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      KCI등재 SCOPUS SCIE

      In silico identification and expression analyses of Defensin genes in the mealworm beetle Tenebrio molitor

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      https://www.riss.kr/link?id=A107358391

      • 저자

        Jang Ho Am (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Park Ki Beom (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Kim Bo Bae (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Ali Mohammadie Kojour Maryam (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Bae Young Min (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Baliarsingh Snigdha (P. G Department of Bio‐science and Biotechnology Fakir Mohan University Balasore Odisha India) ;  Lee Yong Seok (Department of Biotechnology and Life Science, College of Natural Sciences Soonchunhyang University Asan Chungchungnam‐do Republic of Korea) ;  Han Yeon Soo (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea) ;  Jo Yong Hun (Department of Applied Biology, Institute of Environmentally‐Friendly Agriculture (IEFA), College of Agriculture and Life Sciences Chonnam National University Gwangju Republic of Korea)

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        2020

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        English

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        KCI등재,SCOPUS,SCIE

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        575-585(11쪽)

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      부가정보

      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      Defensins are a major family of antimicrobial peptides that serve as the innate immune defense of both vertebrates and invertebrates. Due to their antimicrobial, chemotactic, and regulatory activities, Defensins have been exploited for their therapeutic potential. Insect Defensins are cysteine‐rich and contain an N‐terminal loop, α‐helix, and antiparallel β‐sheet, forming a “cysteine‐stabilized alpha beta (CSαβ)” or “loop–helix‐sheet” structure. In this study, we identified the full‐length open reading frame (ORF) sequences of Defensin (TmDef) and Defensin‐like (TmDef‐like) genes from the mealworm beetle Tenebrio molitor using in silico methods. TmDef and TmDef‐like genes encode the peptides of 72 and 71 amino acid residues, respectively. TmDefensin is comprised of a Defensin domain and the TmDefensin‐like is comprised of a signal peptide of 21 amino acid residues.
      Phylogenetic analysis revealed close similarities of TmDefensin with the Defensin of Acalolepta luxuriosa of the longhorn beetle family. The expression of TmDef mRNA was found to be greater than that of TmDef‐like mRNA and was mostly expressed in the pupal and adult stages. Tissue distribution showed high expression of TmDef‐like mRNA in larval hemocytes, gut, integument, and fat body, while in adults, the expression was high in gut and hemocytes. Following bacterial and fungal stimulation in vivo, TmDef was upregulated at 24 h post‐infection in whole body, fat body, and hemocytes of the larvae. Even TmDef‐like mRNA was upregulated in the gut and hemocytes at 12 and 9 h post‐infection respectively. These results suggest that TmDef and TmDef‐like genes play important roles in protecting T. molitor from microbial contact.
      번역하기

      Defensins are a major family of antimicrobial peptides that serve as the innate immune defense of both vertebrates and invertebrates. Due to their antimicrobial, chemotactic, and regulatory activities, Defensins have been exploited for their therapeut...

      Defensins are a major family of antimicrobial peptides that serve as the innate immune defense of both vertebrates and invertebrates. Due to their antimicrobial, chemotactic, and regulatory activities, Defensins have been exploited for their therapeutic potential. Insect Defensins are cysteine‐rich and contain an N‐terminal loop, α‐helix, and antiparallel β‐sheet, forming a “cysteine‐stabilized alpha beta (CSαβ)” or “loop–helix‐sheet” structure. In this study, we identified the full‐length open reading frame (ORF) sequences of Defensin (TmDef) and Defensin‐like (TmDef‐like) genes from the mealworm beetle Tenebrio molitor using in silico methods. TmDef and TmDef‐like genes encode the peptides of 72 and 71 amino acid residues, respectively. TmDefensin is comprised of a Defensin domain and the TmDefensin‐like is comprised of a signal peptide of 21 amino acid residues.
      Phylogenetic analysis revealed close similarities of TmDefensin with the Defensin of Acalolepta luxuriosa of the longhorn beetle family. The expression of TmDef mRNA was found to be greater than that of TmDef‐like mRNA and was mostly expressed in the pupal and adult stages. Tissue distribution showed high expression of TmDef‐like mRNA in larval hemocytes, gut, integument, and fat body, while in adults, the expression was high in gut and hemocytes. Following bacterial and fungal stimulation in vivo, TmDef was upregulated at 24 h post‐infection in whole body, fat body, and hemocytes of the larvae. Even TmDef‐like mRNA was upregulated in the gut and hemocytes at 12 and 9 h post‐infection respectively. These results suggest that TmDef and TmDef‐like genes play important roles in protecting T. molitor from microbial contact.

