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Dive into the research topics where Akiko Makino is active.

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Featured researches published by Akiko Makino.


Nature | 2009

In vitro and in vivo characterization of new swine-origin H1N1 influenza viruses

Yasushi Itoh; Kyoko Shinya; Maki Kiso; Tokiko Watanabe; Yoshihiro Sakoda; Masato Hatta; Yukiko Muramoto; Daisuke Tamura; Yuko Sakai-Tagawa; Takeshi Noda; Saori Sakabe; Masaki Imai; Yasuko Hatta; Shinji Watanabe; Chengjun Li; S. Yamada; Ken Fujii; Shin Murakami; Hirotaka Imai; Satoshi Kakugawa; Mutsumi Ito; Ryo Takano; Kiyoko Iwatsuki-Horimoto; Masayuki Shimojima; Taisuke Horimoto; Hideo Goto; Kei Takahashi; Akiko Makino; Hirohito Ishigaki; Misako Nakayama

Influenza A viruses cause recurrent outbreaks at local or global scale with potentially severe consequences for human health and the global economy. Recently, a new strain of influenza A virus was detected that causes disease in and transmits among humans, probably owing to little or no pre-existing immunity to the new strain. On 11 June 2009 the World Health Organization declared that the infections caused by the new strain had reached pandemic proportion. Characterized as an influenza A virus of the H1N1 subtype, the genomic segments of the new strain were most closely related to swine viruses. Most human infections with swine-origin H1N1 influenza viruses (S-OIVs) seem to be mild; however, a substantial number of hospitalized individuals do not have underlying health issues, attesting to the pathogenic potential of S-OIVs. To achieve a better assessment of the risk posed by the new virus, we characterized one of the first US S-OIV isolates, A/California/04/09 (H1N1; hereafter referred to as CA04), as well as several other S-OIV isolates, in vitro and in vivo. In mice and ferrets, CA04 and other S-OIV isolates tested replicate more efficiently than a currently circulating human H1N1 virus. In addition, CA04 replicates efficiently in non-human primates, causes more severe pathological lesions in the lungs of infected mice, ferrets and non-human primates than a currently circulating human H1N1 virus, and transmits among ferrets. In specific-pathogen-free miniature pigs, CA04 replicates without clinical symptoms. The assessment of human sera from different age groups suggests that infection with human H1N1 viruses antigenically closely related to viruses circulating in 1918 confers neutralizing antibody activity to CA04. Finally, we show that CA04 is sensitive to approved and experimental antiviral drugs, suggesting that these compounds could function as a first line of defence against the recently declared S-OIV pandemic.


Journal of Virology | 2006

Junctional Adhesion Molecule 1 Is a Functional Receptor for Feline Calicivirus

Akiko Makino; Masayuki Shimojima; Takayuki Miyazawa; Kentaro Kato; Yukinobu Tohya; Hiroomi Akashi

ABSTRACT The life cycle of calicivirus is not fully understood because most of the viruses cannot be propagated in tissue culture cells. We studied the mechanism of calicivirus entry into cells using feline calicivirus (FCV), a cultivable calicivirus. From the cDNA library of Crandell-Rees feline kidney (CRFK) cells, feline junctional adhesion molecule 1 (JAM-1), an immunoglobulin-like protein present in tight junctions, was identified as a cellular-binding molecule of the FCV F4 strain, a prototype strain in Japan. Feline JAM-1 expression in nonpermissive hamster lung cells led to binding and infection by F4 and all other strains tested. An anti-feline JAM-1 antibody reduced the binding of FCV to permissive CRFK cells and strongly suppressed the cytopathic effect (CPE) and FCV progeny production in infected cells. Some strains of FCV, such as F4 and F25, have the ability to replicate in Vero cells. We found that regardless of replication ability, FCV bound to Vero and 293T cells via simian and human JAM-1, respectively. In Vero cells, an anti-human JAM-1 antibody inhibited binding, CPE, and progeny production by F4 and F25. In addition, feline JAM-1 expression permitted FCV infection in 293T cells. Taken together, our results demonstrate that feline JAM-1 is a functional receptor for FCV, simian JAM-1 also functions as a receptor for some strains of FCV, and the interaction between FCV and JAM-1 molecules may be a determinant of viral tropism. This is the first report concerning a functional receptor for the viruses in the family Caliciviridae.


