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1.
研究了利用粪产碱杆菌 (Alcaligenesfaecalis)发酵生产热凝胶的发酵条件 ,氮源是菌体生长的限制性底物 ,单纯地提高初始底物 (氮源 )浓度并不一定能促进细菌的生长和产物的合成。在分批发酵过程中 ,底物消耗导致培养环境pH的改变也是影响细菌进一步生长和产物合成的重要因素。通过增加培养基中初始氯化铵的浓度并同时控制发酵过程的pH条件 ,得到了较高的菌体浓度 ,热凝胶的合成水平也得到了显著提高。当培养基中NH4Cl浓度提高到3.6g/L时 ,菌体浓度达到72g/L ,热凝胶合成的产量可达 30.5g L ,比原来NH4Cl浓度为11g L时提高了51.7%。提高菌体浓度意味着需要提高溶氧水平来满足细菌的生长和代谢。初始氮源NH4Cl浓度的增加虽然能使菌体浓度得到提高 ,但发酵过程对溶氧的需求也相应增加 ,需要提高搅拌转速和通风以增加供氧水平。但高搅拌速率产生的高剪切力对热凝胶的凝胶性能将产生破坏作用 ,因此在发酵过程中需要综合考虑细菌培养密度对合成热凝胶产量和质量的影响。  相似文献   

2.
目的:研究了在不同阶段、不同的底物流加方式及底物浓度对菌体生长和热凝胶合成的影响,并对粪产碱杆菌WX—C12(Alcaligenes faecalis)发酵生产热凝胶的补料工艺进行了优化。方法:15L发酵罐发酵生产热凝胶,改变培养基中氮源、碳源浓度及流加方式,测定残氮、残糖、菌体浓度及热凝胶产量的变化,确定较优的补料工艺。结果:在菌体生长阶段用氨水控制pH在7.0,可使培养基中氮源浓度维持相对稳定状态,且NH,a初始浓度较低(O.5gtL)更适合菌体生长;热凝胶合成阶段采用葡萄糖连续流加优于间歇补加培养。菌体浓度为11.9g/L时,热凝胶产量最高(72g/L),产物得率Vp/s为78.8%;当菌体浓度再增加时,热凝胶产量反而下降。结论:确定了粪产碱杆菌发酵生产热凝胶的较优工艺条件,热凝胶产量最高为72g/L,比分批发酵28g/L增加了157%。  相似文献   

3.
氨水流加用于粪产碱杆菌热凝胶发酵   总被引:2,自引:0,他引:2  
热凝胶是粪产碱杆菌(Alcaligenes faecalis)在氮源限制条件下生成的水不溶性胞外多糖,分泌到胞外后就附着在菌体外壁,因此在细胞生长期提高生物量对促进热凝胶合成有重要意义。热凝胶分批发酵时, 起始NH4Cl浓度提高到3.6 g/L时能促进菌体生长和热凝胶合成,但是过量NH4Cl会抑制热凝胶合成,且生物量提高不是很明显。为了进一步提高菌体浓度, 在菌体生长期, 氨水取代NaOH溶液进行流加控制pH为7.0, 随后又用2 mol/L NaOH控制pH 5.6。实验表明, 氨水流加使菌体浓度大大提高,流加24 h使菌体浓度达到18.8 g/L。但是菌体浓度过高也会抑制热凝胶的合成,在氨水流加14 h时,菌体浓度在11.9 g/L左右, 热凝胶产量最高(72 g/L)。  相似文献   

4.
热凝胶是粪产碱杆菌(Alcaligenes faecalis)在氮源限制条件下生成的水不溶性胞外多糖,分泌到胞外后就附着在菌体外壁,因此在细胞生长期提高生物量对促进热凝胶合成有重要意义。热凝胶分批发酵时, 起始NH4Cl浓度提高到3.6 g/L时能促进菌体生长和热凝胶合成,但是过量NH4Cl会抑制热凝胶合成,且生物量提高不是很明显。为了进一步提高菌体浓度, 在菌体生长期, 氨水取代NaOH溶液进行流加控制pH为7.0, 随后又用2 mol/L NaOH控制pH 5.6。实验表明, 氨水流加使菌体浓度大大提高,流加24 h使菌体浓度达到18.8 g/L。但是菌体浓度过高也会抑制热凝胶的合成,在氨水流加14 h时,菌体浓度在11.9 g/L左右, 热凝胶产量最高(72 g/L)。  相似文献   

