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      배추 완전장 유전자 과발현 애기장대 형질전환체 활용 내염성 유전자 선발 및 유채 형질전환 = Functional Screening of Salt Stress Tolerance Genes Using Transgenic Arabidopsis thaliana Lines Overexpressing Brassica rapa Full-length Genes and Brassica napus Transformation

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      https://www.riss.kr/link?id=A107142617

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      다국어 초록 (Multilingual Abstract)

      Given that soil salinity significantly limits plant growth and production in agricultural land, research on salt stress is of particular agricultural relevance. In this study, for the purposes of functional screening of genes involved in salt stress r...

      Given that soil salinity significantly limits plant growth and production in agricultural land, research on salt stress is of particular agricultural relevance. In this study, for the purposes of functional screening of genes involved in salt stress responses, we selected approximately 651 transgenic Arabidopsis lines (157 independent full-length) from a transgenic Arabidopsis population overexpressing full-length Brassica rapa cDNAs. Initial screening indicated that the transgenic lines of 12 genes showed apparent salt tolerance phenotypes when exposed to NaCl at a concentration of 125 mM, among which, two genes (BrATL30 and BrZHD10) were selected for detailed characterization. The T3 progeny of these transgenic lines exhibited accelerated seed germination, often accompanied by faster root growth and higher survival rate, compared with wild-type plants under salt stress. Additionally, in order to examine the agricultural potential of the two selected B. rapa genes, we constructed BrATL30- and BrZHD10-overexpressing Brassica napus transgenic plants (BrATL30-OX and BrZHD10-OX), which showed apparent high salt stress-tolerant phenotypes compared with wild-type plants. Furthermore, we found that the basal expression of several saltand abiotic stress-responsive genes was higher in transgenic plants than in wild-type plants. Taken together, this study will provide two valuable functional genes related to salt stress tolerance.

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      참고문헌 (Reference)

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      2 홍준기, "배추 GROWTH-REGULATING FACTOR 유전자 발현이 유채 기관크기에 미치는 영향" 한국육종학회 50 (50): 378-386, 2018

      3 Shalmani A, "Zinc finger-homeodomain genes : Evolution, functional differentiation, and expression profiling under flowering-related treatments and abiotic stresses in plants" 15 : 1-16, 2019

      4 Shi H, "The putative plasma membrane Na+/H+antiporter SOS1 controls long-distance Na+ transporter in plants" 14 : 465-477, 2002

      5 Guzmán P, "The prolific ATL family of RING-H2ubiquitin ligases" 7 : 1014-1021, 2012

      6 Wang X, "The genome of the mesopolyploid crop species Brassica rapa" 43 : 1035-1039, 2011

      7 Dassanayake M, "The genome of extremophile crucifer Thellungiella parvula" 43 : 913-918, 2013

      8 Quintero FJ, "The SAL1 gene of Arabidopsis, encoding an enzyme with 3'(2'), 5'-bisphosphate nucleotide and inositol polyphosphate 1-phosphatase activities, increases salt tolerance in yeast" 8 : 529-537, 1996

      9 Ichikawa T, "The FOX hunting system : An alternative gain-of-function gene hunting technique" 48 : 974-985, 2006

      10 Liu J, "The Arabidopsis thaliana SOS2 gene encodes a protein kinase that is required for salt tolerance" 97 : 3730-3734, 2000

      1 윤대진, "식물의 고염 스트레스에 대한 반응 및 적응기작(총설)" 한국식물생명공학회 32 (32): 1-14, 2005

      2 홍준기, "배추 GROWTH-REGULATING FACTOR 유전자 발현이 유채 기관크기에 미치는 영향" 한국육종학회 50 (50): 378-386, 2018

      3 Shalmani A, "Zinc finger-homeodomain genes : Evolution, functional differentiation, and expression profiling under flowering-related treatments and abiotic stresses in plants" 15 : 1-16, 2019

      4 Shi H, "The putative plasma membrane Na+/H+antiporter SOS1 controls long-distance Na+ transporter in plants" 14 : 465-477, 2002

