

    M. Ando, M. Akiyama, D. Okuno, M. Hirano, T. Ide, S. Sawada, Y. Sasaki, K. Akiyoshi

    Biomaterials Science   4 ( 2 )   258 - 264   2016.2

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Royal Society of Chemistry  

    DOI: 10.1039/c5bm00285k

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  • A Simple Method for Ion Channel Recordings Using Fine Gold Electrode. Reviewed

    Daichi Okuno, Minako Hirano, Hiroaki Yokota, Yukiko Onishi, Junya Ichinose, Toru Ide

    Analytical sciences : the international journal of the Japan Society for Analytical Chemistry   32 ( 12 )   1353 - 1357   2016

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    The artificial bilayer single-channel recording technique is commonly used to observe detailed pharmacological properties of various ion channel proteins. It permits easy control of the solution and membrane lipid composition, and is also compatible with pharmacological screening devices. However, its use is limited due to low measurement efficiency. Here, we develop a novel artificial bilayer single-channel recording technique in which bilayers are made and channels are reconstituted into the membranes by contacting a gold electrode to the lipid-solution interface. Using this technique, we measured the single-channel currents of two channel-forming peptides, gramicidin and alamethicin, and a channel-forming protein, α-hemolysin. This technique requires only one action, allowing the technique to potentially be combined with high-throughput screening devices.

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  • A single amino acid gates the KcsA channel. Reviewed International journal

    Minako Hirano, Daichi Okuno, Yukiko Onishi, Toru Ide

    Biochemical and biophysical research communications   450 ( 4 )   1537 - 40   2014.8

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    The KcsA channel is a proton-activated potassium channel. We have previously shown that the cytoplasmic domain (CPD) acts as a pH-sensor, and the charged states of certain negatively charged amino acids in the CPD play an important role in regulating the pH-dependent gating. Here, we demonstrate the KcsA channel is constitutively open independent of pH upon mutating E146 to a neutrally charged amino acid. In addition, we found that rearrangement of the CPD following this mutation was not large. Our results indicate that minimal rearrangement of the CPD, particularly around E146, is sufficient for opening of the KcsA channel.

    DOI: 10.1016/j.bbrc.2014.07.032

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  • Uncovering the protein translocon at the chloroplast inner envelope membrane. Reviewed International journal

    Shingo Kikuchi, Jocelyn Bédard, Minako Hirano, Yoshino Hirabayashi, Maya Oishi, Midori Imai, Mai Takase, Toru Ide, Masato Nakai

    Science (New York, N.Y.)   339 ( 6119 )   571 - 4   2013.2

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    Chloroplasts require protein translocons at the outer and inner envelope membranes, termed TOC and TIC, respectively, to import thousands of cytoplasmically synthesized preproteins. However, the molecular identity of the TIC translocon remains controversial. Tic20 forms a 1-megadalton complex at the inner membrane and directly interacts with translocating preproteins. We purified the 1-megadalton complex from Arabidopsis, comprising Tic20 and three other essential components, one of which is encoded by the enigmatic open reading frame ycf1 in the chloroplast genome. All four components, together with well-known TOC components, were found stoichiometrically associated with different translocating preproteins. When reconstituted into planar lipid bilayers, the purified complex formed a preprotein-sensitive channel. Thus, this complex constitutes a general TIC translocon.

