Structural comparison of allophycocyanin variants reveals the molecular basis for their spectral differences.

IF 2.9 3区 生物学 Q2 PLANT SCIENCES
Photosynthesis Research Pub Date : 2024-12-01 Epub Date: 2023-09-29 DOI:10.1007/s11120-023-01048-4
Christopher J Gisriel, Eduard Elias, Gaozhong Shen, Nathan T Soulier, Gary W Brudvig, Roberta Croce, Donald A Bryant
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引用次数: 0

Abstract

Allophycocyanins are phycobiliproteins that absorb red light and transfer the energy to the reaction centers of oxygenic photosynthesis in cyanobacteria and red algae. Recently, it was shown that some allophycocyanins absorb far-red light and that one subset of these allophycocyanins, comprising subunits from the ApcD4 and ApcB3 subfamilies (FRL-AP), form helical nanotubes. The lowest energy absorbance maximum of the oligomeric ApcD4-ApcB3 complexes occurs at 709 nm, which is unlike allophycocyanin (AP; ApcA-ApcB) and allophycocyanin B (AP-B; ApcD-ApcB) trimers that absorb maximally at ~ 650 nm and ~ 670 nm, respectively. The molecular bases of the different spectra of AP variants are presently unclear. To address this, we structurally compared FRL-AP with AP and AP-B, performed spectroscopic analyses on FRL-AP, and leveraged computational approaches. We show that among AP variants, the α-subunit constrains pyrrole ring A of its phycocyanobilin chromophore to different extents, and the coplanarity of ring A with rings B and C sets a baseline for the absorbance maximum of the chromophore. Upon oligomerization, the α-chromophores of all AP variants exhibit a red shift of the absorbance maximum of ~ 25 to 30 nm and band narrowing. We exclude excitonic coupling in FRL-AP as the basis for this red shift and extend the results to discuss AP and AP-B. Instead, we attribute these spectral changes to a conformational alteration of pyrrole ring D, which becomes more coplanar with rings B and C upon oligomerization. This study expands the molecular understanding of light-harvesting attributes of phycobiliproteins and will aid in designing phycobiliproteins for biotechnological applications.

Abstract Image

别藻蓝蛋白变体的结构比较揭示了它们光谱差异的分子基础。
异藻蓝蛋白是一种藻胆蛋白,它吸收红光并将能量转移到蓝藻和红藻的含氧光合作用反应中心。最近,研究表明,一些别藻蓝蛋白吸收远红光,并且这些别藻蓝素的一个子集,包括来自ApcD4和ApcB3亚家族(FRL-AP)的亚基,形成螺旋纳米管。寡聚ApcD4-ApcB3复合物的最低能量吸收最大值出现在709nm处,这不同于在 ~ 650nm和 ~ 分别为670nm。AP变体不同光谱的分子基础目前尚不清楚。为了解决这一问题,我们在结构上将FRL-AP与AP和AP-B进行了比较,对FRL-AP进行了光谱分析,并利用了计算方法。我们发现,在AP变体中,α-亚基在不同程度上限制了其藻蓝素发色团的吡咯环A,并且环A与环B和C的共面性为发色团吸收最大值设定了基线。低聚后,所有AP变体的α-发色团表现出最大吸光度的红移 ~ 25至30nm并且带变窄。我们排除了FRL-AP中的激子耦合作为这种红移的基础,并将结果扩展到讨论AP和AP-B。相反,我们将这些光谱变化归因于吡咯环D的构象变化,在低聚时,吡咯环D与环B和C变得更加共面。这项研究扩展了对藻胆蛋白光捕获特性的分子理解,并将有助于设计用于生物技术应用的藻胆蛋白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Photosynthesis Research
Photosynthesis Research 生物-植物科学
CiteScore
6.90
自引率
8.10%
发文量
91
审稿时长
4.5 months
期刊介绍: Photosynthesis Research is an international journal open to papers of merit dealing with both basic and applied aspects of photosynthesis. It covers all aspects of photosynthesis research, including, but not limited to, light absorption and emission, excitation energy transfer, primary photochemistry, model systems, membrane components, protein complexes, electron transport, photophosphorylation, carbon assimilation, regulatory phenomena, molecular biology, environmental and ecological aspects, photorespiration, and bacterial and algal photosynthesis.
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