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1.
高压静电场对贯叶连翘种子休眠破除及药用成分的影响   总被引:1,自引:0,他引:1  
将高压静电场(HVEF)技术应用于贯叶连翘种子休眠破除及组培苗培养,结果显示,贯叶连翘种子在静电场(100 kv/m)中处理1 h,其发芽势(SPO)和发芽率(SPT)是对照组(无静电处理)的5.69倍和2.45倍;贯叶连翘组培苗在静电场(135 kv/m~150 kv/m)中处理1 h,其药用成分总金丝桃素含量和贯叶金丝桃素含量是对照组的1.35~1.53倍;静电场(150 kv/m)处理后,POD活性是其对照的1.30倍.研究表明,一定强度的静电场作用,能有效提高贯叶连翘种子发芽率,促进总金丝桃素和贯叶金丝桃素代谢含量.  相似文献   

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贯叶金丝桃组织培养的研究   总被引:1,自引:0,他引:1  
分别以甘肃天水贯叶金丝桃的幼根、幼茎、幼叶为外植体.在1/2MS培养基上附加各类激素,进行贯叶金丝桃的组培实验。研究发现各外植体的增殖速率由高到低分别为幼茎、幼根、幼叶,且得到贯叶金丝桃组培各阶段的最佳培养基成分。诱导愈伤组织的培养基为1/2MS 1.3~1.6mg/L BA 0.2mg/L NAA;培养基1/2MS 1.3~1.6mg/L BA 0.15mg/L NAA有利于不定芽的形成;诱导不定根的培养基为l/2MS IBA0.5~O.8mg/L 蔗糖2.0%。向1/2MS培养基中添加不同的生长素(IAA,IBA,NAA,2.4-D).在不同浓度梯度的培养基上进行诱导贯叶金丝桃的愈伤组织及不定根的试验,结果表明:生长素IAA,IBA既可诱导愈伤组织,又可以诱导不定根的产生。生长素NAA,2,4-D可诱导产生愈伤组织,但对不定根的诱导作用较差。  相似文献   

3.
贯叶连翘抗抑郁研究新进展   总被引:15,自引:0,他引:15  
贯叶连翘,又名圣约翰草,是传统中药材之一,圣约翰草在德国用于抗抑郁症已有几百年的历史。贯叶连翘提取物对轻度和中度抑郁症患者和动物模型都有很好疗效,最新药理学研究表明贯叶连翘提取物中抗抑郁的主要成分是贯叶金丝桃素。贯叶金丝桃素是神经递质5-羟色胺(5-HT)、多巴胺(DA)、去甲肾上腺素(NE)的非竞争性重吸收抑制剂,贯叶金丝桃素还可以抑制突触体对γ氨基丁酸(GABA)和L-谷氨酸(L-glu)的重吸收,其作用机理至今还不甚明了,研究表明它的作用很可能是通过提高突触体细胞内钠离子浓度或通过降低突触体内突触小泡的跨膜pH梯度实现的。  相似文献   

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贯叶连翘的水培及其代谢产物检测   总被引:1,自引:0,他引:1  
水培可诱导贯叶连翘组培苗生根能力强,根活力也增加;生根苗在1/6MS培养液中培养6周后的金丝桃素(HP)、假金丝桃素(PHP)和贯叶金丝桃素(HF)含量分别比基质[腐质土 蛭石(1:1)]中培养的提高10.13%、16.00%和61.36%。  相似文献   

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贯叶连翘的试管快繁研究   总被引:4,自引:0,他引:4  
以贯叶连翘的茎节等为外植体 ,进行植株再生和快速繁殖研究。结果表明在BA、NAA、IBA和 2 ,4 -D不同组合的MS或 1/ 2MS培养基上 ,以茎段为外植体的愈伤组织和试管苗易于诱导 ;在 1/ 2MS BA 1~ 1.5 (mg/l) NAA 0 .1~ 0 .5 (mg/l)的培养基中增殖速度快 ,繁殖系数高 ;在 1/ 2MS NAA(IBA) 0 .5~ 1(mg/l)培养基中均能诱导生根。  相似文献   

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用提取金丝桃素后的贯叶金丝桃残渣和锯木屑作培养基分别栽培香菇 ,比较了由两种培养基栽培香菇的生物学效率、香菇的可溶性蛋白含量和超氧化物歧化酶 (SOD)活力。结果表明 :用贯叶金丝桃残渣栽培的香菇有较高的生物学效率、其香菇可溶性蛋白含量和SOD活力亦高 ,说明贯叶金丝桃残渣适合栽培香菇 ,为栽培香菇开发了一种新的生物资源。  相似文献   