5.
聂实践  林伯荃   《微生物学通报》1990,17(6):324-328
本文研究了以丝状真菌D-100直接利用淀粉连续发酵的工艺条件。通过氮源试验,摇瓶生长曲线和发酵罐生长曲线的对比试验,发酵过程中淀粉糖化酶的定量检测,以及连续发酵过程中四个主要参数在三水平上的正交试验,确定了以0.1—0.2%NH_4NO_3为氮源,0.5%玉米粉为碳源,稀释速率D值为0.15,搅拌转速为200 r/min,pH 5.5的条件为最佳连续发酵条件。连续发酵结果是:以玉米淀粉为底物的菌体产率是37.5%,其菌体蛋白质含量38.5%,发酵罐效率是0.35g菌体干重/L·h,试验还证明该菌淀粉糖化酶的生成受还原糖的反馈控制,故发酵过程培养基中还原糖浓度衡定在一定值。培养基浓度增加时,超过玉米粉浓度1.25%以上其比生长速率不明显增加。  相似文献   

6.
在静置、搅拌及通气搅拌3种不同控氧条件下,分别用干酪乳杆菌Lactobacillus casei B3发酵及全细胞转化合成了苯乳酸,考察菌体生长、葡萄糖消耗及其发酵与转化合成苯乳酸的规律。结果表明:在转速100 r/min的搅拌条件下,L.casei B3发酵合成苯乳酸的浓度比静置发酵条件下提高了41.4%;但在空气流量2 L/min及转速100r/min的通气搅拌下,发酵合成苯乳酸的浓度较静置发酵时下降了60.3%;以8 g/L苯丙酮酸为底物,以相应静置、搅拌及通气搅拌条件下所得的菌体为全细胞催化剂转化合成苯乳酸,其摩尔转化率分别为67.2%、62.7%和35.9%。此结果说明:适度的搅拌促进了发酵过程的底物和产物传质,但充足或过量供氧会影响细胞内的转化合成酶系,不利于苯乳酸的全细胞转化合成。  相似文献   

7.
鼠李糖乳杆菌经实验室耐高糖高酸选育,能够在高糖浓度下高效高产L-乳酸。以酵母粉为氮源和生长因子,葡萄糖初始浓度分别为120 g/L和146 g/L,摇瓶培养120h,L-乳酸产量分别为104g/L和117.5g/L,L-乳酸得率分别为86.7%和80.5%。高葡萄糖浓度对菌的生长和乳酸发酵有一定的抑制。增加接种量,在高糖浓度发酵条件下,可以缩短发酵时间,但对增加乳酸产量效果不明显。乳酸浓度对鼠李糖乳杆菌生长和产酸有显著的影响。初始乳酸浓度到达70g/L以上时,鼠李糖乳杆菌基本不生长和产酸,葡萄糖消耗也被抑制。酵母粉是鼠李糖乳杆菌的优良氮源,使用其它被测试的氮源菌体生长和产酸都有一定程度的下降。用廉价的黄豆粉并补充微量维生素液,替代培养基中的酵母粉,可以使产酸浓度和碳源得率得以基本维持。  相似文献   

8.
【目的】采用响应面法优化丝状真菌Glarea lozoyensis SIIA-F1108发酵生产纽莫康定B_0培养基,提高发酵产量;通过氮源优化,降低发酵液菌体浓度,改善发酵过程的溶氧水平。【方法】采用Plackett-Burman设计和响应面法进行培养基优化,筛选出对纽莫康定B_0产量具有显著影响的因素;通过最陡爬坡实验及Box-Behnken设计,并利用Design-Expert软件对实验数据进行回归分析,得到优化的发酵培养基配方;通过对优化培养基中氮源组分进行全因子实验,最终得到高产量和低菌体浓度发酵培养基。【结果】实验数据表明:甘露醇、脯氨酸和葡萄糖对纽莫康定B_0产量影响最大;最佳浓度分别为甘露醇167.3 g/L、脯氨酸26.1 g/L、葡萄糖28.5 g/L。采用优化后的培养基进行摇瓶发酵,纽莫康定B_0产量达到了1 840 mg/L,较优化前提高了42%,与预测结果一致。用硫酸铵部分替换棉籽饼粉后,发酵液菌体浓度降低,在100 L发酵罐上对优化后的结果做了进一步的验证,纽莫康定B_0产量达到1 980 mg/L。【结论】模型预测值与实验值有较高吻合度,具备较高可信度和显著性,发酵产量提高了42%,响应面实验设计和分析方法能够有效地用于丝状真菌Glarea lozoyensis SIIA-F1108产纽莫康定B_0发酵培养基进行优化。通过调整培养基中的氮源组成,降低了发酵液菌体浓度,改善了发酵过程的溶氧水平。  相似文献   

