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Dive into the research topics where Izumi Ishigami is active.

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Featured researches published by Izumi Ishigami.


Biochemistry | 2010

Important roles of Tyr43 at the putative heme distal side in the oxygen recognition and stability of the Fe(II)-O2 complex of YddV, a globin-coupled heme-based oxygen sensor diguanylate cyclase.

Kenichi Kitanishi; Kazuo Kobayashi; Yuriko Kawamura; Izumi Ishigami; Takashi Ogura; Kyosuke Nakajima; Jotaro Igarashi; Atsunari Tanaka; Toru Shimizu

YddV from Escherichia coli (Ec) is a novel globin-coupled heme-based oxygen sensor protein displaying diguanylate cyclase activity in response to oxygen availability. In this study, we quantified the turnover numbers of the active [Fe(III), 0.066 min(-1); Fe(II)-O(2) and Fe(II)-CO, 0.022 min(-1)] [Fe(III), Fe(III)-protoporphyrin IX complex; Fe(II), Fe(II)-protoporphyrin IX complex] and inactive forms [Fe(II) and Fe(II)-NO, <0.01 min(-1)] of YddV for the first time. Our data indicate that the YddV reaction is the rate-determining step for two consecutive reactions coupled with phosphodiesterase Ec DOS activity on cyclic di-GMP (c-di-GMP) [turnover number of Ec DOS-Fe(II)-O(2), 61 min(-1)]. Thus, O(2) binding and the heme redox switch of YddV appear to be critical factors in the regulation of c-di-GMP homeostasis. The redox potential and autoxidation rate of heme of the isolated heme domain of YddV (YddV-heme) were determined to be -17 mV versus the standard hydrogen electrode and 0.0076 min(-1), respectively. The Fe(II) complexes of Y43A and Y43L mutant proteins (residues at the heme distal side of the isolated heme-bound globin domain of YddV) exhibited very low O(2) affinities, and thus, their Fe(II)-O(2) complexes were not detected on the spectra. The O(2) dissociation rate constant of the Y43W protein was >150 s(-1), which is significantly larger than that of the wild-type protein (22 s(-1)). The autoxidation rate constants of the Y43F and Y43W mutant proteins were 0.069 and 0.12 min(-1), respectively, which are also markedly higher than that of the wild-type protein. The resonance Raman frequencies representing ν(Fe-O(2)) (559 cm(-1)) of the Fe(II)-O(2) complex and ν(Fe-CO) (505 cm(-1)) of the Fe(II)-CO complex of Y43F differed from those (ν(Fe-O(2)), 565 cm(-1); ν(Fe-CO), 495 cm(-1)) of the wild-type protein, suggesting that Tyr43 forms hydrogen bonds with both O(2) and CO molecules. On the basis of the results, we suggest that Tyr43 located at the heme distal side is important for the O(2) recognition and stability of the Fe(II)-O(2) complex, because the hydroxyl group of the residue appears to interact electrostatically with the O(2) molecule bound to the Fe(II) complex in YddV. Our findings clearly support a role of Tyr in oxygen sensing, and thus modulation of overall conversion from GTP to pGpG via c-di-GMP catalyzed by YddV and Ec DOS, which may be applicable to other globin-coupled oxygen sensor enzymes.


Inorganic Chemistry | 2013

Relationship between the electron density of the heme Fe atom and the vibrational frequencies of the Fe-bound carbon monoxide in myoglobin.

Ryu Nishimura; Tomokazu Shibata; Hulin Tai; Izumi Ishigami; Takashi Ogura; Satoshi Nagao; Takashi Matsuo; Shun Hirota; Kiyohiro Imai; Saburo Neya; Akihiro Suzuki; Yasuhiko Yamamoto

We analyzed the vibrational frequencies of the Fe-bound carbon monoxide (CO) of myoglobin reconstituted with a series of chemically modified heme cofactors possessing a heme Fe atom with a variety of electron densities. The study revealed that the stretching frequency of Fe-bound CO (ν(CO)) increases with decreasing electron density of the heme Fe atom (ρ(Fe)). This finding demonstrated that the ν(CO) value can be used as a sensitive measure of the ρ(Fe) value and that the π back-donation of the heme Fe atom to CO is affected by the heme π-system perturbation induced through peripheral side chain modifications.