      5 Guzmán P, "The prolific ATL family of RING-H2ubiquitin ligases" 7 : 1014-1021, 2012

      6 Wang X, "The genome of the mesopolyploid crop species Brassica rapa" 43 : 1035-1039, 2011

      7 Dassanayake M, "The genome of extremophile crucifer Thellungiella parvula" 43 : 913-918, 2013

      8 Quintero FJ, "The SAL1 gene of Arabidopsis, encoding an enzyme with 3'(2'), 5'-bisphosphate nucleotide and inositol polyphosphate 1-phosphatase activities, increases salt tolerance in yeast" 8 : 529-537, 1996

      9 Ichikawa T, "The FOX hunting system : An alternative gain-of-function gene hunting technique" 48 : 974-985, 2006

      10 Liu J, "The Arabidopsis thaliana SOS2 gene encodes a protein kinase that is required for salt tolerance" 97 : 3730-3734, 2000

      11 Hugo Duarte Alves Horta, "Science and Technology in Portugal: From Late Awakening to the Challenge of Knowledge Integrated Communities. In Neave, G., and Amaral, A., (Eds.). Higher Education in Portugal 1974-2009: A Nation, A Generation" Springer 1-33, 2012

      12 Parvaiz A, "Salt stress and phytobiochemical responses of plants-A review" 54 : 88-99, 2008

      13 백동원, "Salt cress 유전자의 형질전환을 통한 내염성 식물체 선별" 한국식물생명공학회 41 (41): 81-88, 2014

      14 Lata C, "Role of DREBs in regulation of abiotic stress responses in plants" 62 : 4731-4748, 2011

      15 Sakurai T, "RiceFOX : A database of Arabidopsis mutant lines overexpressing rice full-length cDNA that contains a wide range of trait information to facilitate analysis of gene function" 52 : 265-273, 2011

      16 Jiménez-López D, "Repertoire of plant RING E3 ubiquitin ligases revisited: New groups counting gene families and single genes" 13 : e0203442-, 2018

      17 Qiu QS, "Regulation of vacuolar Na+/H+ exchange in Arabidopsis thaliana by the salt-overly-sensitive(SOS)pathway" 279 : 207-215, 2004

      18 Zhu J-K, "Plant salt tolerance" 6 : 66-71, 2001

      19 홍준기, "Overexpression of a Brassica rapa MADS-box gene, BrAGL20, induces early flowering time phenotypes in Brassica napus" 한국식물생명공학회 7 (7): 231-237, 2013

      20 Yang Q, "Overexpression of SOS(Salt Overly Sensitive)genes increases salt tolerance in transgenic Arabidopsis" 2 : 22-31, 2009

      21 Hong JK, "Overexpression of Brassica rapa SHI-RELATEDSEQUENCE genes suppresses growth and development in Arabidopsis thaliana" 34 : 561-156, 2012

      22 홍준기, "Overexpression of Brassica rapa GROWTH-REGULATING FACTOR genes in Arabidopsis thaliana increases organ growth by enhancing cell proliferation" 한국식물생명공학회 44 (44): 271-286, 2017

      23 Nakashima K, "Organization and expression of two Arabidopsis DREB2 genes encoding DRE-binding proteins involved in dehydration-and highsalinity-responsive gene expression" 42 : 657-665, 2000

      24 Rus A, "Natural variants of AtHKT1enhance Na+ accumulation in two wild populations of Arabidopsis" 2 : 1964-1973, 2006

      25 Bahmani K, "Molecular mechanisms of plant salinity tolerance : a review" 9 : 321-336, 2015

      26 dos Reis SP, "Molecular cloning and characterization of a novel RING zinc-finger protein gene up-regulated under in vitro salt stress in cassava" 39 : 1-7, 2012

      27 Munns R, "Mechanisms of salinity tolerance" 59 : 651-681, 2008

      28 홍준기, "Identification and characterization of SHI family genes from Brassica rapa L. ssp. pekinensis" 한국유전학회 32 (32): 309-317, 2010