Journal of Virology | 2012

Amino Acid Changes in Hemagglutinin Contribute to the Replication of Oseltamivir-Resistant H1N1 Influenza Viruses

Teridah Ernala Ginting; Kyoko Shinya; Yukihiro Kyan; Akiko Makino; Naomi Matsumoto; Satoko Kaneda; Yoshihiro Kawaoka

ABSTRACT Oseltamivir-resistant H1N1 influenza viruses emerged in 2007 to 2008 and have subsequently circulated widely. However, prior to 2007 to 2008, viruses possessing the neuraminidase (NA) H274Y mutation, which confers oseltamivir resistance, generally had low growth capability. NA mutations that compensate for the deleterious effect of the NA H274Y mutation have since been identified. Given the importance of the functional balance between hemagglutinin (HA) and NA, we focused on amino acid changes in HA. Reverse genetic analysis showed that a mutation at residue 82, 141, or 189 of the HA protein promotes virus replication in the presence of the NA H274Y mutation. Our findings thus identify HA mutations that contributed to the replacement of the oseltamivir-sensitive viruses of 2007 to 2008.


Journal of Virology | 2011

Subclinical Brain Injury Caused by H5N1 Influenza Virus Infection

Kyoko Shinya; Akiko Makino; Masato Hatta; Shinji Watanabe; Jin Hyun Kim; Yasuko Hatta; Peng Gao; Makoto Ozawa; Quynh Mai Le; Yoshihiro Kawaoka

ABSTRACT Although H5N1 influenza A viruses can cause systemic infection, their neurotropism and long-term effects on the central nervous system (CNS) are not fully understood. We assessed H5N1viral invasion of the CNS and its long-term effects in a ferret model. An H5N1 virus caused nonsuppurative encephalitis, which lasted for 3 months without neurologic signs. Further, another H5N1 virus caused nonsuppurative vasculitis with brain hemorrhage. Three-dimensional analysis of viral distribution in the brain identified the olfactory system as a major route for brain invasion. The efficient growth of virus in the upper respiratory tract may thus facilitate viral brain invasion.


Journal of Virology | 2012

Integrated Clinical, Pathologic, Virologic, and Transcriptomic Analysis of H5N1 Influenza Virus-Induced Viral Pneumonia in the Rhesus Macaque

Kyoko Shinya; Yuwei Gao; Cristian Cilloniz; Yasuhiro Suzuki; Masahiro Fujie; Guohua Deng; Qiyun Zhu; Shufang Fan; Akiko Makino; Yukiko Muramoto; Satoshi Fukuyama; Daisuke Tamura; Takeshi Noda; Amie J. Eisfeld; Michael G. Katze; Hualan Chen; Yoshihiro Kawaoka

