• 제목/요약/키워드: Pooideae

검색결과 3건 처리시간 0.019초

포아풀아과(Pooideae subfamily)의 진화와 육종: 맥류 중심의 고찰 (Evolution and Breeding of Members of Pooideae Subfamily: Focusing on Upland Cereal Crops)

  • 성연준;오희원;강유나;김창수
    • 한국작물학회지
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    • 제66권3호
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    • pp.220-239
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    • 2021
  • Grasses (Poaceae) belong to the biggest plant family among angiosperms and it cover around 20% of the earth's surface. The members of this family are mostly utilized as food resources by humans and animals but they are also valuable in terms of evolution and ecology. The member of the subfamily Pooideae represents, temperate grasses, and includes a number of economically important crops and belongs to the clade BOP (including the subfamilies Bambooideae, Oryzeae, and Pooideae). This subfamily is the largest among all grass families. The special features of this subfamily are cold acclimation and vernalization. The members of Pooideae subfamily with the aforementioned special features are thought to have evolved in the Cenozoic era when the temperature on earth started to cool down, which triggered the diversification of this subfamily through adaptation to cold weather. The agricultural origin of wheat, barley, oat, and rye is attributed to fertile crescent and thereafter they were domesticated through Neolithic evolution. The history of domestication of each Pooideae crop is distinct and is based on their purpose. Recently, breeding of these crops is performed differently due to the development of new technologies such as genomics and genome editing. This review article summarizes the evolutionary history of the members of the subfamily Pooideae and use of pre-existing information for future breeding efforts.

국내 농경지에 발생하는 포아풀아과 잡초의 분자생물학적 동정 (Molecular Identification of Pooideae, Poaceae in Korea)

  • 이정란;김창석;이인용
    • Weed & Turfgrass Science
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    • 제4권1호
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    • pp.18-25
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    • 2015
  • DNA 바코드는 게놈 DNA의 단편을 이용해 형태적 지식없이 종을 동정하는 방법으로 전 세계적으로 최근에 많이 이용하고 있으며 고등식물에서는 엽록체 rbcL과 matK 유전자를 이용하고 있다. 본 연구에서는 표준 식물 바코드마커와 핵 ITS 부위를 이용하여 국내 포아풀아과 잡초 16속 29종 163생태형의 바코드 데이터를 생산하는 것을 목적으로 하였다. 더불어 포아풀아과의 바코드에서 각 마커의 효율성도 조사하였다. 바코드 결과 PCR 증폭과 염기서열 분석성공률은 rbcL에서 가장 높았으며 matK에서 가장 낮았다. 반대로 바코드 갭은 matK에서 가장 높은 반면 rbcL에서 가장 낮았으며, 종 식별 해상력은 matK에서 가장 높고, ITS에서 가장 낮았다. 그러나 바코드 갭과 종 식별 해상력이 가장 높은 matK를 포아풀아과에서 바코드 마커로 이용하는 것은 너무 낮은 PCR 증폭과 염기서열 분석성공률(58.3%) 때문에 고려해야할 것으로 생각된다. 단일마커로 rbcL과 ITS는 포아풀아과의 바코드에 적절하게 이용될 수 있으며, 두 마커를 조합으로 이용하면 공통으로 분석된 샘플에 따라 바코드 갭과 종 식별 해상력을 높일 수 있었다. 포아풀아과의 바코드데이터는 미국의 국립생물공학정보센터에 기탁하여 genbank 번호를 부여받아 공개하였다.

Molecular systematics of Poaceae based on eight chloroplast markers, emphasizing the phylogenetic positions of Korean taxa

  • LEE, Jung-Hoon;KIM, Ki-Joong;KIM, Bo-Yun;KIM, Young-Dong
    • 식물분류학회지
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    • 제52권3호
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    • pp.127-143
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    • 2022
  • This study was conducted to clarify the phylogenetic position and relationships of Korean Poaceae taxa. A total of 438 taxa including 155 accessions of Korean Poaceae (representing 92% and 72% of Korean Poaceous genera and species, respectively) were employed for phylogeny reconstruction. Sequence data of eight chloroplast DNA markers were used for molecular phylogenetic analyses. The resulted phylogeny was mostly concordant with previous phylogenetic hypotheses, especially in terms of subfamilial and tribal relationships. Several taxa-specific indels were detected in the molecular phylogeny, including a 45 bp deletion in rps3 (PACMAD [Panicoideae, Arundinoideae, Chloridoideae, Micrairoideae, Aristidoideae, Danthonioideae] clade), a 15 bp deletion in ndhF (Oryzeae + Phyllorachideae), a 6 bp deletion in trnLF (Poeae s.l.), and two (17 bp and 378 bp) deletions in atpF-H (Pooideae). The Korean Poaceae members were classified into 23 tribes, representing eight subfamilies. The subfamilial and tribal classifications of the Korean taxa were generally congruent with a recently published system, whereas some subtribes and genera were found to be non-monophyletic. The taxa included in the PACMAD clade (especially Andropogoneae) showed very weak and uncertain phylogenetic relationships, presumably to be due to evolutionary radiation and polyploidization. The reconstructed phylogeny can be utilized to update the taxonomic positions of the newly examined grass accessions.