Faculty of Biology, Institute of Biology III, University of Freiburg, Schänzlestr. 1, 79104, Freiburg, Germany.
Spemann Graduate School of Biology and Medicine, Albertstr. 19, 79104, Freiburg, Germany.
Photochem Photobiol Sci. 2023 Jun;22(6):1415-1427. doi: 10.1007/s43630-023-00387-4. Epub 2023 Feb 14.
Phytochromes are linear tetrapyrrole-binding photoreceptors in eukaryotes and bacteria, primarily responding to red and far-red light signals reversibly. Among the GAF domain-based phytochrome superfamily, cyanobacteria-specific cyanobacteriochromes show various optical properties covering the entire visible region. It is unknown what physiological demands drove the evolution of cyanobacteriochromes in cyanobacteria. Here, we utilize ancestral sequence reconstruction and biochemical verification to show that the resurrected ancestral cyanobacteriochrome proteins reversibly respond to green and red light signals. pH titration analyses indicate that the deprotonation of the bound phycocyanobilin chromophore is crucial to perceive green light. The ancestral cyanobacteriochromes show only modest thermal reversion to the green light-absorbing form, suggesting that they evolved to sense the incident green/red light ratio. Many cyanobacteria can utilize green light for photosynthesis using phycobilisome light-harvesting complexes. The green/red sensing cyanobacteriochromes may have allowed better acclimation to changing light environments by rearranging the absorption capacity of the phycobilisome through chromatic acclimation.
植物光是真核生物和细菌中的线性四吡咯结合光受体,主要对红光和远红光信号进行可逆响应。在基于 GAF 结构域的植物光受体超家族中,蓝藻特有的藻胆体显示出各种涵盖整个可见光区域的光学性质。目前尚不清楚是什么生理需求促使蓝藻中的藻胆体发生进化。在这里,我们利用祖先序列重建和生化验证表明,复活的祖先藻胆体蛋白可逆地响应绿光和红光信号。pH 值滴定分析表明,结合藻蓝胆素发色团的去质子化对于感知绿光至关重要。祖先藻胆体蛋白对绿光吸收形式的热回复仅表现出适度回复,表明它们进化为感知入射的绿光/红光比值。许多蓝藻可以利用藻胆体光捕获复合物利用绿光进行光合作用。通过通过色度适应来重新排列藻胆体的吸收能力,对绿光/红光有感应的藻胆体可能允许更好地适应不断变化的光照环境。