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1.
A,D组染色体对普通小麦光合碳同化特性的影响   总被引:4,自引:0,他引:4  
张荣铣  戴新宾 《遗传学报》1999,26(6):683-689
系统研究了普通小麦中国春A、D组端二体的光合特性。结果表明,4A的双臂对光合速率,光合速率高值持续期、叶绿素含量、叶肉导度均具显著的正效应,1A的短臂的双臂对光合速率和光合速率高值持续期也具有正交应,但4D的长臂对光合速率、光合速率高值持续期和RuBPCase活性具负效应。  相似文献   

2.
杂种小麦及亲本旗叶老化过程中RubisCO特性的研究   总被引:5,自引:0,他引:5  
小麦(TriticumaestivumL.)旗叶的RuBPcase活性、含量及RuBPoase活性在旗叶全展或全展后10d达最大值,以后逐渐下降。与亲本相比,供试杂种小麦“麦优4号”在旗叶一生中尤其老化后期上述参数皆表现明显的杂种优势。旗叶RuBPcase比活性在叶绿素缓降期保持平稳,在叶绿素速降期逐渐下降。供试杂种小麦较亲本具有较高的RuBP羧化酶和加氧酶活性,表明杂种小麦不仅具有较强的光合羧化作用,而且叶片光合作用过程中的光呼吸也较强。结果与旗叶RubisCO亲合CO2和O2的动力学常数的测定结果相符。  相似文献   

3.
小麦Rht10基因与Ms2基因关系的遗传分析   总被引:1,自引:0,他引:1  
刘秉华  杨丽 《遗传》1988,10(4):1-3
矮变一号是陕西省西安市农科所从小麦品 种矮秆早中选出的矮秆天然突变体,是小麦的 重要矮源之一。陆维忠等〔21和王玉成等[t3l先后 对矮变一号的矮秆性进行了遗传研究,但结果 很不一致。刘秉华(1982年与戴松恩先生私人 通信)根据前人的试验资料和研究结果认为,矮 变一号的矮秆性受一对显性基因(或一对不完 全显性基因)控制,位于4D染色体上。Izumi等 人把矮变一号的显性矮秆基因命名为Rht10, 并且定位在4D染色体短臂上[191。陆维忠等进 一步明确了矮变一号的矮秆性受控于一对不完 全显性基因〔al0  相似文献   

4.
根据连锁遗传原理,利用全套染色体形态性状标记系,对20份中国大麦矮秆种质资源的矮秆基因,进行了染色体定位。结果表明:15份单基因矮秆中,有1份其矮秆基因与宽护颖基因Z连锁,位于2(2H)染色体短臂上;10份的矮秆基因与uz基因等位,由3(3H)长臂携带;4份的矮秆基因与钩芒基因K连锁,位于4(4H)长臂上。5份双基因矮秆中,有3份的矮秆基因分别位于2(2H)短臂和4(4H)长臂上;1份的矮秆基因各由其3(3H)和4(4H)长臂携带;其余1份的两对矮秆基因,1对与uz基因等位,由3(3H)长臂携带,另1对则与宽护颖基因w连锁,位于2(2H)短臂之上。  相似文献   

5.
张京 《遗传学报》2001,28(1):56-63
根据连锁遗传原理,利用全套染色体形态性状状标记系,对20份中国大麦筹秆南资源的矮秆基因,进行了染色体定位,结果表明,15份单基因矮杆中,有1份其矮秆基因与宽护颖基因w连锁,位于2(2H)染色体短臂上;10份的矮秆基因与uz基因等等位,由3(3H)长臂携带;4份的矮秆基因与钩芒K ,锁位于4(4H)长臂上,5份双基因矮秆中,有3份的筹秆基因分别位于2(2H)短臂和4(4H)长 臂上;1份的筹秆基因各由其3(3H)和4(4H)长臂携带;其余1份的两对矮秆基因,1对与uz基因等位,由于3(3H)长臂携带,另1对则与宽护颖基因w连锁,位于2(2H)短臂之上。  相似文献   

6.
茉莉酸甲酯对水稻幼苗光合作用的影响   总被引:14,自引:0,他引:14  
2.5×10-4mol/L茉莉酸甲酯处理水稻(OryzasativaL.)幼苗叶片,可明显地降低Chla、Chlb的含量及叶片的光合速率,抑制RuBPCase的活性,抑制幼苗叶片中RubisCO大亚基的合成,降低小亚基的含量。对幼苗叶片中叶绿素含量、叶片的光合速率及RuBPCase的活性没有影响。  相似文献   

