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Brassica A genome의 최근 연구 동향

Current status of Brassica A genome analysis

  • 최수련 (충남대학교 식물유전체연구소) ;
  • 권수진 (농촌진흥청 국립농업과학원 농업생명자원부)
  • Choi, Su-Ryun (Genome Research Center, Department of Horticulture, Chungnam National University) ;
  • Kwon, Soo-Jin (Genomics Division, Department of Agricultural Biotechnology, National Academy of Agricultural Science, RDA)
  • 투고 : 2012.03.05
  • 심사 : 2012.03.15
  • 발행 : 2012.03.31

초록

작물의 구조와 기능을 이해하려는 과학적 탐구심과 이를 작물 육종에 적용하려는 실험적 노력의 일환으로 다양한 작물에서 유전자 지도가 개발되었다. 특히, 배추과 작물의 경우 모델식물인 애기장대의 유전체 정보가 공개된 이후 다양한 정보 (염기서열 정보, 유전자 구조 및 기능정보 등)의 이용이 가능해져 유전자 지도 작성이 가속화 되었으며 이는 최근 $B.$ $rapa$ A genome (배추)유전체 해독이라는 결과를 가져왔다. 배추과 작물의 유전자 지도 작성에 있어서 초기에는 RFLP 마커들이 사용되었으나 이후 분자마커, 즉, RAPD, AFLP, SSR 등과 같이 비교적 사용이 간단하고 시간적 제약이 없는 PCR 마커의 형태로 점차 바뀌었다. 배추과 작물의 경제적, 학문적 가치가 고려되어 $B.$ $rapa$ (배추)를 표준재료로 A genome 유전체 염기서열 해독이라는 목표로 다국적 유전체 프로젝트가 결성되었고 2011년 국내연구진이 주도적으로 참여한 국제 컨소시엄 (BrGSPC, $B.$ $rapa$ Genome Sequencing Project Consortium)에 의해 배추 (10개 염색체)의 유전자 영역(gene space), 약 98% (83.8 Mb)의 염기서열이 해독되어 발표되었다. 유전체 해독 과정에서 축적된 염기서열 정보는 대량의 SSR, SNP, IBP 마커의 개발을 가능하게 하였고 이들 마커는 $B.$ $rapa$ A genome 유전자 지도와 물리 지도 작성에 이용되어 이후 배추과 작물연구 전반에 널리 적용되고 있다. 대량의 분자마커 개발은 유전자 지도 작성을 가속화하여 더욱 정밀한 유전자 지도를 가능하게 하였고 공통의 분자마커 정보는 애기장대와 배추과 작물 간 비교유전체 연구를 통해 농업적 우수 형질의 클로닝, 마커도움선발 (MAS)등의 방법으로 분자육종의 기반을 제공하고 있다. 뿐만 아니라. 최근 등장한 NGS 유전체 해독 기술로 생산된 대량의 정보는 분자육종 실현 가능성을 높여 분자육종 실용화에 박차를 가하는 계기가 되고 있다. 본 논문에서는 $B.$ $rapa$에서 분자마커를 이용한 유전자 지도 개발의 과정과 농업적 유용형질 탐색을 위한 양적 형질 유전자좌 (QTLs)의 연구 현황에 대하여 알아보고 유전체연구에서 유전자 지도의 중요성과 육종에의 응용에 대하여 서술하였다. 또한 다양한 유전체 정보와 오믹스 정보를 국내 배추과 분자육종에 효율적으로 활용하여 분자육종 실용화를 가능하게 하기 위해 사용자가 쉽게 사용할 수 있는 데이터베이스를 구축함으로서 연구자와 육종가 간의 간격을 좁히고 원활한 정보교환의 필요성을 제기하였다.

As a scientific curiosity to understand the structure and the function of crops and experimental efforts to apply it to plant breeding, genetic maps have been constructed in various crops. Especially, in the case of Brassica crop, genetic mapping has been accelerated since genetic information of model plant $Arabidopsis$ was available. As a result, the whole $B.$ $rapa$ genome (A genome) sequencing has recently been done. The genome sequences offer opportunities to develop molecular markers for genetic analysis in $Brassica$ crops. RFLP markers are widely used as the basis for genetic map construction, but detection system is inefficiency. The technical efficiency and analysis speed of the PCR-based markers become more preferable for many form of $Brassica$ genome study. The massive sequence informative markers such as SSR, SNP and InDels are also available to increase the density of markers for high-resolution genetic analysis. The high density maps are invaluable resources for QTLs analysis, marker assisted selection (MAS), map-based cloning and comparative analysis within $Brassica$ as well as related crop species. Additionally, the advents of new technology, next-generation technique, have served as a momentum for molecular breeding. Here we summarize genetic and genomic resources and suggest their applications for the molecular breeding in $Brassica$ crop.

키워드

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