• 제목/요약/키워드: regulatory mutant

검색결과 157건 처리시간 0.029초

Sorghum TCP transcription factor MULTISEED1 affects grain yield regulating at pedicellate spikelet fertility

  • Lee, Young Koung;Jiao, Yinping;Gladman, Nicholas;Chopra, Ratan;Burow, Gloria;Burke, John;Xin, Zhanguo;Ware, Doreen
    • 한국작물학회:학술대회논문집
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    • 한국작물학회 2017년도 9th Asian Crop Science Association conference
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    • pp.25-25
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    • 2017
  • Inflorescence architecture mainly contributes to final grain yield in crops. Sorghum inflorescence is basically composed of one fertile sessile spikelet (SS) and two infertile pedicellate spikelets (PS). To identify regulatory factors involved in the inflorescence architecture, we screened an EMS mutagenesis population from the pedigreed sorghum mutant library. We found inflorescent architecture mutants, named as multi-seed mutants, msd, with gained fertile ability in PS and also an increased number of floral branches. In natural sorghum populations, it is not common that are fertile. A detailed dissection of developmental stages of wild type and msd1 mutant described that the PS in wild type do not have floral organs, including ovary, stigma, filament and anther, while the msd1 mutants generate intact floral organ in the sessile spikelet. We found MSD1 encoded a TCP transcription factor using bulk segregant analysis (BSA) of F2 population, and was a strongly enriched expression during inflorescence developmental stages. We proposed that MSD1 functions to suppress floral organ maintenance at PS during inflorescence development in Sorghum. To explore the regulatory network associated with PS fertility, whole genome expression profiling was performed at 4 different developmental stages in 6 various tissue types between wild type and msd1. Taken together, we demonstrated that MSD1 was involved in the plant hormone and maybe influenced program cell death in PS via the activation of plant hormonal pathway.

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Functional Roles of a Putative B' Delta Regulatory Subunit and a Catalytic Subunit of Protein Phosphatase 2A in the Cereal Pathogen Fusarium graminearum

  • Kim, Hee-Kyoung;Yun, Sung-Hwan
    • The Plant Pathology Journal
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    • 제28권3호
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    • pp.259-269
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    • 2012
  • Protein phosphatase 2A (PP2A), a family of serine/threonine protein phosphatases, plays an important role in balancing the phosphorylation status of cellular proteins for regulating diverse biological functions in eukaryotic organisms. Despite intensive studies in mammals, limited information on its role is available in filamentous fungi. Here, we investigated the functional roles of genes for a putative B' delta regulatory subunit (FgPP2AR) and a catalytic subunit (FgPP2AC) of PP2A in a filamentous ascomycete, Fusarium graminearum. Molecular characterization of an insertional mutant of this plant pathogenic fungus allowed us to identify the roles of FgPP2AR. Targeted gene replacement and complementation analyses demonstrated that the deletion of FgPP2AR, which was constitutively expressed in all growth stages, caused drastic changes in hyphal growth, conidia morphology/germination, gene expression for mycotoxin production, sexual development and pathogenicity. In particular, overproduction of aberrant cylindrical-shaped conidia is suggestive of arthroconidial induction in the ${\Delta}FgPP2AR$ strain, which has never been described in F. graminearum. In contrast, the ${\Delta}FgPP2AC$ strain was not significantly different from its wild-type progenitor in conidiation, trichothecene gene expression, and pathogenicity; however, it showed reduced hyphal growth and no perithecial formation. The double-deletion ${\Delta}FgPP2AR;{\Delta}FgPP2AC$ strain had more severe defects than single-deletion strains in all examined phenotypes. Taken together, our results indicate that both the putative regulatory and catalytic subunits of PP2A are involved in various cellular processes for fungal development in F. graminearum.

Myotube differentiation in clustered regularly interspaced short palindromic repeat/Cas9-mediated MyoD knockout quail myoblast cells

  • Kim, Si Won;Lee, Jeong Hyo;Park, Byung-Chul;Park, Tae Sub
    • Asian-Australasian Journal of Animal Sciences
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    • 제30권7호
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    • pp.1029-1036
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    • 2017
  • Objective: In the livestock industry, the regulatory mechanisms of muscle proliferation and differentiation can be applied to improve traits such as growth and meat production. We investigated the regulatory pathway of MyoD and its role in muscle differentiation in quail myoblast cells. Methods: The MyoD gene was mutated by the clustered regularly interspaced short palindromic repeat (CRISPR)/Cas9 technology and single cell-derived MyoD mutant sublines were identified to investigate the global regulatory mechanism responsible for muscle differentiation. Results: The mutation efficiency was 73.3% in the mixed population, and from this population we were able to establish two QM7 MyoD knockout subline (MyoD KO QM7#4) through single cell pick-up and expansion. In the undifferentiated condition, paired box 7 expression in MyoD KO QM7#4 cells was not significantly different from regular QM7 (rQM7) cells. During differentiation, however, myotube formation was dramatically repressed in MyoD KO QM7#4 cells. Moreover, myogenic differentiation-specific transcripts and proteins were not expressed in MyoD KO QM7#4 cells even after an extended differentiation period. These results indicate that MyoD is critical for muscle differentiation. Furthermore, we analyzed the global regulatory interactions by RNA sequencing during muscle differentiation. Conclusion: With CRISPR/Cas9-mediated genomic editing, single cell-derived sublines with a specific knockout gene can be adapted to various aspects of basic research as well as in functional genomics studies.

