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1.
提高小麦原生质体再生植株频率的研究   总被引:5,自引:1,他引:4  
从小麦徐州211的成熟种子诱导愈伤组织,建立了胚性悬浮细胞系。酶解悬浮细胞获得原生质体,用含o.8%琼脂糖的改良Ms培葬基进行琼脂糖珠培养,再生细胞分裂,并形成愈伤组织。诱导再生愈伤组织分化.得到了完整的再生植株。原生质体培养两周后,加入降渗培养液可促进克隆的形成。在分化培养基中,低浓度蔗糖可提高植株分化率。高浓度的激动索和玉米素对芽的分化有效并能抑制愈伤化。再生愈伤组织诱导分化时期的早晚影响植林分化频率。  相似文献   

2.
小麦胚性悬浮系与原生质体植株再生   总被引:19,自引:0,他引:19  
普通小麦(Triticum aestivum)昌乐5号(冬性)胚性悬浮细胞系的组成成分对原生质体再生频率发生影响,此种悬浮系是由混合型愈伤组织建立起来的,建成的悬浮系中含有2—3mm的小愈伤组织和分散好的几十至上百个细胞的细胞团。分别用悬浮系中的小愈伤组织和细胞团分离原生质体进行培养。结果表明.由小愈伤组织来源的原生质体再生植株的频率显著高于由细胞团分离的原生质体的再生频率。培养基中不同成分对原生质体分裂的影响也作丁研究。  相似文献   

3.
建立了草木樨状黄芪(Astragalus melilotoides Pall.)甲硫氨酸抗性系原生质体再生植株的实验体系。以茎切段诱导的松软愈伤组织为材料,通过酶法分离出大量有活力的原生质体。原生质体经培养持续分裂形成了愈伤组织,并高频率地分化出再生苗。比较了不同培养基、培养方法和培养密度对原生质体分裂和再生的影响。结果表明,原生质体以3×105/mL的植板密度,采用琼脂糖岛法培养在附加1.0mg/L 2,4-二氯苯氧乙酸(2,4-D)、0.5mg/L 6-苄氨基嘌呤(6BA)、500mg/L水解酪蛋白、3%蔗糖、0.3mol/L甘露醇的KM8p培养基中,可获得最佳效果,其细胞分裂频率达38%左右。原生质体培养后仍然保持对甲硫氨酸的抗性,同时对乙硫氨酸表现交叉抗性。  相似文献   

4.
玉米原生质体的植株再生   总被引:6,自引:1,他引:5  
以玉米花粉诱导产生的胚性愈伤组织,在 N6基本培养基附加激动素2 mg/l,6-苄基氨基嘌呤1mg/l,2,4-D 0.3 mg/l,水解酪蛋白500 mg*l 及谷酰胺250 mg/l 的培养基上进行转代培养。用转代培养一年半后的胚性愈伤组织分离原生质体,原生质体培养在附加激动素0.2 mg/l,6-苄基氨基嘌呤0.1 mg/l,2,4-D 0.5 mg/1,水解酪蛋白200 mg/l,谷酰胺100 mg/l及椰乳296的原生质体培养基 Z_2中。培养4—6天后,原生质体的再生细胞进行第一次分裂;培养3星期后发育成肉眼可见的小愈伤组织。此后,需添加降低糖浓度的同样原生质体培养基 Z_2共两次。待再生愈伤组织长到直径2—4 mm 大小时,把它们先后转经第一及第二(即Z_3及 Z_4)分化培养基上诱导器官分化。最后在 Z_4分化培养基上同时有胚状体的发生及植株的分化。  相似文献   

5.
云南疣粒野生稻的成熟种子经55℃温度处理3d打破休眠后,在诱导培养基上诱导出愈伤组织。挑选胚性愈伤组织置于液体培养基中振荡培养,经3个月的继代培养,建立胚性细胞悬浮系。悬浮细胞经酶解、去壁后获得大量原生质体,固体包埋后添加液体培养基进行原生质体培养。在培养过程中调节培养体系的渗透压,获得小愈伤组织;经增殖后在分化培养基上诱导产生胚状体,成功得到疣粒野生稻的原生质体再生植株。  相似文献   

