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result(s) for
"Kamitani, Wataru"
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Combining machine learning and nanopore construction creates an artificial intelligence nanopore for coronavirus detection
by
Minami, Shohei
,
Morimura, Ayumi
,
Akeda, Yukihiro
in
639/705/117
,
639/925/927/1058
,
692/699/255/2514
2021
High-throughput, high-accuracy detection of emerging viruses allows for the control of disease outbreaks. Currently, reverse transcription-polymerase chain reaction (RT-PCR) is currently the most-widely used technology to diagnose the presence of SARS-CoV-2. However, RT-PCR requires the extraction of viral RNA from clinical specimens to obtain high sensitivity. Here, we report a method for detecting novel coronaviruses with high sensitivity by using nanopores together with artificial intelligence, a relatively simple procedure that does not require RNA extraction. Our final platform, which we call the artificially intelligent nanopore, consists of machine learning software on a server, a portable high-speed and high-precision current measuring instrument, and scalable, cost-effective semiconducting nanopore modules. We show that artificially intelligent nanopores are successful in accurately identifying four types of coronaviruses similar in size, HCoV-229E, SARS-CoV, MERS-CoV, and SARS-CoV-2. Detection of SARS-CoV-2 in saliva specimen is achieved with a sensitivity of 90% and specificity of 96% with a 5-minute measurement.
Rapid, accurate and specific point-of-care diagnostics can help manage and contain fast-spreading infections. Here, the authors present a nanopore-based system that uses artificial intelligence to discriminate between four coronaviruses in saliva, with little need for sample pre-processing.
Journal Article
Characterization of Gene Expression Suppression by Bovine Coronavirus Non-Structural Protein 1
2025
Coronavirus non-structural protein 1 (nsp1) is a pathogenic determinant of Betacoronaviruses. Previous studies demonstrated that the nsp1 of various coronaviruses induces host shutoff through a variety of mechanisms; however, there is little information on the function of bovine coronavirus (BCoV) nsp1. We aimed to characterize the host gene expression suppression function of BCoV nsp1. We first confirmed that the expression of BCoV nsp1 in MAC-T cells, a bovine mammary epithelial cell line, suppressed host and reporter gene expression. Subsequently, lysine and phenylalanine at amino acid positions 232 and 233, respectively, were identified as key residues required for this suppressive effect. Expression levels of housekeeping genes are comparable in cells expressing wild-type BCoV nsp1 and a mutant with alanine substitutions at positions 232 and 233 (BCoV nsp1-KF). Wild-type BCoV nsp1 localized to both the cytoplasm and nucleus; however, BCoV nsp1-KF exhibited prominent nuclear accumulation with dot-like structures. Using confocal microscopy and co-sedimentation analysis, we identified an association between wild-type BCoV nsp1, but not BCoV nsp1-KF, and ribosomes, suggesting that ribosome binding is required for BCoV nsp1-mediated suppression of host gene expression. This is the first study of the characterization of host gene expression suppression by BCoV nsp1.
Journal Article
Regulation viral RNA transcription and replication by higher-order RNA structures within the nsp1 coding region of MERS coronavirus
by
Kamitani, Wataru
,
Amarbayasgalan, Sodbayasgalan
,
Terada, Yutaka
in
3' Untranslated regions
,
3' Untranslated Regions - genetics
,
631/326
2024
Coronavirus (CoV) possesses numerous functional cis-acting elements in its positive-strand genomic RNA. Although most of these RNA structures participate in viral replication, the functions of RNA structures in the genomic RNA of CoV in viral replication remain unclear. In this study, we investigated the functions of the higher-order RNA stem-loop (SL) structures SL5B, SL5C, and SL5D in the ORF1a coding region of Middle East respiratory syndrome coronavirus (MERS-CoV) in viral replication. Our approach, using reverse genetics of a bacterial artificial chromosome system, revealed that SL5B and SL5C play essential roles in the discontinuous transcription of MERS-CoV. In silico analyses predicted that SL5C interacts with a bulged stem-loop (BSL) in the 3′ untranslated region, suggesting that the RNA structure of SL5C is important for viral RNA transcription. Conversely, SL5D did not affect transcription, but mediated the synthesis of positive-strand genomic RNA. Additionally, the RNA secondary structure of SL5 in the revertant virus of the SL5D mutant was similar to that of the wild-type, indicating that the RNA structure of SL5D can finely tune RNA replication in MERS-CoV. Our data indicate novel regulatory mechanisms of viral RNA transcription and replication by higher-order RNA structures in the MERS-CoV genomic RNA.
