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result(s) for
"Wong, Hann Ling"
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Hd3a Protein Is a Mobile Flowering Signal in Rice
by
Shimamoto, Ko
,
Tamaki, Shojiro
,
Matsuo, Shoichi
in
apical meristems
,
Arabidopsis
,
Biological and medical sciences
2007
Florigen, the mobile signal that moves from an induced leaf to the shoot apex and causes flowering, has eluded identification since it was first proposed 70 years ago. Understanding the nature of the mobile flowering signal would provide a key insight into the molecular mechanism of floral induction. Recent studies suggest that the Arabidopsis FLOWERING LOCUS T (FT) gene is a candidate for encoding florigen. We show that the protein encoded by Hd3a, a rice ortholog of FT, moves from the leaf to the shoot apical meristem and induces flowering in rice. These results suggest that the Hd3a protein may be the rice florigen.
Journal Article
Down-regulation of metallothionein, a reactive oxygen scavenger, by the small GTPase OsRac1 in rice
by
Kawasaki, T
,
Wong, H.L
,
Sakamoto, T
in
bacterial diseases of plants
,
Base Sequence
,
Biological and medical sciences
2004
Metallothioneins are small, ubiquitous Cys-rich proteins known to be involved in reactive oxygen species (ROS) scavenging and metal homeostasis. We found that the expression of a metallothionein gene (OsMT2b) was synergically down-regulated by OsRac1 and rice (Oryza sativa) blast-derived elicitors. Transgenic plants overexpressing OsMT2b showed increased susceptibility to bacterial blight and blast fungus. OsMT2b-overexpressing cells showed reduced elicitor-induced hydrogen peroxide production. In contrast, homozygous OsMT2b::Tos17-inserted mutant and OsMT2b-RNAi-silenced transgenic cells showed significantly higher elicitor-induced hydrogen peroxide production than the wild-type cells. In vitro assay showed that recombinant OsMT2b protein possessed superoxide- and hydroxyl radical-scavenging activities. Taken together, these results showed that OsMT2b is an ROS scavenger and its expression is down-regulated by OsRac1, thus potentiating ROS, which function as signals in resistance response. The results suggest that OsRac1 plays a dual role as an inducer of ROS production and a suppressor of ROS scavenging.
Journal Article
Regulation of Rice NADPH Oxidase by Binding of Rac GTPase to Its N-Terminal Extension
by
Yaeno, Takashi
,
Hasegawa, Kana
,
Shimamoto, Ko
in
Amino Acid Motifs
,
Calcium
,
Calcium - metabolism
2007
Reactive oxygen species (ROS) produced by NADPH oxidase play critical roles in various cellular activities, including plant innate immunity response. In contrast with the large multiprotein NADPH oxidase complex of phagocytes, in plants, only the homologs of the catalytic subunit gp91phox and the cytosolic regulator small GTPase Rac are found. Plant homologs of the gp91phox subunit are known as Rboh (for respiratory burst oxidase homolog). Although numerous Rboh have been isolated in plants, the regulation of enzymatic activity remains unknown. All rboh genes identified to date possess a conserved N-terminal extension that contains two Ca²⁺ binding EF-hand motifs. Previously, we ascertained that a small GTPase Rac (Os Rac1) enhanced pathogen-associated molecular pattern-induced ROS production and resistance to pathogens in rice (Oryza sativa). In this study, using yeast two-hybrid assay, we found that interaction between Rac GTPases and the N-terminal extension is ubiquitous and that a substantial part of the N-terminal region of Rboh, including the two EF-hand motifs, is required for the interaction. The direct Rac-Rboh interaction was supported by further studies using in vitro pull-down assay, a nuclear magnetic resonance titration experiment, and in vivo fluorescence resonance energy transfer (FRET) microscopy. The FRET analysis also suggests that cytosolic Ca²⁺ concentration may regulate Rac-Rboh interaction in a dynamic manner. Furthermore, transient coexpression of Os Rac1 and rbohB enhanced ROS production in Nicotiana benthamiana, suggesting that direct Rac-Rboh interaction may activate NADPH oxidase activity in plants. Taken together, the results suggest that cytosolic Ca²⁺ concentration may modulate NADPH oxidase activity by regulating the interaction between Rac GTPase and Rboh.
