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1.
【目的】以标志链带藻(Desmodesmus insignis)为实验材料,研究不同氮源及其浓度对该藻生长、总脂和淀粉(碳水化合物)含量的影响,为该藻在生物能源方面的应用提供一定的理论依据。【方法】以硝酸钠、碳酸氢铵或尿素为氮源,5个氮浓度(3、6、9、12和18 mmol/L)的BG-11培养基培养标志链带藻,采用干重法测定生物质浓度、重量法测定总脂、苯酚-硫酸法测定、总碳水化合物和淀粉的含量。【结果】标志链带藻在3种氮源下均能很好的生长。最高油脂含量出现在3 mmol/L硝酸钠实验组,达到32.61%(d.w)。当18 mmol/L碳酸氢铵作为氮源时,总碳水化合物与淀粉的含量以及产率都达到最高,分别为56.54%(d.w)和55.33%(d.w)、0.24和0.23 g/(L·d)。以尿素为氮源时,其生物质浓度和各组分含量与其它氮源实验组差别不大,均有利于该藻的生长及各生化组分含量的积累。【结论】以该藻种生产生物能源的成本等综合考虑,以18 mmol/L碳酸氢铵和尿素为氮源培养标志链带藻最优。  相似文献   

2.
一株富含碳水化合物微藻的筛选和分子鉴定   总被引:1,自引:0,他引:1  
微藻生长快,单位体积碳水化合物产率高,是发酵生产生物乙醇的理想原料。本研究采用通气培养系统,对初筛得到的10株微藻进行分批培养,以单位体积碳水化合物产率为主要指标,筛选富含碳水化合物的优良藻种。研究结果显示:10株微藻的生物质干重、可溶性糖含量、碳水化合物含量和碳水化合物产率变化范围分别在0.922~1.965 g/L、4.42%~19.23%、26.8%~60.9% 和36.17~149.67 mg·L-1·d-1之间,其中藻株GZ-57的碳水化合物产率和可溶糖含量最高,分别为149.67 mg·L-1·d-1 和19.23%,表明藻株GZ-57是一株具有培养潜力的高产碳水化合物微藻。进一步对其进行形态特征及基于18S rDNA、ITS序列的分子系统学分析,发现藻株GZ-57与栅藻科(Scenedesmaceae)链带藻属(Desmodesmus)的极大链带藻(Desmodesmus maximus)亲缘关系较近,因此将其鉴定为极大链带藻(Desmodesmus maximus)。  相似文献   

3.
研究了碳源与氮源对单针藻Monoraphidium sp. FXY-10异养培养的影响。以BG-11为基础培养基,通过添加不同类型、浓度梯度碳源和氮源,比较分析微藻生物量、油脂积累以及脂肪酸组成。结果表明,以葡萄糖作碳源,硝酸钠为氮源,微藻细胞积累的油脂是理想的生物柴油制备原料。硝酸钠浓度分别为1.00、3.00和5.00 g/L时,对油脂产量影响不显著(P>0.05)。葡萄糖浓度为10.00 g/L,硝酸钠为氮源油脂产量达到实验最高值0.84 g/L,其油脂脂肪酸组成主要由C16:0和C18:1等短链饱和脂肪酸和单不饱和脂肪酸组成,不饱和度值(DU)为61.98,相对偏低。  相似文献   

