Kami Chitose, Mukougawa Keiko, Muramoto Takuya, Yokota Akiho, Shinomura Tomoko, Lagarias J Clark, Kohchi Takayuki
Graduate School of Biological Sciences, Nara Institute of Science and Technology, 8916-5 Takayama, Ikoma, Nara 630-0192, Japan.
Proc Natl Acad Sci U S A. 2004 Jan 27;101(4):1099-104. doi: 10.1073/pnas.0307615100. Epub 2004 Jan 13.
The covalently bound phytochromobilin (PphiB) prosthetic group is required for the diverse photoregulatory activities of all members of the phytochrome family in vascular plants, whereas by contrast, green algal and cyanobacterial phytochromes use the more reduced linear tetrapyrrole pigment phycocyanobilin (PCB). To assess the functional consequence of the substitution of PphiB with PCB in plants, the phytochrome chromophore-deficient hy2 mutant of Arabidopsis was transformed with a constitutively expressed pcyA gene that encodes the cyanobacterial enzyme, PCB:ferredoxin oxidoreductase. Spectroscopic analyses of extracts from etiolated seedlings revealed that PcyA expression restored photoactive phytochrome to WT levels, albeit with blue-shifted absorption maxima, while also restoring light lability to phytochrome A. Photobiological measurements indicated that PcyA expression rescued phytochrome-mediated red high-irradiance responses, low-fluence red/far-red (FR) photoreversible responses, and very-low-fluence responses, thus confirming that PCB can functionally substitute for PphiB for these photoregulatory activities. Although PcyA expression failed to rescue phytochrome A-mediated FR high-irradiance responsivity to that of WT, our studies indicate that the FR high-irradiance response is fully functional in pcyA-expressing plants but shifted to shorter wavelengths, indicating that PCB can functionally complement this phytochrome-mediated response in vascular plants.
共价结合的藻胆色素(PphiB)辅基是维管植物中所有光敏色素家族成员各种光调节活性所必需的,而相比之下,绿藻和蓝藻的光敏色素使用的是还原性更强的线性四吡咯色素藻蓝胆素(PCB)。为了评估植物中用PCB替代PphiB的功能后果,用组成型表达的编码蓝藻酶PCB:铁氧还蛋白氧化还原酶的pcyA基因转化了拟南芥中缺乏光敏色素发色团的hy2突变体。对黄化幼苗提取物的光谱分析表明,PcyA的表达将光活性光敏色素恢复到野生型水平,尽管吸收最大值发生了蓝移,同时也恢复了光敏色素A的光不稳定性。光生物学测量表明,PcyA的表达挽救了光敏色素介导的高辐照红光反应、低通量红光/远红光(FR)光可逆反应和极低通量反应,从而证实了PCB在这些光调节活动中可以在功能上替代PphiB。虽然PcyA的表达未能将光敏色素A介导的FR高辐照反应性挽救到野生型水平,但我们的研究表明,FR高辐照反应在表达pcyA的植物中完全有功能,但向较短波长偏移,这表明PCB可以在功能上补充维管植物中这种光敏色素介导的反应。