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result(s) for
"Yeh, Kai-Wun"
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Piriformospora indica colonization increases the growth, development, and herbivory resistance of sweet potato (Ipomoea batatas L.)
2021
Key messagePiriformospora indica symbiosis promoted the growth and photosynthesis, and simultaneously enhanced the resistance against insect herbivory by regulating sporamin-dependent defense in sweet potato.Piriformospora indica (P. indica), a versatile endophytic fungus, promotes the growth and confers resistance against multiple stresses by root colonization in plant hosts. In this study, the effects of P. indica colonization on the growth, physiological change, and herbivore resistance of leaf-vegetable sweet potato cultivar were investigated. P. indica symbiosis significantly improved the biomass in both above- and under-ground parts of sweet potato plants. In comparison with the non-colonized plants, the content of photosynthetic pigments and the efficiency of photosynthesis were increased in P. indica-colonized sweet potato plants. Further investigation showed that the activity of catalase was enhanced in both leaves and roots of sweet potato plants after colonization, but ascorbate peroxidase, peroxidase, and superoxide dismutase were not enhanced. Furthermore, the interaction between P. indica and sweet potato plants also showed the biological function in jasmonic acid (JA)-mediated defense. The plants colonized by P. indica had greatly increased JA accumulation and defense gene expressions, including IbNAC1, IbbHLH3, IbpreproHypSys, and sporamin, leading to elevated trypsin inhibitory activity, which was consistent with a reduced Spodoptera litura performance when larvae fed on the leaves of P. indica-colonized sweet potato plants. The root symbiosis of P. indica is helpful for the plant promoting growth and development and has a strong function as resistance inducers against herbivore attack in sweet potato cultivation by regulating sporamin-dependent defense.
Journal Article
Metabolomic compounds identified in Piriformospora indica-colonized Chinese cabbage roots delineate symbiotic functions of the interaction
2017
Root colonization by endophytic fungus
Piriformospora indica
facilitating growth/development and stress tolerance has been demonstrated in various host plants. However, global metabolomic studies are rare. By using high-throughput gas-chromatography-based mass spectrometry, 549 metabolites of 1,126 total compounds observed were identified in colonized and uncolonized Chinese cabbage roots, and hyphae of
P. indica
. The analyses demonstrate that the host metabolomic compounds and metabolite pathways are globally reprogrammed after symbiosis with
P. indica
. Especially, γ-amino butyrate (GABA), oxylipin-family compounds, poly-saturated fatty acids, and auxin and its intermediates were highly induced and
de novo
synthesized in colonized roots. Conversely, nicotinic acid (niacin) and dimethylallylpyrophosphate were strongly decreased.
In vivo
assays with exogenously applied compounds confirmed that GABA primes plant immunity toward pathogen attack and enhances high salinity and temperature tolerance. Moreover, generation of reactive oxygen/nitrogen species stimulated by nicotinic acid is repressed by
P. indica
, and causes the feasibility of symbiotic interaction. This global metabolomic analysis and the identification of symbiosis-specific metabolites may help to understand how
P. indica
confers benefits to the host plant.
Journal Article
The diurnal emission of floral scent in Oncidium hybrid orchid is controlled by CIRCADIAN CLOCK ASSOCIATED 1 (CCA1) through the direct regulation on terpene synthase
2022
Background
To adapt the periodic fluctuation of environmental factors, plants are subtle to monitor the natural variation for the growth and development. The daily activities and physiological functions in coordination with the natural variation are regulated by circadian clock genes. The circadian emission of floral scents is one of the rhythmic physiological activities controlled by circadian clock genes. Here, we study the molecular mechanism of circadian emission pattern of ocimene and linalool compounds in
Oncidium
Sharry Baby (
Onc
. SB) orchid.
Results
GC-Mass analysis revealed that
Onc
. SB periodically emitted ocimene and linalool during 6 to 14 o’clock daily.
