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Comparative Kinetics and Reciprocal Inhibition of Nitrate and Nitrite Uptake in Roots of Uninduced and Induced Barley (Hordeum vulgare L.) Seedlings

机译:未诱导和诱导大麦(Hordeum vulgare L.)幼苗根系中硝酸盐和亚硝酸盐吸收的比较动力学和相互抑制

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摘要

Nitrate and NO2 transport by roots of 8-day-old uninduced and induced intact barley (Hordeum vulgare L. var CM 72) seedlings were compared to kinetic patterns, reciprocal inhibition of the transport systems, and the effect of the inhibitor, p-hydroxymercuribenzoate. Net uptake of NO3 and NO2 was measured by following the depletion of the ions from the uptake solutions. The roots of uninduced seedlings possessed a low concentration, saturable, low Km, possibly a constitutive uptake system, and a linear system for both NO3 and NO2. The low Km system followed Michaelis-Menten kinetics and approached saturation between 40 and 100 micromolar, whereas the linear system was detected between 100 and 500 micromolar. In roots of induced seedlings, rates for both NO3 and NO2 uptake followed Michaelis-Menten kinetics and approached saturation at about 200 micromolar. In induced roots, two kinetically identifiable transport systems were resolved for each anion. At the lower substrate concentrations, less than 10 micromolar, the apparent low Kms of NO3 and NO2 uptake were 7 and 9 micromolar, respectively, and were similar to those of the low Km system in uninduced roots. At substrate concentrations between 10 and 200 micromolar, the apparent high Km values of NO3 uptake ranged from 34 to 36 micromolar and of NO2 uptake ranged from 41 to 49 micromolar. A linear system was also found in induced seedlings at concentrations above 500 micromolar. Double reciprocal plots indicated that NO3 and NO2 inhibited the uptake of each other competitively in both uninduced and induced seedlings; however, Ki values showed that NO3 was a more effective inhibitor than NO2. Nitrate and NO2 transport by both the low and high Km systems were greatly inhibited by p-hydroxymercuribenzoate, whereas the linear system was only slightly inhibited.
机译:比较了8天未诱导和诱导的完整大麦(Hordeum vulgare L. var CM 72)幼苗根部的硝酸盐和NO2 -转运与动力学模式,对转运系统的双向抑制以及抑制剂对羟基巯基苯甲酸的作用。通过跟踪吸收溶液中离子的消耗来测量NO3 -和NO2 -的净吸收。未诱导的幼苗的根部具有低浓度,可饱和,低Km,可能是本构吸收系统,而NO3 -和NO2 -均呈线性系统。低Km系统遵循Michaelis-Menten动力学,并在40至100微摩尔之间达到饱和,而线性系统在100至500微摩尔之间被检测到。在诱导幼苗的根中,NO3 -和NO2 -的吸收速率均遵循Michaelis-Menten动力学,并在约200微摩尔时达到饱和。在诱导的根中,每个阴离子解析了两个动力学可识别的转运系统。在较低的底物浓度下(小于10微摩尔),NO3 -和NO2 -吸收的表观低Kms分别为7和9微摩尔,与未诱导根系中的低Km系统。在10至200微摩尔之间的底物浓度下,NO3 -吸收的表观高Km值范围为34至36微摩尔,NO2 -吸收的表观Km值范围为41至49微摩尔。在诱导苗中还发现浓度高于500微摩尔的线性系统。双向倒数图表明,NO 3 -和NO 2 -在未诱导的两种情况下都竞争性地抑制了彼此的摄取。和诱导幼苗;然而,K i 值显示NO 3 -是一种比NO 2 -更有效的抑制剂。低羟基Km和高Km亚基系统对硝酸盐和NO 2 -的传输都受到对羟基汞苯甲酸的抑制,而线性系统仅略有抑制。

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