    DOI: 10.1126/science.1229262

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  • Automated parallel recordings of topologically identified single ion channels. Reviewed International journal

    Ryuji Kawano, Yutaro Tsuji, Koji Sato, Toshihisa Osaki, Koki Kamiya, Minako Hirano, Toru Ide, Norihisa Miki, Shoji Takeuchi

    Scientific reports   3   1995 - 1995   2013

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    Although ion channels are attractive targets for drug discovery, the systematic screening of ion channel-targeted drugs remains challenging. To facilitate automated single ion-channel recordings for the analysis of drug interactions with the intra- and extracellular domain, we have developed a parallel recording methodology using artificial cell membranes. The use of stable lipid bilayer formation in droplet chamber arrays facilitated automated, parallel, single-channel recording from reconstituted native and mutated ion channels. Using this system, several types of ion channels, including mutated forms, were characterised by determining the protein orientation. In addition, we provide evidence that both intra- and extracellular amyloid-beta fragments directly inhibit the channel open probability of the hBK channel. This automated methodology provides a high-throughput drug screening system for the targeting of ion channels and a data-intensive analysis technique for studying ion channel gating mechanisms.

    DOI: 10.1038/srep01995

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  • Role of the KcsA channel cytoplasmic domain in pH-dependent gating. Reviewed International journal

    Minako Hirano, Yukiko Onishi, Toshio Yanagida, Toru Ide

    Biophysical journal   101 ( 9 )   2157 - 62   2011.11

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    The KcsA channel is a representative potassium channel that is activated by changes in pH. Previous studies suggested that the region that senses pH is entirely within its transmembrane segments. However, we recently revealed that the cytoplasmic domain also has an important role, because its conformation was observed to change dramatically in response to pH changes. Here, to investigate the effects of the cytoplasmic domain on pH-dependent gating, we made a chimera mutant channel consisting of the cytoplasmic domain of the KcsA channel and the transmembrane region of the MthK channel. The chimera showed a pH dependency similar to that of KcsA, indicating that the cytoplasmic domain can act as a pH sensor. To identify how this region detects pH, we substituted certain cytoplasmic domain amino acids that are normally negatively charged at pH 7 for neutral ones in the KcsA channels. These mutants opened independently of pH, suggesting that electrostatic charges have a major role in the cytoplasmic domain's ability to sense and respond to pH.

    DOI: 10.1016/j.bpj.2011.09.024

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  • Direct manipulation of a single potassium channel gate with an atomic force microscope probe. Reviewed International journal

    Mitsunori Kitta, Toru Ide, Minako Hirano, Hiroyuki Tanaka, Toshio Yanagida, Tomoji Kawai

    Small (Weinheim an der Bergstrasse, Germany)   7 ( 16 )   2379 - 83   2011.8

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    Ion channels are membrane proteins that regulate cell functions by controlling the ion permeability of cell membranes. An ion channel contains an ion-selective pore that permeates ions and a sensor that senses a specific stimulus such as ligand binding to regulate the permeability. The detailed molecular mechanisms of this regulation, or gating, are unknown. Gating is thought to occur from conformational changes in the sensor domain in response to the stimulus, which results in opening the gate to permit ion conduction. Using an atomic force microscope and artificial bilayer system, a mechanical stimulus is applied to a potassium channel, and its gating is monitored in real time. The channel-open probability increases greatly when pushing the cytoplasmic domain toward the membrane. This result shows that a mechanical stimulus at the cytoplasmic domain causes changes in the gating and is the first to show direct evidence of coupling between conformational changes in the cytoplasmic domain and channel gating. This novel technology has the potential to be a powerful tool for investigating the activation dynamics in channel proteins.

    DOI: 10.1002/smll.201002337

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  • Channels formed by amphotericin B covalent dimers exhibit rectification. Reviewed International journal

    Minako Hirano, Yuko Takeuchi, Nobuaki Matsumori, Michio Murata, Toru Ide

    The Journal of membrane biology   240 ( 3 )   159 - 64   2011.4

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    Amphotericin B (AmB) is a widely used antifungal antibiotic with high specificity for fungi. We previously synthesized several covalently conjugated AmB dimers to clarify the AmB channel structure. Among these dimers, that with an aminoalkyl linker was found to exhibit potent hemolytic activity. We continue this work by investigating the channel activity of the dimer, finding that all channels comprised of AmB dimers show rectification. The direction of the dimer channel in the membrane depended on the electric potential at which the dimer channel was formed. On the other hand, only about half the monomer channels showed rectification. In addition, these channels were easily switched from a rectified to a nonrectified state following voltage stimulation, indicating instability. We propose a model to describe the AmB channel structure that explains why AmB dimer channels necessarily show rectification.