4.
以真眼点藻纲8株微藻(类波氏真眼点藻(Eustigmatos cf. polyphem)、大真眼点藻(Eustigmatos magnus)、波氏真眼点藻(Eustigmatos polyphem)、魏氏真眼点藻(Eustigmatos vischeri)、斧形魏氏藻(Vischeria helvetica)、点状魏氏藻(Vischeria punctata)、星形魏氏藻(Vischeria stellata)和眼点拟微绿球藻(Nan-nochloropsis oculata))为研究材料, 用3种氮源(硝酸钠、碳酸氢铵或尿素)和4种氮浓度(18、9、6和3 mmol) 在改良的BG-11培养基中对藻细胞进行培养。比较分析这8株微藻在不同培养条件下的藻液pH、生物量、油脂含量、脂肪酸组成的差异, 从而筛选出适合该类微藻生长和油脂积累的最适氮源与最佳氮浓度。结果表明, 这8株微藻均能在3种氮源中生长, 但是随着培养时间延长, 以碳酸氢铵和尿素为氮源时藻液pH逐渐降低, 其变化范围为5.0—6.0, 而以硝酸钠为氮源时藻液pH保持在7.0—8.0, 变化不大。当以尿素为氮源培养时, 能获得较高的生物量, 但是不同藻株在不同尿素浓度时达到最高生物量。最高生物量是波氏真眼点藻(E. polyphem)在9 mmol时达到, 为10.96 g/L。总脂含量分析发现, 在低氮浓度下均能促进8株微藻油脂的积累, 真眼点藻属中的魏氏真眼点藻(E. vischeri)在8株藻中获得最高油脂含量, 达到59.24%。进一步对脂肪酸分析发现, 8株微藻总脂肪酸含量为细胞干重的50%—58%, 主要脂肪酸组成为豆蔻酸(C14鲶0)、棕榈酸(C16鲶0)、棕榈油酸(C16鲶1)、油酸(C18鲶1)和二十碳五烯酸(C20鲶5), 其中拟微绿球藻(N. oculata)细胞中棕榈酸的含量最高占总脂肪酸50%左右; 其他7株微藻细胞中棕榈油酸的含量较高, 其占总脂肪酸含量范围在40%—60%。8株微藻均表现出较高的生物量与油脂积累能力, 以尿素为氮源, 氮浓度为6 mmol时更有利于该类微藻生物量和油脂的积累。总体来说, 真眼点藻纲的微藻是一类极具潜力适合于微藻生物燃料生产的微藻, 而真眼点藻属藻株表现更为明显的优势。  相似文献   

5.
【目的】筛选具有较快生长速率及较强产油能力的微藻,探究所获得微藻的生理生化性能及不同培养方式对其生物量、产油能力、碳消耗等生长特性的影响与藻种对pH的适应能力。【方法】通过磷酸香草醛测定法及尼罗红染色对微藻进行初筛复筛,通过设置光合自养、异养和混养等3种培养方式,并采用气质联用等方法,研究不同培养方式对所获微藻生长特性、所产油脂脂肪酸组成以及碳代谢等方面的影响。【结果】筛选出两株产油能力较强的藻株H、Z_8,其油脂产量分别可达1.14±0.05 g/L和1.33±0.10 g/L,经形态观察和分子生物学鉴定初步表明藻株H属布朗单针藻(Chlorolobion braunii)、藻株Z_8属链带藻(Desmodesmus intermedius)。构建了不同培养方式下微藻动力学模型,H、Z_8属于生长偶联型。当培养环境的pH处于6.0–9.0,对藻株H、Z_8的总脂量与生物量无明显差异(P0.05)。【结论】筛选获得的藻株H、Z_8中C16与C18脂肪酸占总脂肪酸的比率能达到90%以上。藻种在混养条件下生物量积累优于异养,但异养条件下更加有利于油脂的积累,且H、Z_8均具有较为宽泛的pH适应能力,是具有一定产业化应用潜力的优良产油藻株。  相似文献   

6.
为了筛选具有产油能力的微藻,从自然界水体中分离出14株微藻,根据形态特点对它们进行了初步鉴定。对其中12株微藻在自养和异养条件下的生长特性和产油性能进行了比较。通过微藻的生长曲线,生物量和油脂含量等指标,从中筛选出高产藻株并对该藻株进行了分子生物学鉴定。结果表明:藻株Y06在12种微藻中的油脂产量和产率最高,经18S rDNA鉴定确定为栅藻(Scenedesmus abundans)。藻株Y06在自养条件下的油脂产率为9.40 mg/(L.d),在异养条件下的油脂产率为201.29 mg/(L.d)。  相似文献   