6.
用两种离体培养方法以再生番木瓜植株。一种是从愈伤组织再生;另一种是从单个苗端的外植体产生多个植株。番木瓜的愈伤组织是从幼苗茎的切段诱导的,茎段培养在含有1毫克/升 NAA(萘乙酸)和0.1毫克/升 KT(激动素)的培养基中。当愈伤组织转移到含有低浓度生长素(0—0.5毫克/升IAA(吲哚乙酸)和较高浓度的 KT(1-2毫克/升)的培养基时,再生了苗  相似文献   

7.
以疣粒野生稻和栽培稻02428的成熟种子为材料,对愈伤组织的诱导和继代、胚性悬浮细胞系建立、原生质体制备、再生细胞团分化及植株再生进行研究。结果表明:(1)水稻愈伤组织诱导的最佳2,4-D浓度为0.014 mmol/L;(2)胚性悬浮细胞系建立的最佳条件为AA 悬浮培养基+ 0.009 mmol/L 2,4-D ,每25 mL液体培养基加入0.4 g愈伤组织的初始接种量,7 d的继代周期;(3)原生质体制备的最佳条件为20 g/L纤维素酶+ 1 g/L果胶酶,酶解5 h,800 r/min离心5 min;(4)用荧光增白剂(VBL)细胞壁染色液可以快速、准确的检测原生质体制备及培养过程中细胞壁的变化情况。  相似文献   

8.
陈利萍  张明方等 《植物生理学报》2001,27(5):437-440,T001
利用茎用芥工细胞质雄性不育系原生质体培养获得了再生植株,并研究了影响原生质体培养的因素。结果表明,子叶是茎用芥菜原生质体培养最佳的外植体,10d苗龄的子叶原生质体在改良MS培养基上培养3d后发生第1次细胞分裂,6d后发生第2次分裂,3周后形成细胞团,5周后形成肉眼可见的小愈伤,培养基中减少NAA或2,4-D都会降低愈伤组织的再生能力,在含一定浓度的NAA(0.25mg/L)和2,4-D(0.25mg/L)培养基上诱导的愈伤组织地致密且有光泽,芽的分化能力高;在MS+BA 1mg/L NAA0.2mg/L的培养基上芽分化频率高达近29%,再生芽1/2MS+NAA0.1mg/L培养基上生根,形成完整植株。  相似文献   

9.
沙打旺原生质体培养再生植株   总被引:5,自引:0,他引:5  
罗希明  何孟元 《遗传学报》1991,18(3):239-243
用1%半纤维素酶,0.4%纤维素酶,0.1%果胶离析酶,CPW9M酶液分离沙打旺无菌苗下胚轴和子叶原生质体。K8P原生质体培养基悬滴培养。下胚轴原生质体形成小细胞团后用琼脂糖包埋培养,形成小块愈伤组织后转入增殖培养基M1、M2(改良MS培养基)上形成大块愈伤组织。经过两次诱导分化,在分化培养基M3(MS 0.7mg/L BA 0.2mg/L NAA),M4(MS 0.5mg/L BA 0.5mg/L KT 0.5mg/L ZT 0.2mg/L NAA)和M6(MS 3mg/L ZT 0.2mg/L IAA)上分化出苗,再生植株。由子叶分离的原生质体未能形成愈伤组织。  相似文献   

10.
以在MSB培养基(MS无机盐,B 5有机成份附加2mg/L 2.4-D)中继代一年的87-l籼型花粉愈伤组织和由籼型水稻株系81-3在改良的RY一2培养基中继代半年的悬浮培养物游离原生质体,分别在RY 2和KPR培养基中进行液体浅层培养或琼脂糖包埋培养,并在琼脂糖包埋培养时饲喂以粳型广亲和材料02428的悬浮培养细胞或除去}王胞的调渗悬浮液。原生质体植板率达8.7%-12.5%。将3—4周后形成的肉眼可见的小愈伤组织转移到台o.5mg/L 2.4-D的N6固体培养基上增殖,待愈伤组织长到直径达2—3mm大小时,分别或串换使用三种不同激素水平的分化培养基,最终由籼型株系81-3的原生质体再生了植株,而87-1籼型花粉胚性愈伤组织原生质体只再生了愈伤组织。  相似文献   

11.
绞股蓝悬浮细胞的原生质体再生植株   总被引:2,自引:0,他引:2  
绞股蓝(Gynostemma pentaphyllum (Thumb)Mak.)是葫芦科多年生草本药用植物,现已得到广泛的开发利用,本文首次报道了绞股蓝悬浮细胞的原生质体再生植株。  相似文献   

