자외선에 의해 유도된 Chlorella vulgaris 돌연변이 균주의 대량 생산 시스템에서의 평가 The Evaluation of UV-induced Mutation of the Microalgae, Chlorella vulgaris in Mass Production Systems원문보기
미세조류 Chlorella vulgaris는 바이오 디젤 생산을 위한 중요한 대체원료 중 하나로 간주되어 왔으나, 이러한 미생물의 산업적 적용은 낮은 바이오 매스와 지질 생산성에 의해 제약을 받아왔다. 따라서 이러한 문제를 극복하기 위해 본 연구는 자외선을 이용한 무작위 돌연변이 유발 기술을 통해 높은 지질 및 바이오 매스 생산성을 가지는 C. vulgaris 균주를 분리하고 그 특성을 규명하였으며, 두 가지 유형의 대량 생산 시스템을 이용하여 바이오 매스 및 지질 함량의 산출량을 비교하였다. 분리된 돌연변이 균주 중, 특히 실험실 조건에서 UBM1-10으로 명명된 돌연변이 균주는 야생형 균주에 비해 약 1.5배 높은 세포 수율 및 지질 함량을 보였다. 이러한 결과를 바탕으로 UBM1-10을 선택하여 TBPR (tubular photobioreactor)과 OPR (open pond type reactor)의 두 가지 유형의 반응기를 사용하여 실외 배양 조건에서 배양하였다. 그 결과 TBPR에서 재배된 돌연변이 균주의 세포 수율은($2.6g\;l^{-1}$) OPR에서 배양된 균주의 세포 수율($0.5g\;l^{-1}$)과 비교하였을 때 약 5배 이상의 높은 세포 수율을 나타내었으며, 대량 배양 후, UBM1-10 및 모 균주의 조 지방 함량 및 조성 등에 대해 추가로 조사를 실시하였다. 그 결과 C. vulagris UBM1-10균주의 지질함량(0.3% w/w)이 모 균주의 지질함량(0.1%)에 비해 약 3배 이상의 조 지방 함량을 보유함을 확인하였다. 따라서 이 연구는 바이오 디젤 생산 자원으로서 C. vulgaris의 경제적 잠재성이 photoreactor type의 선택 및 전략적 돌연변이 분리 기술을 통해 증가 될 수 있음을 보여 주었다.
미세조류 Chlorella vulgaris는 바이오 디젤 생산을 위한 중요한 대체원료 중 하나로 간주되어 왔으나, 이러한 미생물의 산업적 적용은 낮은 바이오 매스와 지질 생산성에 의해 제약을 받아왔다. 따라서 이러한 문제를 극복하기 위해 본 연구는 자외선을 이용한 무작위 돌연변이 유발 기술을 통해 높은 지질 및 바이오 매스 생산성을 가지는 C. vulgaris 균주를 분리하고 그 특성을 규명하였으며, 두 가지 유형의 대량 생산 시스템을 이용하여 바이오 매스 및 지질 함량의 산출량을 비교하였다. 분리된 돌연변이 균주 중, 특히 실험실 조건에서 UBM1-10으로 명명된 돌연변이 균주는 야생형 균주에 비해 약 1.5배 높은 세포 수율 및 지질 함량을 보였다. 이러한 결과를 바탕으로 UBM1-10을 선택하여 TBPR (tubular photobioreactor)과 OPR (open pond type reactor)의 두 가지 유형의 반응기를 사용하여 실외 배양 조건에서 배양하였다. 그 결과 TBPR에서 재배된 돌연변이 균주의 세포 수율은($2.6g\;l^{-1}$) OPR에서 배양된 균주의 세포 수율($0.5g\;l^{-1}$)과 비교하였을 때 약 5배 이상의 높은 세포 수율을 나타내었으며, 대량 배양 후, UBM1-10 및 모 균주의 조 지방 함량 및 조성 등에 대해 추가로 조사를 실시하였다. 그 결과 C. vulagris UBM1-10균주의 지질함량(0.3% w/w)이 모 균주의 지질함량(0.1%)에 비해 약 3배 이상의 조 지방 함량을 보유함을 확인하였다. 따라서 이 연구는 바이오 디젤 생산 자원으로서 C. vulgaris의 경제적 잠재성이 photoreactor type의 선택 및 전략적 돌연변이 분리 기술을 통해 증가 될 수 있음을 보여 주었다.
The microalgae Chlorella vulgaris has been considered an important alternative resource for biodiesel production. However, its industrial-scale production has been constrained by the low productivity of the biomass and lipid. To overcome this problem, we isolated and characterized a potentially econ...