Terpene synthase
, one of the key gene in the terpenoid biosynthetic pathway is expressed in coordination with scent emission. The promoter structure of
terpene synthase
revealed a circadian binding sequence (CBS), 5’-AGATTTTT-3’ for CIRCADIAN CLOCK ASSOCIATED1 (CCA1) transcription factor. EMSA data confirms the binding affinity of CCA1. Transactivation assay further verified that
TPS
expression is regulated by CCA1. It suggests that the emission of floral scents is controlled by CCA1.
Conclusions
The work validates that the mechanism of circadian emission of floral scents in
Onc
. Sharry Baby is controlled by the oscillator gene,
CCA1
(
CIRCADIAN CLOCK ASSOCIATED 1
) under light condition. CCA1 transcription factor up-regulates
terpene synthase
(
TPS)
by binding on CBS motif, 5’-AGATTTTT-3’ of promoter region to affect the circadian emission of floral scents in
Onc
. SB.
Journal Article
Colonisation of Oncidium orchid roots by the endophyte Piriformospora indica restricts Erwinia chrysanthemi infection, stimulates accumulation of NBS-LRR resistance gene transcripts and represses their targeting micro-RNAs in leaves
2019
Background
Erwinia chrysanthemi
(
Ec
) is a destructive pathogen which causes soft-rot diseases in diverse plant species including orchids. We investigated whether colonization of
Oncidium
roots by the endophytic fungus
Piriformospora indica
(
Pi
) restricts
Ec
-induced disease development in leaves, and whether this might be related to the regulation of nucleotide binding site-leucine rich repeat (NBS-LRR)
Resistance
(
R
) genes.
Results
Root colonization of
Oncidium
stackings by
Pi
restricts progression of
Ec-
induced disease development in the leaves. Since
Pi
does not inhibit
Ec
growth on agar plates, we tested whether NBS-LRR
R
gene transcripts and the levels of their potential target miRNAs in
Oncidium
leaves might be regulated by
Pi
. Using bioinformatic tools, we first identified NBS-LRR
R
gene sequences from
Oncidium
, which are predicted to be targets of miRNAs. Among them, the expression of two
R
genes was repressed and the accumulation of several regulatory miRNA stimulated by
Ec
in the leaves of
Oncidium
plants. This correlated with the progression of disease development, jasmonic and salicylic acid accumulation, ethylene synthesis and H
2
O
2
production after
Ec
infection of
Oncidium
leaves. Interestingly, root colonization by
Pi
restricted disease development in the leaves, and this was accompanied by higher expression levels of several defense-related
R
genes and lower expression level of their target miRNA.
Conclusion
Based on these data we propose that
Pi
controls the levels of NBS-LRR
R
mRNAs and their target miRNAs in leaves. This regulatory circuit correlates with the protection of
Oncidium
plants against
Ec
infection, and molecular and biochemical investigations will demonstrate in the future whether, and if so, to what extent these two observations are related to each other.
Journal Article
Colonization of Piriformospora indica enhances insect herbivore resistance of rice plants through jasmonic acid- and antioxidant-mediated defense mechanisms
2022
Piriformospora indica (P. indica) is a mutualistic endophyte that colonizes plant roots. In this study, effects of P. indica on rice resistance against rice leaffolder (Cnaphalocrocis medinalis Guenée) were investigated. Growth inhibition and leaf injury caused by leaffolder larvae infestation in P. indica-colonized rice was significantly alleviated. Moreover, growth retardation was observed in larvae which fed on P. indica-colonized plants. JA-Ile levels and trypsin inhibitor activities in leaf tissues of P. indica-colonized plants were higher than those in noncolonized plants under leaffolder-infested conditions. P. indica effects on increasing trypsin inhibitor expression and reducing larval growth were repressed by aspirin. JA signaling drives P. indica-enhanced insect resistance in rice, and trypsin inhibitors might be candidates involved in this mechanism. Changes in antioxidant enzyme activities and malondialdehyde levels in P. indica-inoculated plants were observed, and it was demonstrated that oxidative stress induced by insect infestation could be reduced in P. indica-colonized plants.