Inorganic Chemistry | 2014

Electronic Control of Discrimination between O2 and CO in Myoglobin Lacking the Distal Histidine Residue

Ryu Nishimura; Tomokazu Shibata; Izumi Ishigami; Takashi Ogura; Hulin Tai; Satoshi Nagao; Takashi Matsuo; Shun Hirota; Osami Shoji; Yoshihito Watanabe; Kiyohiro Imai; Saburo Neya; Akihiro Suzuki; Yasuhiko Yamamoto

We analyzed the oxygen (O2) and carbon monoxide (CO) binding properties of the H64L mutant of myoglobin reconstituted with chemically modified heme cofactors possessing a heme Fe atom with a variety of electron densities, in order to elucidate the effect of the removal of the distal His64 on the control of both the O2 affinity and discrimination between O2 and CO of the protein by the intrinsic heme Fe reactivity through the electron density of the heme Fe atom (ρFe). The study revealed that, as in the case of the native protein, the O2 affinity of the H64L mutant protein is regulated by the ρFe value in such a manner that the O2 affinity of the protein decreases, due to an increase in the O2 dissociation rate constant, with a decrease in the ρFe value, and that the O2 affinities of the mutant and native proteins are affected comparably by a given change in the ρFe value. On the other hand, the CO affinity of the H64L mutant protein was found to increase, due to a decrease in the CO dissociation rate constant, with a decrease in the ρFe value, whereas that of the native protein was essentially independent of a change in the ρFe value. As a result, the regulation of the O2/CO discrimination in the protein through the ρFe value is affected by the distal His64. Thus, the study revealed that the electronic tuning of the intrinsic heme Fe reactivity through the ρFe value plays a vital role in the regulation of the protein function, as the heme environment furnished by the distal His64 does.


Biochimica et Biophysica Acta | 2011

T-quaternary structure of oxy human adult hemoglobin in the presence of two allosteric effectors, L35 and IHP ☆

Kenji Kanaori; Yusuke Tajiri; Antonio Tsuneshige; Izumi Ishigami; Takashi Ogura; Kunihiko Tajima; Saburo Neya; Takashi Yonetani