    DOI: 10.1007/s00232-011-9354-x

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  • Immobilizing channel molecules in artificial lipid bilayers for simultaneous electrical and optical single channel recordings Reviewed

    Toru Ide, Minako Hirano, Takehiko Ichikawa

    Cell Signaling Reactions: Single-Molecular Kinetic Analysis   107 - 120   2011

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    Language:English   Publishing type:Part of collection (book)   Publisher:Springer Netherlands  

    DOI: 10.1007/978-90-481-9864-1_5

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  • Rearrangements in the KcsA cytoplasmic domain underlie its gating. Reviewed International journal

    Minako Hirano, Yuko Takeuchi, Takaaki Aoki, Toshio Yanagida, Toru Ide

    The Journal of biological chemistry   285 ( 6 )   3777 - 83   2010.2

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    A change of cytosolic pH 7 to 4 opens the bacterial potassium channel KcsA. However, the overall gating mechanism leading to channel opening, especially the contribution of the cytoplasmic domain, remains unsolved. Here we report that deletion of the cytoplasmic domain resulted in changes in channel conductance and gating behavior at pH 4 without channel opening at pH 7. To probe for rearrangements in the cytoplasmic domain during channel opening, amino acid residues were substituted with cysteines and labeled with a fluorophore (tetramethylrhodamine maleimide) that exhibits increased fluorescence intensity upon transfer from a hydrophilic to hydrophobic environment. In all cases channel open probability (P(o)) was approximately 1 at pH 4 and approximately 0 at pH 7. Major increases in fluorescence intensity were observed for tetramethylrhodamine maleimide-labeled residues in the cytoplasmic domain as pH changed from 7 to 4, which suggests the fluorophores shifted from a hydrophilic to hydrophobic environment. Dipicrylamide, a lipid soluble quencher, reduced the fluorescence intensities of labeled residues in the cytosolic domain at pH 4. These results reveal that a decrease in pH introduces major conformational rearrangements associated with channel opening in the KcsA cytoplasmic domain.

    DOI: 10.1074/jbc.M109.084368

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  • A polysaccharide-based container transportation system powered by molecular motors. Reviewed International journal

    Youichi Tsuchiya, Tomotaka Komori, Minako Hirano, Tomohiro Shiraki, Akira Kakugo, Toru Ide, Jian-Ping Gong, Sunao Yamada, Toshio Yanagida, Seiji Shinkai

    Angewandte Chemie (International ed. in English)   49 ( 4 )   724 - 7   2010

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    DOI: 10.1002/anie.200904909

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  • Single channel properties of lysenin measured in artificial lipid bilayers and their applications to biomolecule detection. Reviewed

    Takaaki Aoki, Minako Hirano, Yuko Takeuchi, Toshihide Kobayashi, Toshio Yanagida, Toru Ide

    Proceedings of the Japan Academy. Series B, Physical and biological sciences   86 ( 9 )   920 - 5   2010

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    Single channel currents of lysenin were measured using artificial lipid bilayers formed on a glass micropipette tip. The single channel conductance for KCl, NaCl, CaCl(2), and Trimethylammonium-Cl were 474 ± 87, 537 ± 66, 210 ± 14, and 274 ± 10 pS, respectively, while the permeability ratio P(Na)/P(Cl) was 5.8. By adding poly(deoxy adenine) or poly(L-lysine) to one side of the bilayer, channel currents were influenced when membrane voltages were applied to pass the charged molecules through the channel pores. Current inhibition process was concentration-dependent with applied DNA. As the current fluctuations of α-hemolysin channels is often cited as the detector in a molecular sensor, these results suggest that by monitoring channel current changes, the lysenin channel has possibilities to detect interactions between it and certain biomolecules by its current fluctuations.