Journal Article
Growth promotion and disease resistance induced in Anthurium colonized by the beneficial root endophyte Piriformospora indica
2019
Background
Anthurium andraeanum
, an important ornamental flower, has to go through a growth-delaying period after transfer from tissue culture to soil, which requires time and extra costs. Furthermore, during this period, the plantlets are highly susceptible to bacterial infections, which results in impaired development and severe losses. Here, we aimed to address whether application of the endophytic fungus,
Piriformospora indica
protects the
A. andraeanum
root system during the critical propagation period, and whether
P. indica
reduce the mortality rate by stimulating the host’s resistance against diseases.
Results
We demonstrate that
P. indica
shortens the recovery period of
Anthurium
, promotes growth and confers disease resistance. The beneficial effect of
P. indica
results in faster elongation of
Anthurium
roots early in the interaction.
P. indica
-colonized plants absorb more phosphorus and exhibit higher photosynthesis rates than uncolonized control plants. Moreover, higher activities of stress-related enzymes, of jasmonic acid levels and mRNA levels of jasmonic acid-responsive genes suggest that the fungus prepares the plant to respond more efficiently to potentially upcoming threats, including bacterial wilt.
Conclusion
These results suggest that
P. indica
is a helpful symbiont for promoting
Anthurium
rooting and development. All our evidences are sufficient to support the disease resistance conferred by
P. indica
through the plant-fungal symbiosis. Furthermore, it implicates that
P. indica
has strong potential as bio-fertilizer for utilization in ornamental plant cultivation.
Journal Article
The Sweet Potato NAC-Domain Transcription Factor IbNAC1 Is Dynamically Coordinated by the Activator IbbHLH3 and the Repressor IbbHLH4 to Reprogram the Defense Mechanism against Wounding
by
Lu, Hsueh-Han
,
Kuo, Chih-Hsien
,
Yeh, Kai-Wun
in
Arabidopsis - genetics
,
Arabidopsis Proteins - biosynthesis
,
Arabidopsis Proteins - genetics
2016
IbNAC1 is known to activate the defense system by reprogramming a genetic network against herbivory in sweet potato. This regulatory activity elevates plant defense potential but relatively weakens plants by IbNAC1-mediated JA response. The mechanism controlling IbNAC1 expression to balance plant vitality and survival remains unclear. In this study, a wound-responsive G-box cis-element in the IbNAC1 promoter from -1484 to -1479 bp was identified. From a screen of wound-activated transcriptomic data, one transcriptional activator, IbbHLH3, and one repressor, IbbHLH4, were selected that bind to and activate or repress, respectively, the G-box motif in the IbNAC1 promoter to modulate the IbNAC1-mediated response. In the early wound response, the IbbHLH3-IbbHLH3 protein complex binds to the G-box motif to activate IbNAC1 expression. Thus, an elegant defense network is activated against wounding stress. Until the late stages of wounding, IbbHLH4 interacts with IbbHLH3, and the IbbHLH3-IbbHLH4 heterodimer competes with the IbbHLH3-IbbHLH3 complex to bind the G-box and suppress IbNAC1 expression and timely terminates the defense network. Moreover, the JAZs and IbEIL1 proteins interact with IbbHLH3 to repress the transactivation function of IbbHLH3 in non-wounded condition, but their transcription is immediately inhibited upon early wounding. Our work provides a genetic model that accurately switches the regulatory mechanism of IbNAC1 expression to adjust wounding physiology and represents a delicate defense regulatory network in plants.