Journal Article
RACK1 Functions in Rice Innate Immunity by Interacting with the Rac1 Immune Complex
by
Shirasu, Ken
,
Shimamoto, Ko
,
Wong, Hann Ling
in
abscisic acid
,
Abscisic Acid - pharmacology
,
affinity chromatography
2008
A small GTPase, Rac1, plays a key role in rice (Oryza sativa) innate immunity as part of a complex of regulatory proteins. Here, we used affinity column chromatography to identify rice RACK1 (for Receptor for Activated C-Kinase 1) as an interactor with Rac1. RACK1 functions in various mammalian signaling pathways and is involved in hormone signaling and development in plants. Rice contains two RACK1 genes, RACK1A and RACK1B, and the RACK1A protein interacts with the GTP form of Rac1. Rac1 positively regulates RACK1A at both the transcriptional and posttranscriptional levels. RACK1A transcription was also induced by a fungal elicitor and by abscisic acid, jasmonate, and auxin. Analysis of transgenic rice plants and cell cultures indicates that RACK1A plays a role in the production of reactive oxygen species (ROS) and in resistance against rice blast infection. Overexpression of RACK1A enhances ROS production in rice seedlings. RACK1A was shown to interact with the N terminus of NADPH oxidase, RAR1, and SGT1, key regulators of plant disease resistance. These results suggest that RACK1A functions in rice innate immunity by interacting with multiple proteins in the Rac1 immune complex.
Journal Article
In vivo monitoring of plant small GTPase activation using a Förster resonance energy transfer biosensor
by
Shimamoto, Ko
,
Wong, Hann Ling
,
Matsuda, Tomonori
in
Bioimaging
,
Biological Techniques
,
Biomedical and Life Sciences
2018
Background
Small GTPases act as molecular switches that regulate various plant responses such as disease resistance, pollen tube growth, root hair development, cell wall patterning and hormone responses. Thus, to monitor their activation status within plant cells is believed to be the key step in understanding their roles.
Results
We have established a plant version of a Förster resonance energy transfer (FRET) probe called Ras and interacting protein chimeric unit (Raichu) that can successfully monitor activation of the rice small GTPase OsRac1 during various defence responses in cells. Here, we describe the protocol for visualizing spatiotemporal activity of plant Rac/ROP GTPase in living plant cells, transfection of rice protoplasts with
Raichu
-
OsRac1
and acquisition of FRET images.
Conclusions
Our protocol should be adaptable for monitoring activation for other plant small GTPases and protein–protein interactions for other FRET sensors in various plant cells.
Journal Article
Essential Role of the Small GTPase Rac in Disease Resistance of Rice
by
Shimamoto, Ko
,
Kodama, Osamu
,
Wong, Hann Ling
in
Agrobacterium tumefaciens
,
Agrobacterium tumefaciens - genetics
,
Bacteria
2001
Production of reactive oxygen intermediates (ROI) and a form of programmed cell death called hypersensitive response (HR) are often associated with disease resistance of plants. We have previously shown that the Rac homolog of rice, OsRac1, is a regulator of ROI production and cell death in rice. Here we show that the constitutively active OsRac1 (i) causes HR-like responses and greatly reduces disease lesions against a virulent race of the rice blast fungus; (ii) causes resistance against a virulent race of bacterial blight; and (iii) causes enhanced production of a phytoalexin and alters expression of defense-related genes. The dominant-negative OsRac1 suppresses elicitor-induced ROI production in transgenic cell cultures, and in plants suppresses the HR induced by the avirulent race of the fungus. Taken together, our findings strongly suggest that OsRac1 has a general role in disease resistance of rice.
Journal Article
Hyperphosphorylation of a Mitochondrial Protein, Prohibitin, Is Induced by Calyculin A in a Rice Lesion-Mimic Mutant cdr1
by
Shimamoto, Ko
,
Wong, Hann Ling
,
Kawasaki, Tsutomu
in
Allium cepa
,
Amino Acid Sequence
,
amino acid sequences
2003
The rice (Oryza sativa) lesion-mimic mutants, cell death and resistance (cdr), show spontaneous cell death on the entire leaf and exhibited significant resistance to the rice blast fungus. Our previous studies showed that CDR1 and CDR2 genes negatively regulated the phosphorylation steps leading to the activation of NADPH oxidase, which is associated with oxidative burst. To identify novel factors involved in the phosphorylation steps, the phosphorylation level of total proteins was compared between cdr mutants and wild type using two-dimensional gel electrophoresis. Here, we show that the phosphorylation level of four proteins in cdr1 was increased as compared with the wild type after calyculin A treatment. Partial amino acid sequences revealed that one of the four proteins is homologous to prohibitin (PHB), which has been shown to be associated with senescence and cell death and to function as a chaperone in the assembly of mitochondrial respiratory chain complex in yeast and mammals. Analysis of green fluorescent protein fusions indicated that rice PHB (OsPHB1) was targeted to mitochondria as found in yeast and mammals, suggesting a possibility that PHB is involved in defense response and/or programmed cell death through the mitochondrial function.