7.
几个水稻品种抽穗期主效基因与微效基因的定位研究   总被引:18,自引:1,他引:17  
林鸿宣  钱惠荣 《遗传学报》1996,23(3):205-213
在构建2张RFLP图谱的基础上,定位分析了控制水稻抽穗期的主效基因和微效基因。在特三矮2号/C.B.群体中定位到2个主效基因和2个微效基因。该2个主基因分别位于第3、8染色体上,累加贡献率约达50%,加性效应值分别为7天和6天,而分别位于第1、12染色体的2个微效基因的贡献率仅分别为8.3%和9.6%,加性效应值仅为3天和4天。在外引2号/C.B.群体中定位了2个连锁于第6染色体的主效基因和1个位于第8染色体的微效基因,该2个主效基因的贡献率分别为35.5%和27.4%,来自外引2号的该2个基因其效应均为明显推迟抽穗,因而可推测它们为感光性基因,微效基因的贡献率仅为8.9%,基因效应值较小。  相似文献   

8.
水稻半矮秆基因sd-g的染色体定位研究   总被引:10,自引:0,他引:10  
以标志基因系和IR36三体为工具材料,通过杂交,研究了籼稻矮秆材料双矮所携半矮秆基因sd-g在染色体上的位置。结果表明:半矮秆基因sd-g与标志基因系M4所携隐性主基因gh-1和M27所携隐性主基因n1表现连锁。sd-g与gh-1之间的交换值为24.33%±3.96%,sd-g与n1之间的交换值为29.44%±4.81%。由于gh-1和n1均位于第5染色体,因而推定sd-g位于第5染色体上。  相似文献   

9.
为了进一步研究冰草属的P染色体组在小麦背景下的遗传效应和试图建立一套小麦-冰草属异源附加系,对来自普通小麦品种Fukuho×冰草Z559杂种的F3、F2BC1、BC4和BC3F1世代的222株进行了减数分裂行为观察。结果表明:(1)2n染色体的分布范围为39~54;(2)冰草Z559的P染色体组存在抑制小麦Ph效应的遗传系统,而且该系统可能只涉及不多于3条P染色体,但其对Ph基因的抑制效应是微弱的;(3)P染色体组存在控制染色体在减数分裂后期分离的基因,该基因可能只涉及不多于2条P染色体;(4)抑制小麦ph效应的基因和控制染色体在后期分离的基因可能位于不同的P染色体上;(5)已获得5个可能的小麦-冰草异源附加系。  相似文献   

10.
稀土离子对烟草RuBPcase的激活作用及EXFAS研究   总被引:4,自引:0,他引:4  
研究了稀土离子(Ln3 +) 对烟草(Nicotiana tabacum)1 ,5 - 二磷酸核酮糖羧化酶(RuBPcase)活力的影响。结果表明,在该酶的反应体系中,用Ln3 + 替代Mg2 + ,烟草RuBPcase 的活力随Ln3 + 浓度的变化曲线呈双相效应, 即在高浓度时, Ln3 + 抑制该酶活性; 低浓度的Ln3 + 提高RuBPcase 活性。其活化效应为轻稀土离子大于重稀土离子,但Ln3 + 的活化效应低于Mg2 + 。在有Mg2 + 的反应体系中,Ln3 + 在低浓度时也有提高RuBPcase 活性的能力,提高幅度较低;而高浓度的Ln3 + 显著地抑制酶活性。进一步对RuBPcase - La 二元复合物的EXFAS 研究,证实La3 + 与RuBPcase 氨基酸残基的O 原子键合,键长为2 .51?;La3 + 还与S 原子结合。最后对Ln3 + 和RuBPcase 相互作用的分子机制进行讨论  相似文献   