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以血叶兰的嫩茎段为外植体, 建立了血叶兰的组培快繁体系。结果表明: 芽诱导最适宜的培养基是MS+6-BA 5.0 mg·L-1; 最适芽增殖培养基为MS+6-BA 5.0 mg·L-1+NAA 0.5 mg·L-1+TDZ 0.3 mg·L-1, 芽增殖率达4.92倍; 最佳壮苗培养基为MS+NAA 0.3 mg·L-1+GA3 1.0 mg·L-1+15%椰汁, 芽苗高度达到4.33 cm, 芽粗为0.61 cm; 生根最适培养基为1/2MS+IBA 1.0 mg·L-1+15%香蕉+0.5 g·L-1活性炭, 生根率在93.0%以上; 炼苗后, 移栽在泥炭土+珍珠岩+松树皮(3:1:1, V/V/V)混合基质中, 存活率高于87.0%。  相似文献   

8.
贯叶马兜铃的组织培养与快速繁殖   总被引:2,自引:0,他引:2  
1植物名称贯叶马兜铃(Aristolochia delavayiFranch)。2材料类别腋芽。3培养条件基本培养基为MS。启动培养基:(1)MS+NAA 1 mg·L-(-1)(单位下同)+6-BA 0.5;增殖培养基:(2)MS+NAA 0.5+6-BA 2;生根培养基:(3)1/2MS+IBA 0.5。以上培养基中均加入30 g·L-(-1)蔗糖、7 g·L-(-1)琼脂,pH 5.8。培养温度(25±3)℃,光照时间12 h·d-(-1),光照强度40~50μmol·m-(-2)·s-(-1)。  相似文献   

9.
贯叶连翘醇提条件的多指标优化   总被引:6,自引:0,他引:6  
本研究采用超声波提取法,对贯叶连翘中总黄酮、金丝桃素类和贯叶金丝桃素等主要有效成分在醇提过程中的提取条件(溶媒种类、浓度、提取时间等)进行了考察。结果表明,以总黄酮和金丝桃素类化合物为指标,用65%~80%的乙醇水溶液超声提取30min,提取效率较高;以贯叶金丝桃素为指标,则以用75%~90%的甲醇提取30min效果较好。  相似文献   

10.
贯叶连翘野生转家化前后生物学性状特征观察   总被引:4,自引:0,他引:4  
野生贯叶连翘 (HypericumperforatumL .)在江苏经过了 3a的引种栽培 ,其生物学特性检测结果表明 ,栽培贯叶连翘的生物量、开花的一致性和生长的适应性等明显优于野生贯叶连翘 ;良好的繁殖方式使贯叶连翘的收获期提前了 1a ;成熟后 3个月采收的种子萌发率较高 ,不同浓度赤霉素处理能明显提高其种子的萌发率 ;贯叶连翘的黑色腺体即分泌细胞球数量与金丝桃素间也基本存在着正相关关系 ,贵州贵阳居群和陕西丹凤居群黑色腺体明显多于其他居群 ,其金丝桃素含量在所有居群中为最高 ,而甘肃武都居群黑色腺体最少 ,其金丝桃素含量在 6个居群中最低。 6个野生居群栽培后生物量相近 ,在 4个不同土壤pH的基地大田中均能良好生长 ,说明江苏地区环境条件完全适合贯叶连翘引种栽培。  相似文献   

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In experiments on Black Sea skates (Raja clavata), the potential of the receptor epithelium of the ampullae of Lorenzini and spike activity of single nerve fibers connected to them were investigated during electrical and temperature stimulation. Usually the potential within the canal was between 0 and –2 mV, and the input resistance of the ampulla 250–400 k. Heating of the region of the receptor epithelium was accompanied by a negative wave of potential, an increase in input resistance, and inhibition of spike activity. With worsening of the animal's condition the transepithelial potential became positive (up to +10 mV) but the input resistance of the ampulla during stimulation with a positive current was nonlinear in some cases: a regenerative spike of positive polarity appeared in the channel. During heating, the spike response was sometimes reversed in sign. It is suggested that fluctuations of the transepithelial potential and spike responses to temperature stimulation reflect changes in the potential difference on the basal membrane of the receptor cells, which is described by a relationship of the Nernst's or Goldman's equation type.I. P. Pavlov Institute of Physiology, Academy of Sciences of the USSR, Leningrad. I. M. Sechenov, Institute of Evolutionary Physiology and Biochemistry, Academy of Sciences of the USSR, Leningrad. Pacific Institute of Oceanology, Far Eastern Scientific Center, Academy of Sciences of the USSR, Vladivostok. Translated from Neirofiziologiya, Vol. 12, No. 1, pp. 67–74, January–February, 1980.  相似文献   

16.
Evolution of living organisms is closely connected with evolution of structure of the system of regulations and its mechanisms. The functional ground of regulations is chemical signalization. As early as in unicellular organisms there is a set of signal mechanisms providing their life activity and orientation in space and time. Subsequent evolution of ways of chemical signalization followed the way of development of delivery pathways of chemical signal and development of mechanisms of its regulation. The mechanism of chemical regulation of the signal interaction is discussed by the example of the specialized system of transduction of signal from neuron to neuron, of effect of hormone on the epithelial cell and modulation of this effect. These mechanisms are considered as the most important ways of the fine and precise adaptation of chemical signalization underlying functioning of physiological systems and organs of the living organism  相似文献   

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