ABSTRACT Viral pneumonia has been frequently reported during early stages of influenza virus pandemics and in many human cases of highly pathogenic avian influenza (HPAI) H5N1 virus infection. To better understand the pathogenesis of this disease, we produced nonlethal viral pneumonia in rhesus macaques by using an HPAI H5N1 virus (A/Anhui/2/2005; referred to as Anhui/2). Infected macaques were monitored for 14 days, and tissue samples were collected at 6 time points for virologic, histopathologic, and transcriptomic analyses. Anhui/2 efficiently replicated in the lung from 12 h to 3 days postinfection (p.i.) and caused temporal but severe pneumonia that began to resolve by day 14. Lung transcriptional changes were first observed at 6 h, and increased expression of vascular permeability regulators and neutrophil chemoattractants correlated with increased serum leakage and neutrophil infiltration in situ. Additional inflammatory, antiviral, and apoptotic genes were upregulated from 12 h, concurrent with viral antigen detection and increasing immune cell populations. A shift toward upregulation of acquired immunity was apparent after day 6. Expression levels of established immune cell molecular markers revealed remarkable similarity with pathological findings, indicating early and robust neutrophil infiltration, a slight delay in macrophage accumulation, and abundant late populations of T lymphocytes. We also characterized the putative mechanisms regulating a unique, pneumonia-associated biphasic fever pattern. Thus, this study is the first to use a comprehensive and integrative approach to delineate specific molecular mechanisms regulating influenza virus-induced pneumonia in nonhuman primates, an important first step toward better management of human influenza virus disease.


Journal of Virology | 2011

Avian-Type Receptor-Binding Ability Can Increase Influenza Virus Pathogenicity in Macaques

Tokiko Watanabe; Kyoko Shinya; Shinji Watanabe; Masaki Imai; Masato Hatta; Chengjun Li; Ben F. Wolter; Gabriele Neumann; Anthony Hanson; Makoto Ozawa; S. Yamada; Hirotaka Imai; Saori Sakabe; Ryo Takano; Kiyoko Iwatsuki-Horimoto; Maki Kiso; Mutsumi Ito; Satoshi Fukuyama; Eiryo Kawakami; Takeo Gorai; Heather A. Simmons; Daniel Schenkman; Kevin Brunner; Saverio Capuano; Jason T. Weinfurter; Wataru Nishio; Yoshimasa Maniwa; Tatsuhiko Igarashi; Akiko Makino; Emily A. Travanty

ABSTRACT The first influenza pandemic of the 21st century was caused by novel H1N1 viruses that emerged in early 2009. An Asp-to-Gly change at position 222 of the receptor-binding protein hemagglutinin (HA) correlates with more-severe infections in humans. The amino acid at position 222 of HA contributes to receptor-binding specificity with Asp (typically found in human influenza viruses) and Gly (typically found in avian and classic H1N1 swine influenza viruses), conferring binding to human- and avian-type receptors, respectively. Here, we asked whether binding to avian-type receptors enhances influenza virus pathogenicity. We tested two 2009 pandemic H1N1 viruses possessing HA-222G (isolated from severe cases) and two viruses that possessed HA-222D. In glycan arrays, viruses possessing HA-222D preferentially bound to human-type receptors, while those encoding HA-222G bound to both avian- and human-type receptors. This difference in receptor binding correlated with efficient infection of viruses possessing HA-222G, compared to those possessing HA-222D, in human lung tissue, including alveolar type II pneumocytes, which express avian-type receptors. In a nonhuman primate model, infection with one of the viruses possessing HA-222G caused lung damage more severe than did infection with a virus encoding HA-222D, although these pathological differences were not observed for the other virus pair with either HA-222G or HA-222D. These data demonstrate that the acquisition of avian-type receptor-binding specificity may result in more-efficient infection of human alveolar type II pneumocytes and thus more-severe lung damage. Collectively, these findings suggest a new mechanism by which influenza viruses may become more pathogenic in mammals, including humans.


Journal of Virology | 2011

Systemic Dissemination of H5N1 Influenza A Viruses in Ferrets and Hamsters after Direct Intragastric Inoculation

Kyoko Shinya; Akiko Makino; Hiroji Tanaka; Masato Hatta; Tokiko Watanabe; Mai Q. Le; Hirotaka Imai; Yoshihiro Kawaoka