7.
异养细胞种子/光自养培养方法是一种可异养培养的能源微藻培养的有效方法,但已有文献尚未从工艺优化角度考察其发展潜力。为了获得较高细胞密度的用于光自养培养的种子和提高光自养培养的细胞密度与油脂产率,对异养细胞种子/光自养培养的培养基和培养条件进行了优化。结果表明,采用优化后的培养基,椭圆小球藻在摇瓶中异养培养的最高藻细胞密度可达11.04 g/L,比在初始培养基条件下提高了28.0%,在5 L发酵罐中异养培养的藻细胞密度达到73.89 g/L;在2 L柱式光生物反应器中光自养培养的藻细胞密度、油脂含量和油脂产率分别达1.62 g/L、36.34%和6.1 mg/(L·h),油脂成分主要为含C16-C18碳链的脂肪酸,是制备生物柴油的理想原料。经过优化,异养细胞种子/光自养培养这一方法能够显著地提高椭圆小球藻产油脂的能力,这进一步表明异养细胞种子/光自养培养方法有望成为可异养的能源微藻的高效培养方式。  相似文献   

8.
高产油小球藻的筛选及其油脂分析   总被引:3,自引:0,他引:3  
小球藻广泛分布于各种生境,特别是淡水环境中,适应性强。其同化产物主要是淀粉,但在环境胁迫条件下可显著积累中性脂,其脂肪酸类型主要为C16和C18,适合作为生物柴油的原料。我们从中国部分地区水体中分离纯化到若干株小球藻,通过薄层层析比较分析了21株产油小球藻的油脂含量,筛选到一株三酰基甘油含量较高的藻株Chlorella sp.NMX37N。其适宜生长温区为15—35℃,在25℃时生长速率最快,比生长速率为0.53/d,生长的最适光强为250μmol photons/(m2.s)。批量培养实验显示,藻细胞的三酰基甘油含量随培养时间延长而增加,并在培养的稳定期达到最大值,此时培养液中氮基本被耗尽。在批量培养条件下培养Chlorella sp.NMX37N约40d,藻细胞中总脂含量可达到33%左右,与此相比通过两步培养方式,将培养至对数后期(约20d)的藻细胞缺氮处理48h后,得到的总脂产率相当。通过两步培养方式可以大大缩短培养时间,使得该藻细胞快速有效积累油脂。另外,气相色谱分析显示,该藻的总脂和三酰基甘油的脂肪酸均以C16∶0和C18∶2为主,占总脂肪酸的70%以上,且不含C20以上的长链脂肪酸,可以作为优质的生物柴油原料。  相似文献   

9.
微藻油脂不仅可以作为功能油脂,同时也是生产生物柴油的重要原料之一。为解决微藻生长与油脂积累之间的矛盾,利用藻菌共培养技术在缺氮条件下将无菌小球藻与细菌以不同初始比例进行共培养,通过测定藻细胞生物量、油脂含量和脂肪酸比例等来研究藻菌共培养对小球藻生长和油脂积累的影响。结果表明,在小球藻与固氮菌B2. 3 70∶1(V/V)共培养体系中,小球藻的生物量和油脂含量较同样条件下单独培养小球藻有了显著提高。其生物量最高可达1. 68g/L、总脂含量为45. 2%、总脂产率为75. 94 mg/(L·d)、中性脂含量为23. 0%及中性脂产率为38. 65mg/(L·d),其生物量和油脂含量分别较单独小球藻培养时提高了66. 3%和47. 7%。同时细菌的加入显著提高了藻细胞内C18∶1脂肪酸的比例。结论表明,通过藻菌共培养技术能够有效提高微藻生物油脂的质量和产量,具有较好的实际利用价值。  相似文献   