DNA 마이크로어레이 시스템 분석을 통한 S. lividans 유래 항생제 조절유전자 afsR2 기능 분석 (Functional Analysis of an Antibiotic Regulatory Gene, afsR2 in S. lividans through DNA microarray System)

  • 김창영;노준희;이한나;김응수
    • KSBB Journal
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    • 제24권3호
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    • pp.259-266
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    • 2009
  • AfsR2 과발현 S. lividans TK21을 이용하여 DNA microarray를 수행하였다. 그 결과, phosphate starvation과 관련 있는 42개의 유전자들이 up-regulated 되었으며, 특히 SCO4139 (pstB, phosphate ABC transport system ATP-binding protein)와 SCO4142 (pstS, phosphate-binding protein precursor)는 afsR2가 phosphate와 같은 nutrient starvation에 적극적으로 관여한다는 것을 나타내며, SCO4228 (putative phosphate transport system regulatory protein)은 기존에 수행되었던 2D-electrophoresis 연구나 afsS null S. coelicolor를 이용한 DNA microarray 연구에서도 공통적으로 보고되었던 유전자로서 phosphate lilitation에 대한 afsR2의 효과가 지속적으로 검증되고 있음을 뜻한다. 또한 afsR2 과발현을 통해서 sigma factor인 SCO2954 (sigL)과 SCO5147 (sigE)의 발현이 유도되었으며 두 유전자의 구조적인 특징을 고려해 보았을 때 afsR2가 RNA polymerase와의 linker로서의 역할을 추측해 볼 수 있다. 뿐만 아니라 whi 관련 유전자들의 발현 또한 afsR2에 의해 증가되었다. 이는 afsR2가 단순히 2차 대사물질 생합성 조절에만 관여하는 것이 아니라 형태적 분화에 작용함으로써 최종적으로 여러 2차 대사물질의 합성을 유도한다고 말할 수 있다. 이러한 결과들을 토대로 afsR2가 기존에 항생제 생합성에만 관여하는 global regulatory 조절인자가 아닌 방선균이 stationary phase로 전환되는 시점에서 형태적 분화에 영향을 미치고 phosphate limitation stress를 줄여주는 2차 대사의 key-factor regulatory 유전자임을 알 수 있다.

Stimulation of eNOS-Ser617 Phosphorylation by Fluid Shear Stress in Endothelial Cells

  • Boo, Yong-Chool
    • Journal of Applied Biological Chemistry
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    • 제48권4호
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    • pp.178-182
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    • 2005
  • Nitric oxide (NO) produced from endothelial cells plays a critical role in vascular physiology. The regulation of endothelial NO synthase (eNOS) involves various mechanisms including multiple Ser/Thr phosphorylations. Recently, eNOS-Ser617 was newly recognized to be phosphorylated in response to humoral factors including vascular endothelial growth factor. However, it remains unknown whether and how eNOS-Ser617 phosphorylation is stimulated by shear stress, the primary stimulus of endothelial NO production. This issue was explored in the present study using cultured bovine aortic endothelial cells (BAECs). Over-expression of a constitutively active protein kinase B(Akt) mutant in BAECs increased Ser617 phosphorylation while constitutively active protein kinase A mutant had no effect. When BAECs were subjected to an arterial level of laminar shear stress, eNOS-Ser617 phosphorylation was clearly increased in a time-dependent manner. Shear stress also stimulated Akt phosphorylation at Thr308, one of the key regulatory sites. The time courses of eNOS-Ser617 and Akt-Thr308 phosphorylations appeared to be very similar. These results suggested that eNOS-Ser617 phosphorylation, mediated by Akt, is a physiological response to the mechanical shear stress, involved in the regulation of NO production in endothelial cells.

Proteomic Reference Map and Comparative Analysis between Streptomyces griseus S4-7 and wbiE2 Transcription Factor-Mutant Strain

  • Kim, Jisu;Kwon, Young Sang;Bae, Dong-Won;Kwak, Youn-Sig
    • The Plant Pathology Journal
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    • 제36권2호
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    • pp.185-191
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    • 2020
  • Streptomyces griseus S4-7, a well-characterized keystone taxon among strawberry microbial communities, shows exceptional disease-preventing ability. The whole-genome sequence, functional genes, and bioactive secondary metabolites of the strain have been described in previous studies. However, proteomics studies of not only the S4-7 strain, but also the Streptomyces genus as a whole, remain limited to date. Therefore, in the present study, we created a proteomics reference map for S. griseus S4-7. Additionally, analysis of differentially expressed proteins was performed against a wblE2 mutant, which was deficient in spore chain development and did not express an antifungal activity-regulatory transcription factor. We believe that our data provide a foundation for further in-depth studies of functional keystone taxa of the phytobiome and elucidation of the mechanisms underlying plant-microbe interactions, especially those involving the Streptomyces genus.

