• 제목/요약/키워드: chloroplast transformation

검색결과 22건 처리시간 0.014초

종자내 아미노산 합성 조절 유전자에 관한 연구 (Amino Acid Biosynthesis and Gene Regulation in Seed)

  • 임용표;서미정;조수진;이정희;이효연
    • 한국식물학회:학술대회논문집
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    • 한국식물학회 1996년도 제10회 식물생명공학심포지움 고등식물 발생생물학의 최근 진보
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    • pp.61-74
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    • 1996
  • Human and monogastric animals can not synthesize 10 out of the 20 amino asids and therefor need to obtain these from their diet. The plant seed is a major source of dietary protein. It is particular important in their study to increase nutritional quality of the seed storage proteins. The low contents of lysine, asparagine and threonenein various cereal seeds and of cystein and methionine. In legume seeds is due to the low proportions of these amino acids in the major storage proteins, we have tried to apply the three strategies; (1) mutagenesis and selection of specific amino acid analogue resistance, (2) cloning and expression study of lysine biosynthesis related gene, (3) transfomation of lysine rich soybean glycinin gene. The 5-methyltryptophan (5MT) resistant cell lines, SAR1, SAR2 and SAR3 were selected from anther derived callus of rice (Oryza sativa L. "Sasanishiki"). Among these selected cell lines, two (SAR1 and SAR3) were able to grow stably at 200 mg/L of 5MT. Analysis of the freed amino acids in callus shows that 5MT resistant cells (SAR3) accumulated free tryptophan at least up to 50 times higher than those that of the higher than of SAS. These results indicated that the 5MT resistant cell lines are useful in studies of amino acid biosynthesis. Tr75, a rice (Oryza sativa L., var. Sasanishiki) mutant resistant to 5MT was segregated from the progenies of its initial mutant line, TR1. The 5MT resistant of TR75 was inherited in the M8 generations as a single dominant nuclear gene. The content of free amino acids in the TR75 homozygous seeds increased approximately 1.5 to 2.0 fold compared to wild-type seeds. Especially, the contents of tryptophan, phenylalanine and aspartic acid were 5.0, 5.3 and 2.7 times higher than those of wild-type seeds, respectively. The content of lysine is significantly low in rice. The lysine is synthesized by a complex pathway that is predominantly regulated by feedback inhibition of several enzymes including asparginase, aspatate kinase, dihydrodipicolinat synthase, etc. For understanding the regulation mechanism of lysine synthesis in rice, we try to clone the lysine biosynthetic metabolism related gene, DHPS and asparaginase, from rice. We have isolated a rice DHPS genomic clone which contains an ORF of 1044 nucleotides (347 amino acids, Mr. 38, 381 daltons), an intron of 587 nucleotides and 5'and 3'-flanking regions by screening of rice genomic DNA library. Deduced amino acid sequence of mature peptide domain of GDHPS clone is highly conserved in monocot and dicot plants whereas that of transit peptide domain is extremely different depending on plant specie. Southern blot analysis indicated that GDHPS is located two copy gene in rice genome. The transcripts of a rice GDHPS were expressed in leaves and roots but not detected in callus tissues. The transcription level of GDHPS is much higher in leaves indicating enormous chloroplast development than roots. Genomic DNA clones for asparaginase genes were screened from the rice genomic library by using plaque hybridization technique. Twelve different genomic clones were isolated from first and second screening, and 8 of 12 clones were analyzed by restriction patterns and identified by Southern Blotting, Restriction enzyme digestion patterns and Southern blot analysis of 8 clones show the different pattern for asparaginase gene. Genomic Southern blot analysis from rice were done. It is estimated that rice has at least 2-3 copy of asparaginase gene. One of 8 positive clones was subcloned into the pBluescript SK(+) vector, and was constructed the physical map. For transformation of lysine rich storage protein into tobacco, soybean glycinin genes are transformed into tobacco. To examine whether glycinin could be stably accumulated in endosperm tissue, the glycinin cDNA was transcriptionally fused to an endosperm-specific promotor of the rice storage protein glutelin gene and then introduced into tobacco genomic via Agrobacterium-mediated transformation. Consequently the glycinin gene was expressed in a seed-and developmentally-specific manner in transgenic tobacco seeds. Glycinin were targeted to vacuole-derived protein bodies in the endosperm tissue and highly accumulated in the matrix region of many transgenic plant (1-4% of total seed proteins). Synthesized glycinin was processed into mature form, and assembled into a hexamer in a similar manner as the glycinin in soybean seed. Modified glycinin, in which 4 contiguous methionine residues were inserted at the variable regions corresponding to the C - teminal regions of the acidic and basic polypeptides, were also found to be accumulated similarly as in the normal glycinin. There was no apparent difference in the expression level, processing and targeting to protein bodies, or accumulation level between normal and modified glycinin. glycinin.

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Delta 15 desaturase 유전자 억제에 의해 알파리놀렌산 함량이 낮은 들깨 육성 (Development of Perilla frutescens with Low Levels of Alpha-Linolenic Acid by Inhibition of a delta 15 desaturase Gene)

  • 김경환;이경렬;김정봉;이명희;이은경;김년희;이홍석;김송림;백정호;최인찬;지현소
    • 한국육종학회지
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    • 제50권4호
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    • pp.463-471
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    • 2018
  • 들깨는 우리나라에서 재배되어온 대표적인 유지작물로 지질의 함량 중 알파리놀렌산의 함량이 60% 전후로 불포화도가 높아서 산패가 쉽게 일어나는 문제가 있다. 알파리놀렌산은 소포체 유래의 ${\Delta}15$ desaturase (FAD3)와 엽록체 유래의 ${\Delta}15$ desaturase (FAD7)에 의해서 합성된다. 엽록체 유래의 FAD7 유전자 발현의 손상없이 종자의 알파리놀렌산 함량을 낮추기 위해 소포체 유래 FAD3 유전자를 RNAi기법을 이용하여 발현을 억제하였다. 재배종인 엽실들깨의 배축을 이용하여 아그로박테리움 매개 형질전환법으로 제초제(바스타) 저항성을 가진 형질전환체 17개체를 획득하였다. 형질전환체는 0.3% (v/v) 바스타제초제를 이용하여 선발하였으며 Northern blot으로 FAD3 유전자의 발현이 억제되는 것을 확인하였다. 온실에서 수확한 12개체 종자 지방산 함량을 분석한 결과 알파리놀렌산 함량이 10-20% 2개체, 30-40% 7개체, 대조구와 비슷한 60%대 3개체를 획득하였다. 형질전환체의 $T_2$ 종자의 분리비와 지방산 조성을 분석한 결과 동형접합체 계통에서 6-10% 알파리놀렌산 함량을 보였으며 이형접합계통은 20-26% 알파리놀렌산 함량을 나타내어 동형으로 고정시 FAD3 유전자 발현이 상당히 강력히 억제됨을 확인할 수 있었다. 들기름의 지방산 중 알파리놀렌산 함량의 감소는 들깨의 산패를 방지하고 감마리놀렌산 등의 고가의 건강기능성 지방산 생산에 활용할 수 있을 것으로 기대된다.