Journal Article
Amino acid T25 in the substrate-binding domain of SARS-CoV-2 nsp5 is involved in viral replication in the mouse lung
by
Shimizu, Kenta
,
Tanigou, Haruka
,
Amarbayasgalan, Sodbayasgalan
in
Acclimation
,
Acclimatization
,
Amino acids
2024
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) non-structural protein 5 (nsp5) is a cysteine protease involved in viral replication and suppression of the host immune system. The substrate-binding domain of nsp5 is important for its protease activity. However, the relationship between nsp5 protease activity and viral replication remains unclear. We confirmed the importance of amino acid T25 in the nsp5 substrate-binding domain for viral replication using a split luciferase assay. By generating recombinant viruses using bacterial artificial chromosomes, we found that the proliferation of viruses with the T25I mutation in nsp5 was cell-dependent in culture. Furthermore, mice infected with the T25I mutant recombinant virus with a mouse acclimation backbone showed weight loss and increased lung viral load, similar to the wild-type (WT) infected group, up to 3 days after infection. However, after day 4, the lung viral load was significantly reduced in the T25I-infected group compared to that in the WT-infected group. This suggests that nsp5 T25 is involved in the pathogenesis of SARS-CoV-2.
Journal Article
A two-pronged strategy to suppress host protein synthesis by SARS coronavirus Nsp1 protein
by
Kamitani, Wataru
,
Narayanan, Krishna
,
Makino, Shinji
in
Biochemistry
,
Biological Microscopy
,
Biological response modifiers
2009
The SARS coronavirus protein nsp1 can suppress host gene expression at a post-transcriptional level, with previous work showing a reduction in mRNA abundance. Now a direct effect on protein synthesis is revealed, as nsp1 modifies transcripts and also inactivates the 40S ribosomal subunit.
Severe acute respiratory syndrome coronavirus nsp1 protein suppresses host gene expression, including type I interferon production, by promoting host mRNA degradation and inhibiting host translation, in infected cells. We present evidence that nsp1 uses a novel, two-pronged strategy to inhibit host translation and gene expression. Nsp1 bound to the 40S ribosomal subunit and inactivated the translational activity of the 40S subunits. Furthermore, the nsp1–40S ribosome complex induced the modification of the 5′ region of capped mRNA template and rendered the template RNA translationally incompetent. Nsp1 also induced RNA cleavage in templates carrying the internal ribosome entry site (IRES) from encephalomyocarditis virus, but not in those carrying IRES elements from hepatitis C or cricket paralysis viruses, demonstrating that the nsp1-induced RNA modification was template-dependent. We speculate that the mRNAs that underwent the nsp1-mediated modification are marked for rapid turnover by the host RNA degradation machinery.
Journal Article
A U508C synonymous mutation in the SARS-CoV-2 deletion hotspot reduces deletion frequency and accelerates viral clearance
by
Matsuyama, Shutoku
,
Kamitani, Wataru
,
Tomita, Yuriko
in
Antiviral agents
,
Cell culture
,
Cloning
2025
This study focuses on a specific region, termed the “deletion hotspot,” in the SARS-CoV-2 genome where deletions frequently occur and enable the virus to evade the immune response. In this study, we found that the introduction of a U508C synonymous mutation within this deletion hotspot significantly reduced the frequency of deletions, probably because it changed the structure of the viral RNA, stabilizing it and thereby reducing replication errors. While the mutant virus replicated at a similar rate to that of the original virus in cultured cells, its rate of clearance from the culture medium was significantly increased, suggesting that the mutation may have weakened the virus. This study underscores the importance of understanding how the structure of viral RNA influences viral behavior. Such knowledge could inform the development of novel antiviral drugs and strategies for combatting viral infections.
Journal Article
S1 Subunit of Spike Protein from a Current Highly Virulent Porcine Epidemic Diarrhea Virus Is an Important Determinant of Virulence in Piglets
by
Ohashi, Seiichi
,
Kamitani, Wataru
,
Suzuki, Tohru
in
Amino acids
,
Artificial chromosomes
,
Cloning
2018
Base on the sequence of S genes, which encode spike proteins, we previously identified three different types (North American, S INDEL, and S large-DEL types) of porcine epidemic diarrhea virus (PEDV) that have re-emerged in Japan since 2013. Based on experimental infections with the North American and S large-DEL types, we also hypothesized that PEDV virulence may be linked to the S1 subunit of the S protein. To test this hypothesis, we have now assayed in gnotobiotic piglets various recombinant PEDVs generated by reverse genetics. Piglets inoculated with CV777 maintained in National Institute of Animal Health, along with piglets infected with a recombinant form of the same virus, developed subclinical to mild diarrhea. In contrast, severe watery diarrhea, dehydration, weight loss, astasia, and high mortality were observed in piglets inoculated with recombinant strains in which the S gene was partially or fully replaced with corresponding sequences from the highly virulent Japanese PEDV isolate OKN-1/JPN/2013. Indeed, symptoms resembled those in piglets inoculated with the OKN-1/JPN/2013, and were especially pronounced in younger piglets. Collectively, the data demonstrate that the S1 subunit of the S protein is an important determinant of PEDV virulence, and advance development of new vaccine candidate.