11.
BACKGROUND AND AIMS: The gibberellin-insensitive Rht-B1b and Rht-D1b dwarfing genes are known to reduce the size of cells in culms, leaves and coleoptiles of wheat. Resulting leaf area development of gibberellin-insensitive wheats is poor compared to standard height (Rht-B1a and Rht-D1a) genotypes. Alternative dwarfing genes to Rht-B1b and Rht-D1b are available that reduce plant height, such as the gibberellin-responsive Rht8 gene. This study aims to investigate if Rht8 has a similar dwarfing effect on the size of leaf cells to reduce leaf area. METHODS: The effect of Rht8 on cell size and leaf area was assessed in four types of epidermal cells (interstomatal, long, sister and bulliform) measured on leaf 2 of standard height (rht8) and semi-dwarf (Rht8) doubled-haploid lines (DHLs). The DHLs were derived from a cross between very vigorous, standard height (rht8) ('Vigour18') and less vigorous, semi-dwarf (Rht8) ('Chuan-Mai 18') parents. KEY RESULTS: Large differences were observed in seedling vigour between the parents, where 'Vigour18' had a much greater plant leaf area than 'Chuan-Mai 18'. Accordingly, 'Vigour18' had on average longer, wider and more epidermal cells and cell files than 'Chuan-Mai 18'. Although there was correspondingly large genotypic variation among DHLs for these traits, the contrast between semi-dwarf Rht8 and tall rht8 DHLs revealed no difference in the size of leaf 2 or average cell characteristics. Hence, these traits were independent of plant height and therefore Rht8 in the DHLs. Correlations for leaf and average cell size across DHLs revealed a strong and positive relationship between leaf width and cell files, while the relationships between leaf and cell width, and leaf and cell length were not statistically different. The relative contribution of the four cell types (long, sister, interstomatal and bulliform) to leaf size in the parents, comparative controls and DHLs is discussed. CONCLUSIONS: Despite a large range in early vigour among the DHLs, none of the DHLs attained the leaf area or epidermal cell size and numbers of the vigorous rht8 parent. Nonetheless, the potential exists to increase the early vigour of semi-dwarf wheats by using GA-sensitive dwarfing genes such as Rht8.  相似文献   

12.
In near-isogenic lines of winter wheat (Triticum aestivum L. cv. Maris Huntsman) grown at 20° C under long days the reduced-height genes, Rht1 (semi-dwarf) and Rht3 (dwarf) reduced the rate of extension of leaf 2 by 12% and 52%, respectively, compared with corresponding rht (tall) lines. Lowering the growing temperature from 20° to 10° C reduced the rate of linear extension of leaf 2 by 2.5-fold (60% reduction) in the rht3 line but by only 1.6-fold (36% reduction) in the Rht3 line. For both genotypes, the duration of leaf expansion was greater at the lower temperature so that final leaf length was reduced by only 35% in the rht3 line and was similar in the Rht3 line at both temperatures. Seedlings of the rht3 (tall) line growing at 20° C responded positively to root-applied gibberellin A1 (GA1) in the range 1–10 μM GA1; there was a linear increase in sheath length of leaf 1 whereas the Rht3 (dwarf) line remained unresponsive. Gibberellins A1, 3, 4, 8, 19, 20, 29, 34, 44 and 53 were identified by full-scan gas chromatography-mass spectrometry in aseptically grown 4-d-old shoots of the Rht3 line. In 12-d-old seedlings grown at 20° C, there were fourfold and 24-fold increases in the concentration of GA1 in the leaf expansion zone of Rht1 and Rht3 lines, respectively, compared with corresponding rht lines. Although GA3 was present at a similar level to GA1 in the rht3 (tall) line it accumulated only fivefold in the Rht3 (dwarf) line. The steady-state pool sizes of endogenous GAs were GA19 ? GA20 = GA1 in the GA-responsive rht3 line whereas in the GA non-responsive Rht3 line the content of GA19≈ GA20 ? GA1. It is proposed that one of the consequences of GA1 action is suppression of GA19-oxidase activity such that the conversion of GA19 to GA20 becomes a rate-limiting step on the pathway to GA1 in GA-responsive lines. In the GA-non-responsive Rht lines it is suggested that GA19 oxidase is not downregulated to the same extent and GA1 accumulates before the next rate-limiting step on the pathway, its 2β-hydroxylation to GA8. The steady-state pool sizes of GA19, 20, 1, 3 and 8 were similar in developmentally equivalent tissues of the rht3 (tall) line growing at 10° C and 20° C despite a 2.5-fold difference in the rate of leaf expansion. In contrast, in the Rht3 (dwarf) line, the extent of accumulation of GA1 reflected the severity of the phenotype at the two temperatures with slower growing tissues accumulating less, not more, GA1. These results are interpreted as supporting the proposed model of regulation of the GA-biosynthetic pathway rather than previous suggestions that GA1 accumulates in GA-insensitive dwarfs as a consequence of reduced growth rates.  相似文献   