9.
嗜热厌氧杆菌X514(Thermoanaerobactersp.X514)能同时发酵五碳糖、六碳糖并产出乙醇,是纤维素乙醇生产中最具潜力的菌株之一。单因子试验证明,酵母提取物中对X514乙醇发酵起决定性影响的组分为B族维生素,并进一步确定了B族维生素中对乙醇发酵有影响作用的6种维生素。结合培养基中的其他影响因子,应用Plackett-Burman试验设计方法,筛选出X514乙醇发酵的极大影响因子为NH4Cl、烟酸及硫胺素。随后用最陡爬坡试验确定了影响因子最佳取值区域,并利用响应面方法优化合成培养基。优化结果显示,当以5 g/L葡萄糖为底物时,在NH4Cl、烟酸及硫胺素的浓度分别为1.05 g/L、6.4 mg/L及7.0 mg/L的条件下,X514的乙醇产出浓度达到最优理论值34.46 mmol/L。试验验证该条件下乙醇产出浓度为33.78 mmol/L。试验值与理论值接近,原始矿物质培养基中乙醇产出浓度的5.1倍,并与添加5 g/L的酵母提取物培养基的乙醇产出浓度(34.67 mmol/L)相当。  相似文献   

10.
植物乳杆菌ZJ316生产细菌素   总被引:6,自引:0,他引:6  
[目的]研究植物乳杆菌ZJ316生长和产细菌素的最佳培养基成分和发酵条件,以提高该菌产plantaricin ZJ316的能力.[方法]改变培养基成份和发酵条件,考察不同氮源、碳源等培养基成分和不同的发酵温度等条件对ZJ316生长和产细菌素的影响.[结果]最佳培养基为MRS培养基;优化后的培养基配方为葡萄糖10 g/L,麦芽糖10 g/L,酵母提取物10 g/L,蛋白胨10 g/L,柠檬酸三铵2 g/L,吐温80为1 Ml/L,K2HPO4·3H2O 6 g/L,乙酸钠5 g/L,硫酸镁0.2 g/L,硫酸锰0.05 g/L.培养基初始Ph6.5,30℃静置培养24 h.[结论]通过培养基成分和发酵条件的优化,细菌素产量提高了2.3倍,为进一步研究和规模化生产奠定基础.  相似文献   

11.
溶氧及pH对产朊假丝酵母分批发酵生产谷胱甘肽的影响   总被引:16,自引:0,他引:16  
在7 L发酵罐中研究了溶氧和pH对产朊假丝酵母分批发酵生产谷胱甘肽的影响。结果表明,当葡萄糖浓度为30 g/L且通气量控制在5 L/min时,搅拌转速达到300 r/min即可满足细胞生长和谷胱甘肽合成对溶解氧的需求。不同pH控制方式对谷胱甘肽分批发酵的影响有较大差异。不控制pH时,细胞干重和谷胱甘肽产量比控制pH为55的发酵分别低27%和95%,且有50%的谷胱甘肽向胞外渗漏。研究了将pH控制在4.0、4.5、5.0、5.5、6.0和6.5的谷胱甘肽分批发酵过程,发现在pH 5.5时谷胱甘肽总产量最高。用前期研究建立的动力学模型模拟了不同pH (4.0~6.5)下的分批发酵过程,并从动力学角度解释了pH对细胞生长和谷胱甘肽合成的影响。  相似文献   

12.
To maximize the productivity of ribitol, which is an important starting material for the production of one expensive rare sugar, L-ribose, the effects of culture medium and agitation speed on cell growth as well as on the productivity of ribitol were thoroughly investigated in a 7 L fermentor. The maximum volumetric productivity, 0.322 g/L/h of ribitol, were obtained at an initial glucose concentration of 200 g/L in a batch culture. Based on the optimum glucose concentration, the ribitol yield conversed from glucose was up to 0.193 g/g when 1% yeast extract was used as a nitrogen source. When the agitation speed was maintained at 200 rpm, the ribitol concentration of 38.60 g/L was collected after 120 h of cultivation time. Additionally, the scheme of two-phase agitation and glucose infusion was employed. To begin, in the first 24 h of fermentation, a high agitation rate at 350 rpm and the initial glucose concentration of 50 g/L were applied, and the biomass concentration of 25.50 g/L was achieved at 36 h of incubation; whereas this value was observed until 60 h in the former batch fermentation methods. Then, in the second phase, with the agitation speed reduced to 150 rpm and the infusion amount of glucose controlled at 150 g/L, the yield of ribitol reached to 65.00 g/L in two-phase agitation fermentation and was 1.68 fold of that obtained in one-stage batch fermentation. To our knowledge, this study first demonstrates its significant effectiveness in improving ribitol production with the application of Trichosporonoides oedocephalis ATCC 16958.  相似文献   