The nonconserved N-terminus of protein phosphatases 1 influences its active site

  • Xie, XiuJie;Huang, Wei;Xue, ChengZhe;Wei, Qun
    • BMB Reports
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    • 제41권12호
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    • pp.881-885
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    • 2008
  • Protein phosphatase 1 consists of a secondary structure arrangement, conserved in the serine/threonine protein phosphatase gene family, flanked by nonconserved N-terminal and C-terminal domains. The deletion mutant of PP1 with the 8 nonconserved N-terminal residues removed was designated PP1-(9-330). PP1-(9-330) had a higher activity and affinity than PP1 when assayed against four different substrates, and it also demonstrated a 6-fold higher sensitivity to the inhibitor okadaic acid. This suggested that the N-terminal domain suppresed the activity of PP1 and interfered with its inhibition by okadaic acid. The ANS fluorescence intensity of PP1-(9-330) was greater than that of PP1, which implies that the hydrophobic groove running from active site in the truncated PP1 was more hydrophobic than in PP1. Our findings provide evidence that the nonconserved N-terminus of PP1 functions as an important regulatory domain that influences the active site and its pertinent properties.

Increased store-operated Ca2+ entry mediated by GNB5 and STIM1

  • Kang, Namju;Kang, Jung Yun;Park, Soonhong;Shin, Dong Min
    • The Korean Journal of Physiology and Pharmacology
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    • 제22권3호
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    • pp.343-348
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    • 2018
  • Recent human genetic studies have shown that $G{\beta}5$ is related to various clinical symptoms, such as sinus bradycardia, cognitive disability, and attention deficit hyperactivity disorder. Although the calcium signaling cascade is closely associated with a heterotrimeric G-protein, the function of $G{\beta}5$ in calcium signaling and its relevance to clinical symptoms remain unknown. In this study, we investigated the in vitro changes of store-operated calcium entry (SOCE) with exogenous expression of $G{\beta}5$. The cells expressing $G{\beta}5$ had enhanced SOCE after depletion of calcium ion inside the endoplasmic reticulum. $G{\beta}5$ also augmented Stim1- and Orai1-dependent SOCE. An ORAI1 loss-of-function mutant did not show inhibition of $G{\beta}5$-induced SOCE, and a STIM1-ERM truncation mutant showed no enhancement of SOCE. These results suggested a novel role of GNB5 and Stim1, and provided insight into the regulatory mechanism of SOCE.

NMR Hydrogen Exchange Study of DNA Duplex Containing the Consensus Binding Site for Human MEIS1

  • Choi, Seo-Ree;Jin, Ho-seong;Seo, Yeo-Jin;Lee, Joon-Hwa
    • 한국자기공명학회논문지
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    • 제24권4호
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    • pp.117-122
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    • 2020
  • Transcription factors are proteins that bind specific sites or elements in regulatory regions of DNA, known as promoters or enhancers, where they control the transcription or expression of target genes. MEIS1 protein is a DNA-binding domain present in human transcription factors and plays important roles in various biological functions. The hydrogen exchange rate constants of the imino protons were determined for the wild-type containing the consensus DNA-binding site for the MEIS1 and those of the mutant DNA duplexes using NMR spectroscopy. The G2A-, A3G- and C4T-mutant DNA duplexes lead to clear changes in thermal stabilities of these four consensus base pairs. These unique dynamic features of the four base pairs in the consensus 5'-TGAC-3' sequence might play crucial roles in the effective DNA binding of the MEIS1 protein.

Identification of Small GTPases That Phosphorylate IRF3 through TBK1 Activation Using an Active Mutant Library Screen

  • Jae-Hyun Yu;Eun-Yi Moon;Jiyoon Kim;Ja Hyun Koo
    • Biomolecules & Therapeutics
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    • 제31권1호
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    • pp.48-58
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    • 2023
  • Interferon regulatory factor 3 (IRF3) integrates both immunological and non-immunological inputs to control cell survival and death. Small GTPases are versatile functional switches that lie on the very upstream in signal transduction pathways, of which duration of activation is very transient. The large number of homologous proteins and the requirement for site-directed mutagenesis have hindered attempts to investigate the link between small GTPases and IRF3. Here, we constructed a constitutively active mutant expression library for small GTPase expression using Gibson assembly cloning. Small-scale screening identified multiple GTPases capable of promoting IRF3 phosphorylation. Intriguingly, 27 of 152 GTPases, including ARF1, RHEB, RHEBL1, and RAN, were found to increase IRF3 phosphorylation. Unbiased screening enabled us to investigate the sequence-activity relationship between the GTPases and IRF3. We found that the regulation of IRF3 by small GTPases was dependent on TBK1. Our work reveals the significant contribution of GTPases in IRF3 signaling and the potential role of IRF3 in GTPase function, providing a novel therapeutic approach against diseases with GTPase overexpression or active mutations, such as cancer.