13.
The second leaf of wheat was used as a model system to examinethe effects of the Rht3 dwarfing gene on leaf growth. Comparedto the rht3 wild type, the Rht3allele decreased final leaf length,surface area and dry mass by reducing the maximum growth rates,but without affecting growth duration. Gibberellic acid (GA3)increased final leaf length and maximum growth rate in the rht3wild type, but was without effect on the Rht3 mutant, whichis generally regarded as being non-responsive to gibberellin(GA). Paclobutrazol, an inhibitor of GA biosynthesis, decreasedfinal leaf length and maximum growth rate in the rht3 wild typeto values similar to those in the untreated Rht3 mutant. NeitherGA3 nor paclobutrazol affected the duration of leaf growth.The decrease in leaf length was produced by reduction of celllength rather than cell number. The maximum relative elementalgrowth rate (REGR) for cell extension was essentially the samein all treatments, as was the time between the cells leavingthe meristem and achieving maximum extension rate. The differencesbetween the genotypes and treatments were all almost entirelydue to differences in the time taken from the attainment ofmaximum REGR of cell extension to the cessation of extension.This was reflected in the length of the extension zone, whichwas approximately 6–8 per cent of final leaf length. Theeffects of the Rht3 allele, GA3 and paclobutrazol all appearto be on the processes which promote the cessation of cell elongation. Key words: Cell extension, gibberellin, leaf growth, Rht3 gene, Triticum, wheat  相似文献   

14.
Photosynthetic capacity is one of the most sensitive parameters in vegetation models and its relationship to leaf nitrogen content links the carbon and nitrogen cycles. Process understanding for reliably predicting photosynthetic capacity is still missing. To advance this understanding we have tested across C(3) plant species the coordination hypothesis, which assumes nitrogen allocation to photosynthetic processes such that photosynthesis tends to be co-limited by ribulose-1,5-bisphosphate (RuBP) carboxylation and regeneration. The coordination hypothesis yields an analytical solution to predict photosynthetic capacity and calculate area-based leaf nitrogen content (N(a)). The resulting model linking leaf photosynthesis, stomata conductance and nitrogen investment provides testable hypotheses about the physiological regulation of these processes. Based on a dataset of 293 observations for 31 species grown under a range of environmental conditions, we confirm the coordination hypothesis: under mean environmental conditions experienced by leaves during the preceding month, RuBP carboxylation equals RuBP regeneration. We identify three key parameters for photosynthetic coordination: specific leaf area and two photosynthetic traits (k(3), which modulates N investment and is the ratio of RuBP carboxylation/oxygenation capacity (V(Cmax)) to leaf photosynthetic N content (N(pa)); and J(fac), which modulates photosynthesis for a given k(3) and is the ratio of RuBP regeneration capacity (J(max)) to V(Cmax)). With species-specific parameter values of SLA, k(3) and J(fac), our leaf photosynthesis coordination model accounts for 93% of the total variance in N(a) across species and environmental conditions. A calibration by plant functional type of k(3) and J(fac) still leads to accurate model prediction of N(a), while SLA calibration is essentially required at species level. Observed variations in k(3) and J(fac) are partly explained by environmental and phylogenetic constraints, while SLA variation is partly explained by phylogeny. These results open a new avenue for predicting photosynthetic capacity and leaf nitrogen content in vegetation models.  相似文献   

15.
The effect of GA3 on coleoptile-and first leaf elongation of tall (rht1) and semi-dwarf (Rht1) nearly-isogenic genotypes, within each of 25 random F9 wheat families, was determined on seedlings grown in a growth room at 18 °C. Conspicuous and very significant inter-family variation in the response of the first leaf to GA3 application was found in both the rht1 and Rht1 genotypes. The magnitudes of the response of the different families within genotypes to GA3 were not related to the leaf length of their untreated seedlings. It is suggested that, under given environmental conditions, background genotypic effects, inducing inter-family variation in responsiveness to GA3, regulate the elongation growth up to the limits set by the Rht alleles.  相似文献   