      29 Du QL, "GmRFP1encodes a previously unknown RING-type E3 ubiquitin ligase in Soybean(Glycine max)" 37 : 685-693, 2010

      30 Vallejo AJ, "Germination variation in Arabidopsis thaliana accessions under moderate osmotic and salt stresses" 106 : 833-842, 2010

      31 Hu J, "Genomewide identification and expression pattern analysis of zinc-finger homeodomain transcription factors in tomato under abiotic stress" 143 : 14-22, 2018

      32 Jung HJ, "Genome-wide transcriptome analysis of two contrasting Brassica rapa doubled haploid lines under cold-stresses using Br135K oligomeric chip" 9 : e106069-, 2014

      33 Wang H, "Genome-wide identification, evolution and expression analysis of the grape(Vitis vinifera L. )zinc finger-homeodomain gene family" 15 : 5730-5748, 2014

      34 Khatun K, "Genome-wide analysis and expression profiling of zinc finger homeodomain(ZHD)family genes revels likely roles in organ development and stress responses in tomato" 18 : 165-, 2017

      35 Zhu J-K, "Genetic analysis of salt tolerance in Arabidopsis : Evidence for a critical role of Potassium nutrition" 10 : 1181-1191, 1998

      36 Seki M, "Functional genomics using RIKEN Arabidopsis thaliana full-length cDNAs" 122 : 355-366, 2009

      37 이인호, "FOX hunting system을 이용한 배추 기능유전자 탐색" 한국식물생명공학회 37 (37): 174-185, 2010

      38 Xiong L, "FIERY1 encoding an inositol polyphosphate 1-phosphatase is a negative regulator of abscisic acid and stress signaling in Arabidopsis" 15 : 1971-1984, 2001

      39 Duan L, "Endodermal ABA signaling promotes lateral root quiescence during salt stress in Arabidopsis seedlings" 25 : 324-341, 2013

      40 Song C, "Ectopic expression of an Arabidopsis dehydration-responsive element-binding factor DREB2C improves salt stress tolerance in crucifers" 33 : 1239-1254, 2014

      41 Sakuma Y, "Dual function of an Arabidopsis transcription factor DREB2A in water-stress-responsive and heat-stress-responsive gene expression" 103 : 18822-18827, 2006

      42 Bartels D, "Drought and slat tolerance in plants" 24 : 1-36, 2005

      43 Jiang Y, "Comparative proeomic analysis of NaCl stress-responsive proteins in Arabidopsis roots" 58 : 3591-3607, 2007

      44 Tran LSP, "Co-expression of the stressinducible zinc finger homeodomain ZFHD1 and NAC transcription factors enhances expression of the ERD1 gene in Arabidopsis" 49 : 46-63, 2007

      45 Yao K, "Cloning of dehydrin coding sequences from Brassica juncea and Brassica napus and their low temperature-inducible expression in germinating seeds" 43 : 83-89, 2005

      46 Windhovel A, "Characterization of a novel class of plant homeodomain proteins that bind to the C4 phosphoenolpyruvate carboxylase gene of Flaveria trinervia" 45 : 201-214, 2001

      47 He XJ, "AtNAC2, a transcription factor downstream of ethylene and auxin signaling pathways, is involved in salt stress response and lateral root development" 44 : 903-916, 2005

      48 Rus A, "AtHKT1 is a salt tolerance determinant that controls Na entry into plant roots" 98 : 14150-14155, 2001

      49 Xiong L, "Arabidopsis Book" The American Society of Plant Biology 1-24, 2002

      50 Leung J, "Arabidopsis ABA-response gene ABI1 : Features of a calcium-modulated protein phosphatase" 264 : 1448-1452, 1994

      51 Song J, "An ATL78-like RING-H2 finger protein confers abiotic stress tolerance through interacting with RAV2 and CSN5B in tomato" 7 : 1305-, 2016

      52 이강섭, "Ac/Ds 삽입 변이체를 이용한 벼 유전자 기능 연구" 한국식물생명공학회 37 (37): 125-132, 2010

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