The cooperative O(2)-binding of hemoglobin (Hb) have been assumed to correlate to change in the quaternary structures of Hb: T(deoxy)- and R(oxy)-quaternary structures, having low and high O(2)-affinities, respectively. Heterotropic allosteric effectors have been shown to interact not only with deoxy- but also oxy-Hbs causing significant reduction in their O(2)-affinities and the modulation of cooperativity. In the presence of two potent effectors, L35 and inositol hexaphosphate (IHP) at pH 6.6, Hb exhibits extremely low O(2)-affinities (K(T)=0.0085mmHg(-1) and K(R)=0.011mmHg(-1)) and thus a very low cooperativity (K(R)/K(T)=1.3 and L(0)=2.4). (1)H-NMR spectra of human adult Hb with these two effectors were examined in order to determine the quaternary state of Hb in solution and to clarify the correlation between the O(2)-affinities and the structural change of Hb caused by the heterotropic effectors. At pH 6.9, (1)H-NMR spectrum of deoxy-Hb in the presence of L35 and IHP showed a marker of the T-quaternary structure (the T-marker) at 14ppm, originated from inter- dimeric α(1)β(2)- (or α(2)β(1)-) hydrogen-bonds, and hyperfine-shifted (hfs) signals around 15-25ppm, caused by high-spin heme-Fe(II)s. Upon addition of O(2), the hfs signals disappeared, reflecting that the heme-Fe(II)s are ligated with O(2), but the T-marker signals still remained, although slightly shifted and broadened, under the partial pressure of O(2) (P(O2)) of 760mmHg. These NMR results accompanying with visible absorption spectroscopy and visible resonance Raman spectroscopy reveal that oxy-Hb in the presence of L35 and IHP below pH 7 takes the ligated T-quaternary structure under the P(O2) of 760mmHg. The L35-concentration dependence of the T-marker in the presence of IHP indicates that there are more than one kind of L35-binding sites in the ligated T-quaternary structure. The stronger binding sites are probably intra-dimeric binding sites between α(1)G- and β(1)G-helices, and the other weaker binding site causes the R→T transition without release of O(2). The fluctuation of the tertiary structure of Hb seems to be caused by both the structural perturbation of α(1)β(1) (or α(2)β(2)) intra-dimeric interface, where the stronger L35-binding sites exist, and by the IHP-binding to the α(1)α(2)- (or β(1)β(2)-) cavity. The tertiary structural fluctuation induced by the allosteric effectors may contribute to the significant reduction of the O(2)-affinity of oxy-Hb, which little depends on the quaternary structures. Therefore, the widely held assumptions of the structure-function correlation of Hb - [the deoxy-state]=[the T-quaternary structure]=[the low O(2)-affinity state] and [the oxy-state]=[the R-quaternary structure]=[the high O(2)-affinity state] and the O(2)-affiny of Hb being regulated by the T/R-quaternary structural transition - are no longer sustainable. This article is part of a Special Issue entitled: Allosteric cooperativity in respiratory proteins.


Chemistry Letters | 2012

An Intermediate Conformational State during Ligand Binding to Cytochrome c Oxidase Detected by Time-resolved Resonance Raman Analyses of Heme Peripheral Groups

Izumi Ishigami; Takeshi Nishigaki; Kyoko Shinzawa-Itoh; Shinya Yoshikawa; Satoru Nakashima; Takashi Ogura


Bulletin of the Chemical Society of Japan | 2014

Effect of the Electron Density of the Heme Fe Atom on the Fe–Histidine Coordination Bond in Deoxy Myoglobin

Ryu Nishimura; Tomokazu Shibata; Hulin Tai; Izumi Ishigami; Sachiko Yanagisawa; Takashi Ogura; Saburo Neya; Akihiro Suzuki; Yasuhiko Yamamoto


生物物理 | 2014

2P091 チトクローム酸化酵素の反応初期過程における共役機構の解明(02. ヘム蛋白質,ポスター,第52回日本生物物理学会年会(2014年度))

Satoru Nakashima; Minoru Kubo; Izumi Ishigami; Kyoko Itoh-Shinzawa; Shinya Yoshikawa; Takashi Ogura


Biophysics | 2014

2P091 Elucidation of the coupling mechanism in the initial stage of the reaction of cytochrome c oxidase(02. Heme proteins,Poster,The 52nd Annual Meeting of the Biophysical Society of Japan(BSJ2014))

Satoru Nakashima; Minoru Kubo; Izumi Ishigami; Kyoko Itoh-Shinzawa; Shinya Yoshikawa; Takashi Ogura


Seibutsu Butsuri | 2012

3I1022 An Intermediate Conformation of Cytochrome Oxidase in the Ligand-Free State Identified by Time-Resolved Resonance Raman Spectroscopy(Heme Proteins,Oral Presentation)

Izumi Ishigami; Takeshi Nishigaki; Kyoko Shinzawa-Itoh; Shinya Yoshikawa; Satoru Nakashima; Takashi Ogura


生物物理 | 2011

2I1524 CN-光解離に伴うチトクロムc酸化酵素の構造ダイナミクスの共鳴ラマン分光法による追跡(ヘム蛋白質2,第49回日本生物物理学会年会)

Takeshi Nishigaki; Izumi Ishigami; Satoru Nakashima; Kyoko Shinzawa-Itoh; Shinya Yoshikawa; Takashi Ogura

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Hulin Tai

University of Tsukuba

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