Journal Article
Complete genome sequence analysis of the novel bacteriophage PA-1 infecting phytopathogenic Pantoea ananatis in Malaysia
by
Wong, Hann Ling
,
Loh, Pek Chin
,
Singh, Pritpal Singh Sarmak
in
bacteria
,
bacteriophages
,
Bacteriophages - classification
2025
A novel bacteriophage, PA-1, was isolated using
Pantoea ananatis
, a bacterium that is responsible for rice leaf blight worldwide, as the host. PA-1 has a linear genome of 46,332 bp with a GC content of 50.55%. It contains 83 protein-encoding genes, and no tRNA-encoding genes were detected. The genome is densely organized, with an average CDS size of 516 bp, and 92.38% of the genome consists of protein-coding regions. Whole-genome sequencing and phylogenetic and morphological analysis showed that PA-1 is a novel phage that is phylogenetically distinct, suggesting that it may represent a new genus within the class
Caudoviricetes
.
Journal Article
Development of constitutive and IPTG-inducible integron promoter-based expression systems for Escherichia coli and Agrobacterium tumefaciens
by
Wong, Hann Ling
,
Loh, Pek Chin
,
Teo, Yuh Leng
in
Agrobacterium
,
Agrobacterium tumefaciens
,
Antibiotic resistance
2023
Broad host range (BHR) expression vector is a vital tool in molecular biology research and application. Currently, most of the plasmid vectors used in Agrobacterium spp. are binary vectors that are designed for plant transformation, and very few are designed for expressing transgenes in Agrobacterium spp. Class 1 integrons are common genetic elements that allow for the efficient capture and expression of antibiotic resistance genes, especially in Gram-negative bacteria. One of its compound promoters, PcS + P2, was used in this study and has been reported to be the strongest class 1 integron constitutive promoter; it is referred to as “integron promoter” (Pint) henceforth. Herein, we created two versions of isopropyl–d-thiogalactopyranoside (IPTG)-inducible promoters by substituting and/or inserting lacO sequence(s) into Pint. These inducible promoters, which possess different degrees of stringency and inducibility, were used to construct two broad host range expression vectors (pWK102 and pWK103) based on the versatile pGREEN system. This allows them to be stably maintained and replicated in both Escherichia coli and Agrobacterium tumefaciens. Functional validation of these vectors was performed by the expression of the reporter gene, superfolder green fluorescent protein (sfGFP), which was cloned downstream of these promoters. Due to the strong induction and tunable expression of a transgene located downstream to the inducible integron promoter, these vectors may be useful for heterologous gene expression in both E. coli and A. tumefaciens, thus facilitating recombinant protein production and genetic studies in Gram-negative bacteria.
Journal Article
Development of acetosyringone-inducible Gateway ® and Golden Gate expression vectors for heterologous gene expression in Agrobacterium tumefaciens
by
Loo, Eliza Po-lian
,
Wong, Hann Ling
,
Loh, Pek Chin
in
acetosyringone
,
Agrobacterium radiobacter
,
bacteria
2020
As a plant genetic engineer, Agrobacterium tumefaciens utilizes phenolic compounds, such as acetosyringone, to activate its virulence genes during the infection and transformation process. In this study, two novel broad-host-range (BHR) acetosyringone-inducible expression vectors were constructed. Unlike Agrobacterium binary vectors which are developed for plant transformation, these vectors were designed for heterologous gene expression in A. tumefaciens. To this end, an acetosyringone-inducible virB promoter (PvirB) was placed upstream of a Gateway® cassette for plasmid vector pASE1 and Type IIS recognition sites, BpiI for plasmid vector pASE2, thus allowing the PvirB to drive the expression of the insert, which may be cloned into pASE1 and pASE2 via Gateway® LR Cloning and Golden Gate Cloning approaches, respectively. Here, we tested the functionality and inducibility of pASE1 and pASE2 vectors by expressing the reporter gene superfolder green fluorescent protein (sfGFP) in the presence of acetosyringone. The expression of the reporter gene sfGFP after induction by acetosyringone was verified by Western blotting. Interestingly, the presence of the attB1 site in pASE1 imposed a tight regulation on the inducibility of the PvirB, This is the first report that indicates that an attB1 site may hinder downstream gene expression in a bacterium. We envision that pASE2 can be used to express key virulence genes to enhance plant transformation and advance the genetic studies of Agrobacterium.
Journal Article