10.
以分离获得的一株新型自絮凝凯式拟小球藻(Parachlorella kessleri) F01为材料, 自养单步培养法为对照, 设计两步培养法, 研究阶段Ⅰ添加葡萄糖兼养和阶段Ⅱ营养元素限制处理对藻细胞油脂积累及絮凝性能的影响。分别采用血球板计数法、干重法、脂染色法测定藻细胞浓度、生物量和总脂含量, 三维荧光光谱分析藻细胞胞外聚合物(Extracellular polymeric substances, EPS)组分和含量。结果表明: (1)两步培养法阶段Ⅰ兼养培养最适葡萄糖浓度为10 g/L, 10d收获时藻细胞油脂产率204.25 mg/(L·d), 是对照组的16.20倍; 静置12h的藻细胞自絮凝率96.1%, 与对照组差异不显著。(2)在阶段Ⅰ基础上, 阶段Ⅱ进行不同元素限制处理培养1d, 低糖组和低糖低氮协同处理组的藻细胞油脂产率分别为242.64和227.61 mg/(L·d), 分别比阶段Ⅰ增加18.8%和11.4%; 培养4d, 低糖、无糖、低氮和低糖低氮协同4种处理组油脂产量显著高于对照组和阶段Ⅰ, 其中低糖低氮协同处理组最高, 达到3.08 g/L, 是对照组的23.69倍, 比阶段Ⅰ增加了51.0%, 而且阶段Ⅱ中4种处理组藻细胞的自絮凝率基本在85.0%以上, 能满足收获要求。(3) F01藻细胞EPS中蛋白类色氨酸物质含量高低与藻细胞自絮凝率大小密切相关, 不同培养处理通过改变藻细胞EPS中蛋白类色氨酸物质的含量而影响其絮凝性能。自絮凝凯式拟小球藻F01是生物柴油生产的优良潜力藻种, 两步培养法能大幅提升其产油效益。产油微藻的自絮凝优势与两步培养法结合, 有望成为解决微藻生物柴油生产技术瓶颈的关键突破口。  相似文献   

11.
Feng P  Deng Z  Hu Z  Fan L 《Bioresource technology》2011,102(22):10577-10584
Culturing microalgae using natural sunlight is an effective way to reduce the cost of microalgae-based biodiesel production. In order to evaluate the feasibility of culturing Chlorella zofingiensis outdoors for biodiesel production, effects of nitrogen limitation and initial cell concentration on growth and lipid accumulation of this alga were investigated in 60 L flat plate photobioreactors outdoors. The highest μmax and biomass productivity obtained was 0.994 day(-1) and 58.4 mg L(-1)day(-1), respectively. The lipid content was much higher (54.5% of dry weight) under nitrogen limiting condition than under nitrogen sufficient condition (27.3%). With the increasing initial cell concentrations, the lipid contents declined, while lipid concentrations and productivities increased. The highest lipid content, lipid concentration, and lipid productivity obtained was 54.5%, 536 mg L(-1) and 22.3 mg L(-1)day(-1), respectively. This study demonstrated that it was possible to culture C. zofingiensis under outdoor conditions for producing biodiesel feedstock.  相似文献   

12.
Lipid accumulation is critical in the production of biodiesel from microalgae. However, little work has been done on the assessment of lipid accumulation during nitrogen stress in large research-scale outdoor raceways during different seasons; most values for lipid accumulation are assumptions based on work completed in laboratory settings or outdoor photobioreactors. This study focused on the use of raceway ponds operated in batch cultivation mode with an area of 30.37 m2 to determine the impacts of nitrate-nitrogen concentration and cultivation depth on the ability of Scenedesmus acutus strain LB 0414 to accumulate lipids. A concentration of less than 60 mg N-NO3 ??L?1 was required for removal of nitrogen in the cultivation medium within 8 days to stimulate lipid accumulation and increase lipid productivity. When nitrate concentrations were increased to prevent nitrogen depletion, lipid productivity decreased, which demonstrates that stressing is needed to induce lipid accumulation for increased lipid productivity. Additionally, decreasing cultivation depth below 9 cm, compared to raceways operated at a depth of 20–24 cm, increased lipid productivity by 62 % in December 2014 and 38 % in February 2015. More desirable environmental conditions, mainly increased sunlight and temperature, in February, increased biodiesel productivity for all raceways and account for the decrease in productivity differences. This research highlights increased lipid productivity found by reducing cultivation depth and nitrogen concentrations in outdoor raceways and provides insight into the optimal conditions for large-scale biodiesel production.  相似文献   