12.
This paper deals with the study on the condition of callus formation, embryogenesis, organogenesis, plant regeneration and protoplast culture of wild cotton (G. davidsonii) Callus cultures derived from several organs such as root, stem, leaf, cotyledon and hypocotyl. The results obtained in these cultures showed that the modified MS medium containing 2,4-D 1.0+KT 0.1; 2,4-D 0.1+KT 0.01; NAA (IAA) 2.0+KT 0.1 and NAA (IAA) 1.0+KT 0.1 mg/L were favorable to callus formation. Modified MS medium containing 2,4-D was suitable for initiated callus of G. davidsonii Besides, suspension cultures from callus of G. davidsonii were saccessfully initiated. Optimum concentration of 6BA (or ZT, or 2ip) and NAA (IAA) was for shooting, somatic embryo or leaf formation. Plantlets regenerated from somatic embryo at lower concentration of 6BA, or ZT, or 2ip. As to protoplast culture of this species, the age and physiological condition of callus or suspension cells and concentration of enzymes used for protoplast isolation affected the yield and survival of protoplasts. Protoplast of this species cultured in modified MS medium containing 2,4-D 0.5+NAA 0.5+ZT 0.1–0.2 mg/L. and divied after 3–4 days. The rate of division was 3--4% and cell cluster formed after 14 days, then these cells died.  相似文献   

13.
An efficient protocol for plant regeneration from protoplasts of hydroxyproline(HYP)resistant cell line of Onobrychis viciaefolia was established.In SH medium supplemented with 1mg/L2,4-dichlorophenoxy-acetic acid(2,4-D),0.5mg/L kinetin(KT)and 0.2mg/L naphthalene acetic acid(NAA),the division frequency of protoplastderived cells reached up to over 60%,and microcalli were obtained in 5-6wk.Upon transferring them on agar solidified MS medium plus 2mg/L indole-3-acetic acid (IAA),shoots were induced.After cultivating them on MS medium with or without IAA,roots were regenerated.Chromosome number of all protoplast-regenerated plants examined were normal(2n=28).The protoplast-derived calli and plants grew vigorously on the medium containing 10 mmol/L HYP.  相似文献   

14.
Protoplasts were isolated and cultured from hypocotyl embryogenic callus tissue of Gossypium hirsutum L. cv. "Lumian 6". The highest yields of viable protoplasts were obtained from a vigorous embryogenic callus 7 to 9 d old subcultured on MS medium supplemented with 2 mg/L IAA and 1 mg/L KT using a solution of 1% cellulase Onozuka R-10, 1% pectinase, 0.7 mmol/L KH2PO4, 2.5 mmol/L Ca2+ , and 0.5 mol/L osmoticum (mannitol), at pH 5.8 and at a temperature of 30 ℃. After separation and purification (in 21% sucrose floatation medium), the protoplasts were laid up in a quiet liquid protoplast culture medium containing K3 salts, NT vitamins with 0.1 mg/L 2,4-D, 0.2 mg/L KT and 0.45 mol/L glucose for 10 to 15 min. The protoplasts were fractioned into an upper and a lower layer in the centrifugal tube. Most of the protoplasts in the lower layer were smaller, round and rich in cytoplasts in which contain many granular substances. When this kind of protoplasts were cultured in the thin liquid protoplast culture medium with a density of 1 x l0s to 5 x los protoplasts/mL, the division and the callus formation of the regenerated cells were easily observed. The first divisions occurred in 3 days and small cell clusters could be seen after 2 to 3 weeks in the culture. At this moment, the addition of the protoplast culture medium with decreased osmoticum once or twice is needed for the continuous protoplasts division to form calli. Regenerated calli, 3 to 5 mm in diameter, were transferred in succession on MS medium with 2 mg/L IAA and 1 mg/L KT for the initiation of embryogenesis. The embryoids germinated on the hormonefree MS medium and a number of plantlets were obtained. It seems that using vigorous embryogenic callus and decreasing osmoticum are the two critical factors for plant regeneration of cotton protoplasts.  相似文献   