13.
We sought an optimal pH profile to maximize curdlan production in a batch fermentation of Agrobacterium species. The optimal pH profile was calculated using a gradient iteration algorithm based on the minimum principle of Pontryagin. The model equations describing cell growth and curdlan production were developed as functions of pH, sucrose concentration, and ammonium concentration, since the specific rates of cell growth and curdlan production were highly influenced by those parameters. The pH profile provided the strategy to shift the culture pH from the optimal growth condition (pH 7.0) to the optimal production one (pH 5.5) at the time of ammonium exhaustion. By applying the optimal pH profile in the batch process, we obtained significant improvement in curdlan production (64 g L−1) compared to that of constant pH operation (36 g L−1). Received 24 November 1998/ Accepted in revised form 17 June 1999  相似文献   

14.
pH控制对热凝胶发酵的影响   总被引:1,自引:1,他引:0  
热凝胶 (Curdlan)是一种直链结构的 β 1,3 葡聚糖 ,由Alcaligenesfaecalisvar.myxogenes发酵生产而来 ,是一种新型的微生物胞外多糖[1 ] ,其分子量在 5 0万左右。热凝胶在中性条件下不溶于水 ,但能溶于碱溶液中。加热含有热凝胶的水浊液可形成两种类型的凝胶 ,一种是弹性较低的类似琼脂的可逆胶 ;另外一种是凝胶强度大、弹性好的热不可逆胶。由于热凝胶具有独特的热成胶性能 ,在食品工业 ,特别是高温制作的食品领域具有广阔的应用前景。热凝胶的胶体可以包容和控制药物的扩散 ,所以可以用来作为药物…  相似文献   

15.
Production of carotenoids by Rhodococcus opacus PD630 is reported. A modified mineral salt medium formulated with glycerol as an inexpensive carbon source was used for the fermentation. Ammonium acetate was the nitrogen source. A dry cell mass concentration of nearly 5.4 g/L could be produced in shake flasks with a carotenoid concentration of 0.54 mg/L. In batch culture in a 5 L bioreactor, without pH control, the maximum dry biomass concentration was ~30 % lower than in shake flasks and the carotenoids concentration was 0.09 mg/L. Both the biomass concentration and the carotenoids concentration could be raised using a fed-batch operation with a feed mixture of ammonium acetate and acetic acid. With this strategy, the final biomass concentration was 8.2 g/L and the carotenoids concentration was 0.20 mg/L in a 10-day fermentation. A control of pH proved to be unnecessary for maximizing the production of carotenoids in this fermentation.  相似文献   

16.
The addition of a limited concentration of yeast extract to a minimal salt medium (MSM) enhanced cell growth and increased the production of curdlan whereas nitrogenlimitation was found to be essential for the higher production of curdlan byAgrobacterium sp. ATCC 31749. As the amount of the inoculum increased, the cell growth as well as the production of curdlan also increased in the MSM without a nitrogen source. The cell growth and production of curdlan increased as the initial pH of the medium decreased as low as 5.0. The conversion rate and concentration of curdlan from 2% (w/v) glucose in the MSM with concentrated cells under nitrogen deletion was 67% and 13.4 g/L, respectively. The highest conversion rate of curdlan under the conditions optimized in this study was 71% when the glucose concentration was 1% (w/v).  相似文献   

17.
Uracil, acting as a precursor of UDP-glucose, served as an activator on the production of curdlan with Agrobacterium sp. (ATCC 31750). The time of adding uracil was important to improve curdlan production. When uracil was added after ammonium depletion (at 26 h), it was used as a nitrogen source for cell growth. Although the cell concentration increased, the curdlan production was decreased. If uracil was added at 46 h, then uracil was degraded slowly but still activated curdlan production. With the addition of both sucrose (200 g) and uracil (1.5 g), the curdlan production was increased up to 93 g l–1 after 160 h fermentation.  相似文献   

18.
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