13.
The nitrogenous resource used to promote algal growth has cost implications for mass culture processes. The present study therefore aimed to determine the effect of different nitrogenous resources (nitrate, ammonium and urea) on various performance parameters (growth, final cell yield, pigmentation, lipid yield and cellular and sub‐cellular characteristics) in Isochrysis galbana. Growth rate was unaffected by nitrogenous resource, but the final cellular yield in the nitrate and urea treatments far exceeded that evident in the ammonium treatments. The reduced cell yield in ammonium treatments and the earlier onset of the stationary phase was brought about by nitrogen‐starvation due to an increase in pH and resultant ammonia volatilization. This starvation initiated an early onset of lipid accumulation, chlorophyll depletion and an increase in the carotenoid to chlorophyll ratio relative to the other nitrogen (N) source treatments. Hence, in spite of being potentially the preferred source of N by algae (due to its reduced state), ammonium‐nitrogen is undesirable for mass culture. The performance parameters of Isochrysis grown in urea (an organic N source) and nitrate (an inorganic N source) were similar, but lipid accrued earlier in cells grown in medium supplemented with urea. This is advantageous for lipid acquisition for the production of biodiesel since it would reduce the duration of photobioreactor runs. Urea is easily available and considerably cheaper than all the other N sources tested and is thus recommended as the nitrogenous resource for large‐scale culture of I. galbana for biodiesel production.  相似文献   

14.
The present study reports evaluation of an indigenous microalgal isolate Chlorella sp. FC2 IITG as a potential candidate for biodiesel production. Characterization of the strain was performed under photoautotrophic, heterotrophic, and mixotrophic cultivation conditions. Further, an open-pond cultivation of the strain under outdoor conditions was demonstrated to evaluate growth performance and lipid productivity under fluctuating environmental parameters and in the presence of potential contaminants. The key findings were: (1) the difference in cultivation conditions resulted in significant variation in the biomass productivity (73–114 mg l?1 day?1) and total lipid productivity (35.02–50.42 mg l?1 day?1) of the strain; (2) nitrate and phosphate starvation were found to be the triggers for lipid accumulation in the cell mass; (3) open-pond cultivation of the strain under outdoor conditions resulted in biomass productivity of 44 mg l?1 day?1 and total lipid productivity of 10.7 mg l?1 day?1; (4) a maximum detectable bacterial contamination of 7 % of the total number of cells was recorded in an open-pond system; and (5) fatty acid profiling revealed abundance of palmitic acid (C16:0), oleic acid (C18:1) and linoleic acid (C18:2), which are considered to be the key elements for suitable quality biodiesel.  相似文献   

