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PHYSIOLOGICAL ASPECTS OF VARIABLE HIGH-TEMPERATURE TOLERANCE AMONG KENTUCKY BLUEGRASS GENOTYPES (HEAT, STRESS).

机译:肯塔基州蓝芽基因型(热,应力)中高温耐受性的生理方面。

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摘要

An investigation was conducted to examine various physiological parameters which could contribute to variability in the high-temperature tolerance among Kentucky bluegrass genotypes. Exposure of intolerant genotypes to 30C resulted in greatly reduced growth rates, while after a brief acclimation period, high growth rates were observed in tolerant genotypes. At 10C, growth rates were similiar among all genotypes. Differences did not exist in the distribution of dry weight or water-soluble carbohydrate among plant parts at either 10 or 30C. Although all plants stored much more fructosan when grown at 10C compared to 30C, genotypic differences were not observed in the amounts of fructosan, starch, glucose, fructose or sucrose when grown at either temperature. Differences in nitrogen uptake and metabolism did not occur, as no genotypic differences in the nitrate, amino, protein or total nitrogen fractions were observed at either temperature. In vivo nitrate reductase activity at 20C was inversely related to the high-temperature tolerance of genotypes, and such assays may serve as an excellent germplasm screening technique. Although shifts in the temperature optima for net photosynthesis occurred upon acclimation to 10, 20 or 30C, no genotypic differences were observed. Thus, differential high-temperature tolerance was not associated with the temperature stability of the photosynthetic apparatus.;Exposure to high irradiance (2000 uE/m('2)/sec PAR) caused much more severe inhibition of photosynthesis in intolerant than in tolerant genotypes. When grown at moderate irradiance (300 uE/m('2)/sec PAR), the leaf blades of intolerant genotypes folded at the midrib, presumably as an avoidance mechanism for photoinhibiton. This folding would result in even lower net photosynthesis under nonsaturating light due to lower light interception. It is concluded that higher photosynthetic rates, and subsequently higher growth rates, in high-temperature-tolerant as compared to -intolerant Kentucky bluegrass genotypes reflect their superior capacity to utilize light energy via the photosynthetic process. Hence, they are less susceptible to photoinhibition at high irradiance.;Net photosynthetic rates at both 2% and 21% O(,2) were related to high-temperature tolerance. Tolerant genotypes exhibited substantially greater net rates than intolerant genotypes under both saturating and nonsaturating irradiances. Such trends also occured under CO(,2)-enriched conditions, thus, differences are probably not attributed to differing diffusive resistances. These photosynthetic differences likely resulted in the higher growth rates observed at high temperature in heat-tolerance genotypes.
机译:进行了一项调查,以检查可能有助于肯塔基州蓝草基因型之间的高温耐受性变异的各种生理参数。不耐性基因型暴露于30C会导致生长速率大大降低,而经过短暂的适应期后,耐性基因型的生长率却很高。在10℃时,所有基因型的生长率相似。在10或30℃下,植物各部分之间干重或水溶性碳水化合物的分布没有差异。尽管所有植物在10C下生长时都比30C下储存更多的果聚糖,但在任一温度下生长时,果糖,淀粉,葡萄糖,果糖或蔗糖的量均未观察到基因型差异。氮吸收和代谢没有差异,因为在任一温度下均未观察到硝酸盐,氨基,蛋白质或总氮组分的基因型差异。 20℃时体内硝酸盐还原酶活性与基因型的高温耐受性成反比,这种测定法可以作为优良的种质筛选技术。尽管在适应10、20或30°C时发生了净光合作用的最佳温度变化,但未观察到基因型差异。因此,不同的高温耐受性与光合作用装置的温度稳定性无关。暴露于高辐照度(2000 uE / m('2)/ sec PAR)导致对不耐性的光合作用的抑制比对耐性基因型的严重得多。当在中等辐照度(300 uE / m('2)/ sec PAR)下生长时,不耐性基因型的叶片在中肋处折叠,大概是作为避光的机制。由于较低的光拦截,这种折叠将导致在非饱和光下甚至更低的净光合作用。结论是,耐高温的肯塔基蓝草基因型与耐高温的基因型相比具有较高的光合速率,随后具有较高的生长速率,反映出它们通过光合过程利用光能的优越能力。因此,它们在高辐照度下不易受到光抑制作用。O(,2)的2%和21%时的净光合速率均与高温耐受性有关。在饱和和非饱和辐照下,耐受性基因型的净效率要比耐受性基因型高得多。这种趋势也发生在富含CO(,2)的条件下,因此,差异可能不归因于不同的扩散阻力。这些光合作用的差异可能导致耐热基因型在高温下观察到更高的生长速率。

著录项

  • 作者

    HOWARD, HAROLD F.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Plant biology.
  • 学位 Ph.D.
  • 年度 1984
  • 页码 160 p.
  • 总页数 160
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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