The microalgae Chlorella vulgaris has been considered an important alternative resource for biodiesel production. However, its industrial-scale production has been constrained by the low productivity of the biomass and lipid. To overcome this problem, we isolated and characterized a potentially economical oleaginous strain of C. vulgaris via the random mutagenesis technique using UV irradiation. Two types of mass production systems were compared for their yield of biomass and lipid content. Among the several putatively oleaginous strains that were isolated, the particular mutant strain designated as UBM1-10 in the laboratory showed an approximately 1.5-fold higher cell yield and lipid content than those from the wild type. Based on these results, UBM1-10 was selected and cultivated under outdoor conditions using two different types of reactors, a tubular-type photobioreactor (TBPR) and an open pond-type reactor (OPR). The results indicated that the mutant strain cultivated in the TBPR showed more than 5 times higher cell concentrations ($2.6g\;l^{-1}$) as compared to that from the strain cultured in the OPR ($0.5g\;l^{-1}$). After the mass cultivation, the cells of UBM1-10 and the parental strain were further investigated for crude lipid content and composition. The results indicate a 3-fold higher crude lipid content from UBM1-10 (0.3%, w/w) as compared to that from the parent strain (0.1% w/w). Therefore, this study demonstrated that the economic potential of C. vulgaris as a biodiesel production resource can be increased with the use of a photoreactor type as well as the strategic mutant isolation technique.
The microalgae Chlorella vulgaris has been considered an important alternative resource for biodiesel production. However, its industrial-scale production has been constrained by the low productivity of the biomass and lipid. To overcome this problem, we isolated and characterized a potentially economical oleaginous strain of C. vulgaris via the random mutagenesis technique using UV irradiation. Two types of mass production systems were compared for their yield of biomass and lipid content. Among the several putatively oleaginous strains that were isolated, the particular mutant strain designated as UBM1-10 in the laboratory showed an approximately 1.5-fold higher cell yield and lipid content than those from the wild type. Based on these results, UBM1-10 was selected and cultivated under outdoor conditions using two different types of reactors, a tubular-type photobioreactor (TBPR) and an open pond-type reactor (OPR). The results indicated that the mutant strain cultivated in the TBPR showed more than 5 times higher cell concentrations ($2.6g\;l^{-1}$) as compared to that from the strain cultured in the OPR ($0.5g\;l^{-1}$). After the mass cultivation, the cells of UBM1-10 and the parental strain were further investigated for crude lipid content and composition. The results indicate a 3-fold higher crude lipid content from UBM1-10 (0.3%, w/w) as compared to that from the parent strain (0.1% w/w). Therefore, this study demonstrated that the economic potential of C. vulgaris as a biodiesel production resource can be increased with the use of a photoreactor type as well as the strategic mutant isolation technique.
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가설 설정
a: Both strains cultured using open pond reactor (OPR) with 30 ton capacity under outdoor conditions.
b: Both strains cultured using tubular type reactor with 20 ton capacity under outdoor conditions.
c: Both strains cultured using F/2 media under lab conditons without CO2 supply.
제안 방법
vulgaris UBM1-10. The experiments were carried out at either tubular type phothoreactor (TBPR) with 20 ton capacity or open pond type reactor (OPR) with 30 ton capacity under outdoor conditions. Symbols: (◆), the wild type strain of C.
Thus, in this study, we also attempted to isolate economically potential high oleaginous strain of C. vulgaris for the comparison of two types of mass production via the random mutagenesis technique using UV irradiation.
대상 데이터
7"E). The CO2 gas (Ssangyong Synthesis Gas, Korea) was supplied into both systems at 0.2 l min-1 during cultivation using air-blowers with one horse power.
The microalgae Chlorella vulgaris (KMMCC 191) used in this study was purchased from the Korean Marine Microalgae Culture Center, Busan, Korea. The lab scale cultivation was carried out in 250 ml conical flasks with a working volume of 100 ml volume using F/2 medium [25].
성능/효과
The mass cultivated cells of the mutant strain UBM1-10 from TBPR were harvested for the biomass composition analysis. The analysis results indicated that UBM1-10 strain showed a roughly threefold increase in crude fat content compared to that from the wild-type strain (Table 3). Interestingly, the results from the lipid analysis indicate that the concentration of docosahexaenoic acid (DHA, 0.
후속연구
This indicated that further researches are required to improve such important parameters for biofuel feedstock production such as industrial medium development and more sophisticated massscale production systems. In this respect, this study will possibly contribute to useful data for the industrial production of biofuel feedstock using microalgae with a consideration for mass culturing technologies.
Although their biomass and lipid productivities were quite low as compared to others that previously reported. This indicated that further researches are required to improve such important parameters for biofuel feedstock production such as industrial medium development and more sophisticated massscale production systems. In this respect, this study will possibly contribute to useful data for the industrial production of biofuel feedstock using microalgae with a consideration for mass culturing technologies.
Therefore, it was difficult to conclude which method would be the best method as a suitable system for industrial application. This would require a further investigation on life cycle assessment with these economical parameters.
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