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  • 2P323 Mechanical control of single ion channel activity by Atomic Force Microscopy(The 48th Annual Meeting of the Biophysical Society of Japan)

    Kitta Mitsunori, Ide Toru, Hirano Minako, Takeuchi Yuko, Aoki Takaaki, Tanaka Hiroyuki, Yanagida Toshio, Kawai Tomoji

    Seibutsu Butsuri   50 ( 2 )   S139   2010

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    Language:English   Publisher:The Biophysical Society of Japan General Incorporated Association  

    DOI: 10.2142/biophys.50.S139_4

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  • Current recordings of ion channel proteins immobilized on resin beads. Reviewed International journal

    Minako Hirano, Yuko Takeuchi, Takaaki Aoki, Toshio Yanagida, Toru Ide

    Analytical chemistry   81 ( 8 )   3151 - 4   2009.4

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    Current ion channel current measurement techniques are cumbersome, as they require many steps and much time. This is especially true when reconstituting channels into liposomes and incorporating them into lipid bilayers. Here, we report a novel method that measures ion channel current more efficiently than current methods. We applied our method to KcsA and MthK channels by binding them to cobalt affinity gel beads with histidine tags and then forming a lipid bilayer membrane on the bead. This allowed channels to incorporate into the bilayer and channel currents to be measured quickly and easily. The efficiency was such that currents could be recorded with extremely low amounts of protein. In addition, the channel direction could be determined by the histidine tag. This method has the potential to be applied to various channel proteins and channel research in general.

    DOI: 10.1021/ac900286z

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  • Ion Channels Reviewed

    Toru Ide, Minako Hirano, Yuko Takeuchi

    Single Molecule Dynamics in Life Science   87 - 97   2009.2

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    Language:English   Publishing type:Part of collection (book)   Publisher:Wiley-VCH Verlag GmbH & Co. KGaA  

    DOI: 10.1002/9783527626137.ch4

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  • Lipid bilayers at the gel interface for single ion channel recordings. Reviewed International journal

    Toru Ide, Toshihide Kobayashi, Minako Hirano

    Analytical chemistry   80 ( 20 )   7792 - 5   2008.10

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    Single-channel recording using artificial lipid bilayers is along with the patch-clamp technique a very powerful tool to physiologically and pharmacologically study ion channels. It is particularly advantageous in studying channels that are technically difficult to access with a patch pipet. However, the fragility of the bilayers and the difficulty to incorporate ion channels into them significantly compromises measurement efficiency. We have developed a novel method for forming artificial lipid bilayers on a hydrogel surface that significantly improves the measurement efficiency. Bilayers formed almost instantly (<1 s) and were able to incorporate various types of ion channel proteins within a short time (<30 s) enabling multichannel measurements. These results indicate that this method can potentially be applied to developing high-throughput screening devices for drug design.

    DOI: 10.1021/ac801224a

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  • Lipid bilayers at gel/gel interface for ion channel recordings Reviewed

    Minako Hirano, Toshihide Kobayashi, Toru Ide

    e-Journal of Surface Science and Nanotechnology   6   130 - 133   2008.5

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Surface Science Society Japan  

    DOI: 10.1380/ejssnt.2008.130

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MISC

  • 単一イオンチャンネルの簡便計測システム Invited

    Minako HIRANO, Mami ASAKURA, Toru IDE

    Seibutsu Butsuri   63 ( 2 )   110 - 114   2023

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    Authorship:Lead author   Publisher:Biophysical Society of Japan  

    DOI: 10.2142/biophys.63.110

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  • ハイブリッドフォトディテクタ(HPD)による広視野高時間分解能生体1分子蛍光検出

