Weller J. L., Terry M. J., Rameau C., Reid J. B., Kendrick R. E.
Department of Plant Science, University of Tasmania, GPO Box 252C, Hobart, Tasmania 7001, Australia.
Plant Cell. 1996 Jan;8(1):55-67. doi: 10.1105/tpc.8.1.55.
We isolated a new pea mutant that was selected on the basis of pale color and elongated internodes in a screen under white light. The mutant was designated pcd1 for phytochrome chromophore deficient. Light-grown pcd1 plants have yellow-green foliage with a reduced chlorophyll (Chl) content and an abnormally high Chl a/Chl b ratio. Etiolated pcd1 seedlings are developmentally insensitive to far-red light, show a reduced response to red light, and have no spectrophotometrically detectable phytochrome. The phytochrome A apoprotein is present at the wild-type level in etiolated pcd1 seedlings but is not depleted by red light treatment. Crude phytochrome preparations from etiolated pcd1 tissue also lack spectral activity but can be assembled with phycocyanobilin, an analog of the endogenous phytochrome chromophore phytochromobilin, to yield a difference spectrum characteristic of an apophytochrome-phycocyanobilin adduct. These results indicate that the pcd1-conferred phenotype results from a deficiency in phytochrome chromophore synthesis. Furthermore, etioplast preparations from pcd1 seedlings can metabolize biliverdin (BV) IX[alpha] but not heme to phytochromobilin, indicating that pcd1 plants are severely impaired in their ability to convert heme to BV IX[alpha]. This provides clear evidence that the conversion of heme to BV IX[alpha] is an enzymatic process in higher plants and that it is required for synthesis of the phytochrome chromophore and hence for normal photomorphogenesis.
我们分离出了一个新的豌豆突变体,该突变体是在白光筛选条件下,基于浅色和节间伸长而挑选出来的。该突变体因缺乏光敏色素发色团而被命名为pcd1。在光照下生长的pcd1植株具有黄绿色的叶片,叶绿素(Chl)含量降低,且Chl a/Chl b比值异常高。黄化的pcd1幼苗在发育上对远红光不敏感,对红光的反应减弱,并且没有分光光度法可检测到的光敏色素。在黄化的pcd1幼苗中,光敏色素A脱辅基蛋白的水平与野生型相同,但不会因红光处理而减少。来自黄化的pcd1组织的粗制光敏色素制剂也缺乏光谱活性,但可以与藻蓝胆素(一种内源性光敏色素发色团藻胆素的类似物)组装,以产生脱辅基光敏色素 - 藻蓝胆素加合物的特征性差示光谱。这些结果表明,pcd1赋予的表型是由于光敏色素发色团合成缺陷所致。此外,来自pcd1幼苗的黄化质体制剂可以将胆绿素(BV)IXα代谢为藻胆素,但不能将血红素代谢为藻胆素,这表明pcd1植株在将血红素转化为BV IXα的能力上严重受损。这提供了明确的证据,证明在高等植物中血红素向BV IXα的转化是一个酶促过程,并且它是光敏色素发色团合成所必需的,因此也是正常光形态建成所必需的。