Journal Article
NS2 of respiratory syncytial virus causes G2/M accumulation in HeLa/Fucci(CA)2 cells
by
Shimizu, Kenta
,
Dorjsuren, Enkhjin
,
Amarbayasgalan, Sodbayasgalan
in
631/250
,
631/326
,
631/80
2026
The cell cycle is a fundamental mechanism that regulates eukaryotic cell proliferation. It comprises the G1, S, G2, and M phases and is tightly controlled by cyclin/cyclin-dependent kinase complexes. Many viruses manipulate the host cell cycle to create a favorable environment for replication. In particular, RNA viruses such as Hepatitis C virus and human immunodeficiency virus interfere with cell cycle progression. Human respiratory syncytial virus (RSV), an RNA virus that infects the respiratory tract, suppresses the cell cycle. However, previous studies did not clearly distinguish between infected and uninfected cells, consequently limiting the interpretability of their results. Therefore, we utilized recombinant RSV expressing a fluorescent reporter in combination with HeLa-Fucci cells to enable the real-time visualization of cell cycle progression. This system enabled clear distinction between infected and uninfected cells. In this study, RSV infection induced cell cycle arrest at the G2 phase. This arrest was attributed to the viral nonstructural protein NS2. The fully infectious RSV system developed in this study provides novel and physiologically relevant insights into the mechanisms underlying RSV modulation of the host cell cycle to facilitate viral replication and pathogenesis. These findings may enable the identification of novel antiviral targets and development of therapeutic strategies.
Journal Article
COVID-19 cynomolgus macaque model reflecting human COVID-19 pathological conditions
by
Ono, Chikako
,
Okamura, Tomotaka
,
Urano, Emiko
in
Animals
,
Antibodies, Viral - blood
,
Antibodies, Viral - immunology
2021
The pandemic of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is a global threat to human health and life. A useful pathological animal model accurately reflecting human pathology is needed to overcome the COVID-19 crisis. In the present study, COVID-19 cynomolgus monkey models including monkeys with underlying diseases causing severe pathogenicity such as metabolic disease and elderly monkeys were examined. Cynomolgus macaques with various clinical conditions were intranasally and/or intratracheally inoculated with SARS-CoV-2. Infection with SARS-CoV-2 was found in mucosal swab samples, and a higher level and longer period of viral RNA was detected in elderly monkeys than in young monkeys. Pneumonia was confirmed in all of the monkeys by computed tomography images. When monkeys were readministrated SARS-CoV-2 at 56 d or later after initial infection all of the animals showed inflammatory responses without virus detection in swab samples. Surprisingly, in elderly monkeys reinfection showed transient severe pneumonia with increased levels of various serum cytokines and chemokines compared with those in primary infection. The results of this study indicated that the COVID-19 cynomolgus monkey model reflects the pathophysiology of humans and would be useful for elucidating the pathophysiology and developing therapeutic agents and vaccines.
Journal Article
Neutrophil adhesion to vessel walls impairs pulmonary circulation in COVID-19 pathology
2025
Microthrombus formation is associated with COVID-19 severity; however, the detailed mechanism remains unclear. In this study, we investigated mouse models with severe pneumonia caused by SARS-CoV-2 infection by using our in vivo two-photon imaging system. In the lungs of SARS-CoV-2-infected mice, increased expression of adhesion molecules in intravascular neutrophils prolonged adhesion time to the vessel wall, resulting in platelet aggregation and impaired lung perfusion. Re-analysis of scRNA-seq data from peripheral blood mononuclear cells from COVID-19 cases revealed increased expression levels of
CD44
and
SELL
in neutrophils in severe COVID-19 cases compared to a healthy group, consistent with our observations in the mouse model. These findings suggest that pulmonary perfusion defects caused by neutrophil adhesion to pulmonary vessels contribute to COVID-19 severity.
COVID-19 severity is linked to microthrombus formation. Here, using an in vivo two-photon imaging technique in mice and human scRNA-Seq data, the authors show increased adhesion molecules on vascular neutrophils leading to platelet aggregation and reduced lung perfusion.
Journal Article