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      참고문헌 (Reference)

      1 Lee J, "cDNA cloning and molecular characterization of a defensin-like antimicrobial peptide from larvae of Protaetia brevitarsis seulensis(Kolbe)" 43 : 371-379, 2016

      2 Diaz‐Garrido P, "Variability of defensin genes from a Mexican endemic Triatominae: Triatoma (Meccus) pallidipennis (Hemiptera: Reduviidae)" 38 : 2018

      3 Mount DW, "Using the Basic Local Alignment Search Tool (BLAST)" 2007

      4 Keshavarz M, "Two Roles for the Tenebrio molitor Relish in the Regulation of Antimicrobial Peptides and Autophagy-Related Genes in Response to Listeria monocytogenes" 11 : 188-, 2020

      5 Tonk M, "Tribolium castaneum defensins are primarily active against Gram-positive bacteria" 132 : 208-215, 2015

      6 Zhao L, "Transcription Profiling for Defensins of Aedes aegypti(Diptera : Culicidae)During Development and in Response to Infection With Chikungunya and Zika Viruses" 55 : 78-89, 2018

      7 Park S, "TmToll‐7 Plays a Crucial Role in Innate Immune Responses Against Gram‐Negative Bacteria by Regulating 5 AMP Genes in Tenebrio molitor" 10 : 310-, 2019

      8 Edosa TT, "TmSpz6 Is Essential for Regulating the Immune Response to Escherichia Coli and Staphylococcus Aureus Infection in Tenebrio Molitor" 11 : 2020

      9 Edosa TT, "TmSpz4 Plays an Important Role in Regulating the Production of Antimicrobial Peptides in Response to Escherichia coli and Candida albicans Infections" 21 : 1878-, 2020

      10 Keshavarz M, "TmRelish is required for regulating the antimicrobial responses to Escherichia coli and Staphylococcus aureus in Tenebrio molitor" 10 : 4258-, 2020

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      2 Diaz‐Garrido P, "Variability of defensin genes from a Mexican endemic Triatominae: Triatoma (Meccus) pallidipennis (Hemiptera: Reduviidae)" 38 : 2018

      3 Mount DW, "Using the Basic Local Alignment Search Tool (BLAST)" 2007

      4 Keshavarz M, "Two Roles for the Tenebrio molitor Relish in the Regulation of Antimicrobial Peptides and Autophagy-Related Genes in Response to Listeria monocytogenes" 11 : 188-, 2020

      5 Tonk M, "Tribolium castaneum defensins are primarily active against Gram-positive bacteria" 132 : 208-215, 2015

      6 Zhao L, "Transcription Profiling for Defensins of Aedes aegypti(Diptera : Culicidae)During Development and in Response to Infection With Chikungunya and Zika Viruses" 55 : 78-89, 2018

      7 Park S, "TmToll‐7 Plays a Crucial Role in Innate Immune Responses Against Gram‐Negative Bacteria by Regulating 5 AMP Genes in Tenebrio molitor" 10 : 310-, 2019

      8 Edosa TT, "TmSpz6 Is Essential for Regulating the Immune Response to Escherichia Coli and Staphylococcus Aureus Infection in Tenebrio Molitor" 11 : 2020

      9 Edosa TT, "TmSpz4 Plays an Important Role in Regulating the Production of Antimicrobial Peptides in Response to Escherichia coli and Candida albicans Infections" 21 : 1878-, 2020

      10 Keshavarz M, "TmRelish is required for regulating the antimicrobial responses to Escherichia coli and Staphylococcus aureus in Tenebrio molitor" 10 : 4258-, 2020

      11 Keshavarz M, "TmPGRP-SA regulates Antimicrobial Response to Bacteria and Fungi in the Fat Body and Gut of Tenebrio molitor" 21 : 2113-, 2020

      12 Keshavarz M, "TmDorX2 positively regulates antimicrobial peptides in Tenebrio molitor gut, fat body, and hemocytes in response to bacterial and fungal infection" 9 : 16878-, 2019

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