15.
Poplar NL-80106 (Populus deltoides×P, simonii) mesophyll protoplasts were isolated from leaves of 30 days-old sterile shoot, with 4 × 107/g fr. wt of protoplast yield after purification. The protoplasts were cultured in KM8p and MS liquid media containing 2 mg/L 2, 4-D, 0. 5 mg/L NAA and 0.5 mg/L KT. Higher plating density and lower osmatic pressure (0.45 mol/L) were proved to be favourable to division of protoplast-derived cells. The first division initiated 5 days after culture, and the division frequency reached 4.5 % on the 10th day. A number'of cell colonies and microcalli was formed in 12 weeks. Using organic nitrates and glucose in protoplast culture medium was beneficial to increase division frequency and plating efficiency. The calli were allowed to grow to 4--6 mm in height with red colour and compact structure on the gelrite-sohdified NLZ1 proliferation medium in 3 weeks and were transferred onto NLF differentiation medium where the frequency of shoot formation could reach 100%. The 3 cm high shoots were then cut off from the callus and rooted on 1/2 MS medium.  相似文献   

16.
石刁柏,又名芦笋(Asparagus officinalisL.)是百合科天门冬属植物。其栽培品种含有丰富的维生素类及蛋白质。同时,石刁柏对于某些疾病有一定的药效,因此它已成为人们所喜爱的一种高级营养蔬菜。国外已有不少关于石刁柏试管苗繁殖的报告,但至今只有Bui Dang Ha等从石刁柏枝状叶分离的原生质体得到愈伤组织,并由此愈伤组织诱导获得了再生植株。此后,未见在石刁柏的原生质体培养方面再有新的工作。在本文中,我们利  相似文献   

17.
埃斯基红豆草下胚轴愈伤组织原生质体的培养与植株再生   总被引:4,自引:0,他引:4  
埃斯基红豆幼苗的下胚轴切段在附加2,4-D0.5mg/L,KT1mg/L的MS中形成胚性愈伤组织。来自11-13个月龄、继代6-15天的愈伤组织的原生质体,在改良的V-KM液体培养基中可持续分裂形成细胞团,培养10天时的分裂率和克隆率分别为65.88%和53.38%周后就可将将原生质体形成的小愈伤组织转于培养基上。原生质体在改良的B5液体培养基也可以分裂形成小愈伤组织,但分裂率低于V-KM。来自原  相似文献   

18.
Leaf mesophyll protoplasts ofDianthus superbus were cultured at a density of 5 × 104 protoplasts/ml and divided at about 18% plating efficiency in MS liquid medium supplemented with 0.5 mg/L BAP, 2.0 mg/L NAA and 9% mannitol after 2 weeks. Protocolonies formed after 3 to 4 weeks of culture in the dark at 27°C. These colonies were transferred to continuous illumination (21.5 E m–2 sec–1) for 2 weeks where most of the colonies divided to form microcalli, about 2 mm in diameter. Subsequently, green microcalli were transferred to MS solidified medium with 2.0 mg/L 2,4-D that induced shoot-forming calli after 4 weeks. These calli were transferred onto N6-2 medium containing 0.1 mg/L 2,4-D, 0.1 mg/L NAA, 2.0 mg/L kinetin and 2.0 g/L casein hydrolysate and were cultured under light. After 5 weeks the calli gave rise to multiple shoots (10 to 15 per callus). Upon transfer to MS medium containing 2.0 mg/L NAA, individual shoots were rooted in 4 weeks. The regenerants were successfully transplanted into potting soil.Abbreviations MS Murashige and Skoog - BAP 6-benzylaminopurine - 2,4-D 2,4-dichlorophenoxyacetic acid - NAA 1-naphthaleneacetic acid - N6 Chu basal salt mixture - MES 2-N-morpholinoethanesulfonic acid  相似文献   

19.
甘薯叶柄原生质体有效植株再生   总被引:3,自引:0,他引:3  
将甘薯(Ipomoea batatas (L.)Lam.)‘元气’和‘白星’(‘White Star’)的叶柄原生质体培养在含有0.05 mg·L-1 2,4-D和0.5 mg·L-1 KT的改良MS液体培养基中,3~4 d后细胞开始分裂。培养8~9周后,将直径达1~2 mm的愈伤组织转移到添加0.05~0.2 mg· L-1 2,4-D和0~0.5 mg·L-1 KT或添加0.5~2.0 mg ·L-1 NAA和1.0~3.0 mg·L-1 BAP 的MS固体增殖培养基上使其增殖。转移3~5周后,将愈伤组织再转移到MS基本培养基或转移到添加2.0~3.0 mg·L-1 BAP的MS培养基上。当进一步转移到MS基本培养基上后,从愈伤组织或从愈伤组织形成的不定根上再生出植株。‘元气’植株再生率高达60.0 %,White Star高达43.4%。  相似文献   

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