    深澤宏仁, 中野学, 長澤貴康, 平野美奈子, 井出徹, 横田浩章

    レーザ顕微鏡研究会講演会抄録集   44th   2019

  • 無細胞タンパク質発現/リポソーム系を用いた1段階KcsA組込みリポソームの構築と機能解析

    安藤満, 安藤満, 秋山源, 奥野大地, 平野美奈子, 井出徹, 澤田晋一, 澤田晋一, 佐々木善浩, 秋吉一成, 秋吉一成

    日本膜学会年会講演要旨集   37th   2015

  • 明らかになった葉緑体のトランスロコン

    菊池 真吾, 平野 美奈子, 井出 徹, 中井 正人

    細胞工学   32 ( 8 )   882 - 883   2013.7

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    Language:Japanese   Publishing type:Article, review, commentary, editorial, etc. (scientific journal)  

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  • The KcsA Channel Cytoplasmic Domain Effects on the Inactivation Gating

    Minako Hirano, Yukiko Onishi, Daichi Okuno, Toru Ide

    BIOPHYSICAL JOURNAL   104 ( 2 )   128A - 128A   2013.1

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    Language:English   Publishing type:Research paper, summary (international conference)  

    DOI: 10.1016/j.bpj.2012.11.735

    Web of Science

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  • Mechanically Manipulating a Single Channel Gate

    井出徹, 平野美奈子, 奥野大地

    生物物理   52 ( 6 )   289 - 290   2012.11

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    Language:Japanese   Publishing type:Article, review, commentary, editorial, etc. (scientific journal)  

    J-GLOBAL

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  • 人工細胞膜を用いたイオンチャネル創薬スクリーニングシステム

    川野竜司, 辻祐太郎, 辻祐太郎, 神谷厚輝, 大崎寿久, 平野美奈子, 平野美奈子, 井出徹, 井出徹, 三木典尚, 三木典尚, 竹内昌治, 竹内昌治

    高分子学会予稿集(CD-ROM)   61 ( 2 )   2012

  • Automated drug screening system for ion channel proteins

    R. Kawano, Y. Tsuji, Y. Tsuji, M. Hirano, T. Osaki, H. Sasaki, K. Kamiya, N. Miki, N. Miki, T. Ide, T. Ide, S. Takeuchi, S. Takeuchi

    15th International Conference on Miniaturized Systems for Chemistry and Life Sciences 2011, MicroTAS 2011   1   76 - 78   2011.12

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  • 可視1分子計測によるチャネルたんぱく質の分子内運動計測

    井出徹, 井出徹, 平野美奈子, 平野美奈子, 橘田晃宜

    表面科学学術講演会講演要旨集   30th   2010

  • AFM操作による単一分子カリウムチャンネルの開閉

    橘田晃宜, 平野美奈子, 柳田敏雄, 田中裕行, 田中裕行, 井出徹, 川合知二

    表面科学学術講演会講演要旨集   30th   2010

  • 微小プローブによるチャネルタンパクの直接操作

    井出徹, 平野美奈子, 橘田晃宜

    日本生体エネルギー研究会討論会講演要旨集   36th   2010

  • 膜タンパク質の電気的・力学的同時計測による一分子測定

    橘田晃宜, 平野美奈子, 柳田敏雄, 田中裕行, 田中裕行, 井出徹, 川合知二

    応用物理学会学術講演会講演予稿集(CD-ROM)   71st   2010

  • KcsAチャネルの細胞内ドメインによるプロトン感受機構の解明

    平野美奈子, 井出徹

    日本生体エネルギー研究会討論会講演要旨集   36th   2010

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Presentations

  • 新規イオンチャネル活性測定法の開発と光活性化タンパク質の改変 Invited

    平野美奈子

    第8回分子サイバネティクス・第52回分子ロボティクス定例研究会  2024.4.22 

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    Presentation type:Oral presentation (invited, special)  

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  • Novel ion channel activity measurement system for drug screening Invited