15.
We determined the effects of cultivation conditions (nitrogen source, salinity, light intensity, temperature) on the composition of polyunsaturated fatty acids (PUFAs) and the production of eicosapentaenoic acid (EPA) in the laboratory cultured eustigmatophycean microalga, Trachydiscus minutus. T. minutus was capable of utilizing all nitrogen compounds tested (potassium nitrate, urea, ammonium nitrate, ammonium carbonate) with no differences in growth and only minor differences in fatty acid (FA) compositions. Ammonium carbonate was the least appropriate for lipid content and EPA production, while urea was as suitable as nitrates. Salinity (0.2 % NaCl) slightly stimulated EPA content and inhibited growth. Increasing salinity had a marked inhibitory effect on growth and PUFA composition; salinity at or above 0.8 % NaCl was lethal. Both light intensity and temperature had a distinct effect on growth and FA composition. The microalga grew best at light intensities of 470–1,070 μmol photons m?2 s?1 compared to 100 μmol photons m?2 s?1, and at 28 °C; sub-optimal temperatures (20, 33 °C) strongly inhibited growth. Saturated fatty acids increased with light intensity and temperature, whereas the reverse trend was found for PUFAs. Although the highest level of EPA (as a proportion of total FAs) was achieved at a light intensity of 100 μmol photons m?2 s?1 (51.1?± 2.8 %) and a temperature of 20 °C (50.9?±?0.8 %), the highest EPA productivity of about 30 mg L?1?day?1 was found in microalgae grown at higher light intensities, at 28 °C. Overall, for overproduction of EPA in microalgae, we propose that outdoor cultivation be used under conditions of a temperate climatic zone in summer, using urea as a nitrogen source.  相似文献   

16.
Microalgal lipids are the oils of future for sustainable biodiesel production. However, relatively high production costs due to low lipid productivity have been one of the major obstacles impeding their commercial production. We studied the effects of nitrogen sources and their concentrations on cell growth and lipid accumulation of Neochloris oleoabundans, one of the most promising oil-rich microalgal species. While the highest lipid cell content of 0.40 g/g was obtained at the lowest sodium nitrate concentration (3 mM), a remarkable lipid productivity of 0.133 g l−1 day−1 was achieved at 5 mM with a lipid cell content of 0.34 g/g and a biomass productivity of 0.40 g l−1 day−1. The highest biomass productivity was obtained at 10 mM sodium nitrate, with a biomass concentration of 3.2 g/l and a biomass productivity of 0.63 g l−1 day−1. It was observed that cell growth continued after the exhaustion of external nitrogen pool, hypothetically supported by the consumption of intracellular nitrogen pools such as chlorophyll molecules. The relationship among nitrate depletion, cell growth, lipid cell content, and cell chlorophyll content are discussed.  相似文献   

17.
Microalgae are an alternative and sustainable source of lipids that can be used as a feedstock for biodiesel production. Nitrate is a good nitrogen source for many microalgae and affects biomass and lipid yields of microalgae. In this study, the effect of nitrate on cell growth and lipid production and composition in Monoraphidium contortum, Tetraselmis suecica, and Chlorella minutissima was investigated. Nitrate affected the production of biomass and the production and composition of lipids of the three microalgae tested. Increasing the nitrate concentration in the culture medium resulted in increased biomass production and higher biomass productivity. Furthermore, increasing the nitrate concentration resulted in a reduction in lipid content and productivity in M. contortum; however, the opposite effect was observed in T. suecica and C. minutissima cultures. C. minutissima and M. contortum lipids contain high levels of oleic acid, with values ranging from 26 to 45.7% and 36.4 to 40.1%, respectively. The data suggest that because of its high lipid productivity (13.79 mg L?1 d?1) and high oleic acid productivity (3.78 mg L?1 d?1), Chlorella minutissima is a potential candidate for the production of high quality biodiesel.  相似文献   

18.
The present investigation is concerned with the optimization of nitrogen for enhanced citric acid productivity by a 2-deoxy D-glucose resistant culture of Aspergillus niger NGd-280 in a 15 l stirred tank bioreactor. Nutrients, especially nitrogen source have a marked influence on citrate productivity because it is an essential constituent of basal cell proteins. Citric acid has been known to be produced when the nitrogen source was the limiting factor. Ammonium nitrate was employed as a nitrogen source in the present study and batch culture experiments were carried out under various concentrations of ammonium nitrate. Specific growth rate was decreased and the biosynthesis of citric acid was delayed at higher concentrations of ammonium nitrate. Specific citric acid production rate was the highest when intracellular ammonium ion concentration was between 2.0 and 3.0 mmol g(-1) cells. Citrate production was however, stopped when intracellular ammonium ion concentration decreased below 1.0 mmol g(-1) cell.  相似文献   

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