16.
水稻生育过程中,RuBP羧化酶活性与光合速率、RuBP加氧酶活性与光呼吸速率、RuBP羧化酶活性与加氢酶活性以及光合速率与光呼吸速率之间是相关的。籼型品种与粳型品种间酶活性的高低及光合、光呼吸速率的高低基本一致,籼型三系杂交稻(F1)无明显的光合优势。酶的羧化活性的高低只在一定范围内与光合速率的高低平行。在正常生育条件下,酶蛋白的数量不是水稻光合速率的限制因子。  相似文献   

17.
The effects of low temperature and the Rht3 dwarfing gene onthe dynamics of cell extension in leaf 2 of wheat were examinedin relation to gibberellin (GA) content and GA-responsivenessof the extension zone. Leaf 2 of wild-type (rht3) wheat closelyresembled that of the Rht3 dwarf mutant when seedlings weregrown at 10C. The maximum relative elemental growth rate (REGR)within the extension zone in both genotypes was lower at 10Cthan at 20C, but the position with respect to the leaf basewas unaffected by temperature. The size of the extension zoneand epidermal cell lengths were similar in both genotypes at10C. Growth at 20C, instead of 10C, increased the lengthof the extension zone beyond the point of maximum REGR in thewild type, but not in the Rht3 mutant. Increasing temperatureresulted in longer epidermal cells in the wild type. Treatingwild-type plants at 10C with gibberellic acid (GA3) also increasedthe length of the extension zone, but the Rht3 mutant was GA-non-responsive.However, the concentrations of endogenous GA1 and GA3 remainedsimilar across the extension zone of wild-type plants grownat both temperatures, despite large differences in leaf growthrates. The period of accelerating REGR as cells enter the extensionzone, and the maximum REGR attained, are apparently not affectedby GA. It is proposed that GA functions as a stimulus for continuedcell extension by preventing cell maturation in the region beyondmaximum REGR and that low temperature increases the sensitivitythreshold for GA action. Key words: Cell extension, gibberellin, Rht3 dwarfing gene, temperature, wheat leaf  相似文献   

18.
Photosynthesis and nitrogen relationships in leaves of C3 plants   总被引:53,自引:0,他引:53  
Summary The photosynthetic capacity of leaves is related to the nitrogen content primarily bacause the proteins of the Calvin cycle and thylakoids represent the majority of leaf nitrogen. To a first approximation, thylakoid nitrogen is proportional to the chlorophyll content (50 mol thylakoid N mol-1 Chl). Within species there are strong linear relationships between nitrogen and both RuBP carboxylase and chlorophyll. With increasing nitrogen per unit leaf area, the proportion of total leaf nitrogen in the thylakoids remains the same while the proportion in soluble protein increases. In many species, growth under lower irradiance greatly increases the partitioning of nitrogen into chlorophyll and the thylakoids, while the electron transport capacity per unit of chlorophyll declines. If growth irradiance influences the relationship between photosynthetic capacity and nitrogen content, predicting nitrogen distribution between leaves in a canopy becomes more complicated. When both photosynthetic capacity and leaf nitrogen content are expressed on the basis of leaf area, considerable variation in the photosynthetic capacity for a given leaf nitrogen content is found between species. The variation reflects different strategies of nitrogen partitioning, the electron transport capacity per unit of chlorophyll and the specific activity of RuBP carboxylase. Survival in certain environments clearly does not require maximising photosynthetic capacity for a given leaf nitrogen content. Species that flourish in the shade partition relatively more nitrogen into the thylakoids, although this is associated with lower photosynthetic capacity per unit of nitrogen.  相似文献   

19.
Photosynthetic rate, chlorophyll fluorescence, leaf nitrogen and chlorophyll content of Cypripedium flavum were studied at different leaf ages. The photosynthetic capacity changed significantly with leaf age. Net photosynthesis and chlorophyll content peaked when leaf age was 60 days, decreasing at 30, 90 and 120 days. Stomatal conductance showed the highest value at 60 days, while mesophyll conductance decreased with increasing leaf age. Both leaf nitrogen content per unit area and leaf nitrogen content per unit mass decreased with increasing leaf age. The age-dependent variation in photosynthetic capacity could be linked to the changes in biochemical efficiency, leaf nitrogen content and CO2 diffusion limitation.  相似文献   

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