    Minako Hirano

    The 15th international symposium for future technology creating better human health and society  2024.2.1 

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    Presentation type:Oral presentation (invited, special)  

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  • 光活性化アデニル酸シクラーゼの活性制御機構の理解に向けた研究・開発 Invited

    平野美奈子, 建部益美, 北村有希, 三好佑奈, 井出徹

    第45回日本分子生物学会  2022.12.22 

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Industrial property rights

  • 光活性化アデニル酸シクラーゼ

    平野 美奈子, 松永 茂, 建部 益美

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    Applicant:浜松ホトニクス株式会社、学校法人光産業創成大学院大学

    Application no:特願2019-129374  Date applied:2019.7.11

    Patent/Registration no:特許7340372  Date registered:2023.8.30 

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  • 人工生体膜を製造するデバイス及び製造方法

    平野美奈子, 井出徹

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    Applicant:学校法人光産業創成大学院大学

    Application no:特願2015-154014  Date applied:2015.8.4

    Announcement no:特開2017-029090  Date announced:2017.2.9

    Patent/Registration no:特許6632826  Date registered:2019.12.20 

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Awards

  • Hot Article Award

    2025.4   Efficient single-channel current measurements of the human BK channel using a liposome-immobilized gold probe.

    Hirano M., Asakura M., Ide T.

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  • Hot Article Award

    2016.12   Analytical Sciences  

    Okuno, D, Hirano, M, Yokota, H, Onishi, Y, Ichinose, J, Ide, T

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  • ATI研究奨励賞

    2014.7   (公財)新世代研究所   イオンチャネルの1分子計測・操作による構造機能相関の解明

    平野 美奈子

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  • 2012 Research Paper Award

    2013.11   Rebeiz財団  

    M. Nakai, M. Hirano, S. Kikuchi, J. Bédard, Y. Hirabayashi, M. Oishi, M. Imai, M. Takase, T. Ide

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  • Advanced Internship for Interdisciplinary Medical Sciences and Engineering (2025academic year) Year-round  - その他

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  • Laboratory Work and Practice on Basic Engineering (2024academic year) 1st and 2nd semester  - 火5~8

  • Laboratory Work and Practice on Basic Engineering (2024academic year) 1st and 2nd semester  - 火5~8

  • Biochemistry 2 (2024academic year) Second semester  - 月3~4,木1~2

  • Biochemistry 2 (2024academic year) Second semester  - 月3~4,木1~2

  • Biotechnology Experiment 1 (2024academic year) 1st semester  - 月5~8,木5~8

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  • SDGs:Life Science (2023academic year) Fourth semester  - 木7~8

  • Advanced Internship for Interdisciplinary Medical Sciences and Engineering (2023academic year) Year-round  - その他

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  • Research Works for Interdisciplinary Medical Sciences and Engineering (2023academic year) Year-round  - その他

  • Research Works for Interdisciplinary Medical Sciences and Engineering (2023academic year) Year-round  - その他

  • Advanced Molecular Cell Biology (2023academic year) Prophase  - 月3~4

  • Laboratory Work and Practice on Basic Engineering (2023academic year) 1st and 2nd semester  - 火5~8

  • Laboratory Work and Practice on Basic Engineering (2023academic year) 1st and 2nd semester  - 火5~8

  • Biochemistry 2 (2023academic year) Second semester  - 月3~4,木1~2

  • Biochemistry 2 (2023academic year) Second semester  - 月3~4,木1~2

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  • SDGs:Life Science (2022academic year) Fourth semester  - 木7~8

  • Molecular Biology (2022academic year) Second semester  - 火5~6,金3~4

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  • Laboratory Work and Practice on Basic Engineering (2022academic year) 1st and 2nd semester  - 火5~8

  • Biochemistry and Exercises 2 (2022academic year) Second semester  - 月3~4,木3~4

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  • 生物物理学 (2022academic year) 前期  - その他

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