ABSTRACT Although oral exposure to H5N1 highly pathogenic avian influenza viruses is a risk factor for infection in humans, it is unclear how oral exposure to these virus results in lethal respiratory infections. To address this issue, we inoculated ferrets and hamsters with two highly pathogenic H5N1 strains. These viruses, inoculated directly into the stomach, were isolated from the large intestine and the mesenteric lymph nodes within 1 day of inoculation and subsequently spread to multiple tissues, including lung, liver, and brain. Histopathologic analysis of ferrets infected with virus via direct intragastric inoculation revealed lymph folliculitis in the digestive tract and mesenteric lymph nodes and focal interstitial pneumonia. Comparable results were obtained with the hamster model. We conclude that, in mammals, ingested H5N1 influenza viruses can disseminate to nondigestive organs, possibly through the lymphatic system of the gastrointestinal tract.


Journal of Virology | 2012

The TLR4-TRIF Pathway Protects against H5N1 Influenza Virus Infection

Kyoko Shinya; Mutsumi Ito; Akiko Makino; Motoko Tanaka; Kensuke Miyake; Amie J. Eisfeld; Yoshihiro Kawaoka

ABSTRACT Prestimulation of the TLR4 pathway with lipopolysaccharide (LPS) protects mice from lethal infection with H5N1 influenza virus. Here, we reveal that the TLR4-TRIF pathway is required for this protective effect by using mice whose TLR4-related molecules were knocked out. Microarray analysis of primary mouse lung culture cells that were LPS pretreated and infected with an H5N1 virus indicated that TLR3 mRNA was upregulated. Primary lung culture cells of TLR3 knockout mice showed no response to LPS pretreatment against H5N1 virus infection, suggesting that TLR3 is also involved in the preventive effect of LPS. Our data suggest that the TLR4-TRIF axis has an important role in stimulating protective innate immunity against H5N1 influenza A virus infection and that TLR3 signaling is involved in this pathway.


Journal of Virology | 2009

Ostrich Involvement in the Selection of H5N1 Influenza Virus Possessing Mammalian-Type Amino Acids in the PB2 Protein

Kyoko Shinya; Akiko Makino; Makoto Ozawa; Jin Hyun Kim; Yuko Sakai-Tagawa; Mutsumi Ito; Quynh Mai Le; Yoshihiro Kawaoka

ABSTRACT Amino acids at positions 627 and 701 in the PB2 protein (PB2-627 and PB2-701, respectively) of avian influenza A viruses affect virus replication in some mammalian cells. Highly pathogenic H5N1 influenza viruses possessing mammalian-type PB2-627 were detected during the Qinghai Lake outbreak in 2005 and spread to Europe and Africa. Via a database search, we found a high rate of viral isolates from Ratitae, including ostrich, possessing mammalian-type PB2-627 or -701. Here, we report that H5N1 avian influenza viruses possessing mammalian-type amino acids in PB2-627 or -701 are selected during replication in ostrich cells in vitro and in vivo.


Microbiology and Immunology | 2011

An H5N1 highly pathogenic avian influenza virus isolated from a local tree sparrow in Indonesia

Emmanuel Djoko Poetranto; Masaoki Yamaoka; Aldise Mareta Nastri; Luh Ade Wilan Krisna; Maulana Hanief Rahman; Laksmi Wulandari; Resti Yudhawati; Teridah Ernala Ginting; Akiko Makino; Kyoko Shinya; Yoshihiro Kawaoka

The isolation of an H5N1 influenza A virus from a tree sparrow (Passer montanus) captured in East Java, Indonesia in 2010 is reported here. Its hemagglutinin and neuraminidase were genetically similar to those of human isolates from 2006–2007 in Indonesia. The finding of a tree sparrow H5N1 virus that possesses genetically similar surface molecules to those of human viruses highlights the importance of monitoring resident wild birds, as well as migratory birds, for pandemic preparedness.

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Yoshihiro Kawaoka

University of Wisconsin-Madison

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Masato Hatta

University of Wisconsin-Madison

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Shinji Watanabe

National Institutes of Health

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Jin Hyun Kim

University of Wisconsin-Madison

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