Journal Article
Growth Promotion-Related miRNAs in Oncidium Orchid Roots Colonized by the Endophytic Fungus Piriformospora indica
2014
Piriformospora indica, an endophytic fungus of Sebacinales, colonizes the roots of a wide range of host plants and establishes various benefits for the plants. In this work, we describe miRNAs which are upregulated in Oncidium orchid roots after colonization by the fungus. Growth promotion and vigorous root development were observed in Oncidium hybrid orchid, while seedlings were colonized by P. indica. We performed a genome-wide expression profiling of small RNAs in Oncidium orchid roots either colonized or not-colonized by P. indica. After sequencing, 24,570,250 and 24744,141 clean reads were obtained from two libraries. 13,736 from 17,036,953 unique sequences showed homology to either 86 miRNA families described in 41 plant species, or to 46 potential novel miRNAs, or to 51 corresponding miRNA precursors. The predicted target genes of these miRNAs are mainly involved in auxin signal perception and transduction, transcription, development and plant defense. The expression analysis of miRNAs and target genes demonstrated the regulatory functions they may participate in. This study revealed that growth stimulation of the Oncidium orchid after colonization by P. indica includes an intricate network of miRNAs and their targets. The symbiotic function of P. indica on Oncidium orchid resembles previous findings on Chinese cabbage. This is the first study on growth regulation and development of Oncidium orchid by miRNAs induced by the symbiotic fungus P. indica.
Journal Article
Differential expression of MYB gene (OgMYB1) determines color patterning in floral tissue of Oncidium Gower Ramsey
2008
The yellow coloration pattern in Oncidium floral lip associated with red sepal and petal tissues is an ideal model to study coordinate regulation of anthocyanin synthesis. In this study, chromatography analysis revealed that the red coloration in floral tissues was composed of malvidin-3-O-galactoside, peonidin-3-O-glucoside, delphinidin-3-O-glucoside and cyanidin-3-O-glucoside compounds. By contrary, these pigments were not detected in yellow lip tissue. Four key genes involved in anthocyanin biosynthetic pathway, i.e. chalcone synthase (OgCHS), chalcone isomerase (OgCHI), dihydroflavonol 4-reductase (OgDFR) and anthocyanidin synthase (OgANS) were isolated and their expression patterns were characterized. Northern blot analysis confirmed that although they are active during floral development, OgCHI and OgDFR genes are specifically down-regulated in yellow lip tissue. Bombardment with OgCHI and OgDFR genes into lip tissue driven by a flower-specific promoter, Pchrc (chromoplast-specific carotenoid-associated gene), demonstrated that transient expression of these two genes resulted in anthocyanin production in yellow lip. Further analysis of a R2R3 MYB transcription factor, OgMYB1, revealed that although it is actively expressed during floral development, it is not expressed in yellow lip tissue. Transient expression of OgMYB1 in lip tissues by bombardment can also induce formation of red pigments through the activation of OgCHI and OgDFR transcription. These results demonstrate that differential expression of OgMYB1 is critical to determine the color pattern of floral organ in Oncidium Gower Ramsey.
Journal Article
WRKY6 restricts Piriformospora indica-stimulated and phosphate-induced root development in Arabidopsis
by
Yeh, Kai-Wun
,
Vahabi, Khabat
,
Varma, Ajit
in
Agriculture
,
Arabidopsis
,
Arabidopsis - genetics
2015
Background
Arabidopsis root growth is stimulated by
Piriformospora indica
, phosphate limitation and inactivation of the WRKY6 transcription factor. Combinations of these factors induce unexpected alterations in root and shoot growth, root architecture and root gene expression profiles.
Results
The results demonstrate that
P. indica
promotes phosphate uptake and root development under Pi limitation in
wrky6
mutant. This is associated with the stimulation of
PHOSPHATE1
expression and ethylene production. Expression profiles from the roots of
wrky6
seedlings identified genes involved in hormone metabolism, transport, meristem, cell and plastid proliferation, and growth regulation. 25 miRNAs were also up-regulated in these roots. We generated and discuss here a list of common genes which are regulated in growing roots and which are common to all three growth stimuli investigated in this study.
Conclusion
Since root development of
wrky6
plants exposed to
P. indica
under phosphate limitation is strongly promoted, we propose that common genes which respond to all three growth stimuli are central for the control of root growth and architecture. They can be tested for optimizing root growth in model and agricultural plants.
Journal Article