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低 PFD 下 C₄ 束鞘漏出的逐渐增加能否用不完全抑制光呼吸来解释?

Can the progressive increase of C₄ bundle sheath leakiness at low PFD be explained by incomplete suppression of photorespiration?

机构信息

Physiological Ecology, Department of Plant Sciences, University of Cambridge, Downing Street, Cambridge CB23EA, UK.

出版信息

Plant Cell Environ. 2010 Nov;33(11):1935-48. doi: 10.1111/j.1365-3040.2010.02196.x.

Abstract

The ability to concentrate CO₂ around Rubisco allows C₄ crops to suppress photorespiration. However, as phosphoenolpyruvate regeneration requires ATP, the energetic efficiency of the C₄ pathway at low photosynthetic flux densities (PFD) becomes a balancing act between primary fixation and concentration of CO₂ in mesophyll (M) cells, and CO₂ reduction in bundle sheath (BS) cells. At low PFD, retro-diffusion of CO₂ from BS cells, relative to the rate of bicarbonate fixation in M cells (termed leakiness φ), is known to increase. This paper investigates whether this increase in ϕ could be explained by incomplete inhibition of photorespiration. The PFD response of φ was measured at various O₂ partial pressures in young Zea mays plants grown at 250 (LL) and 750 µmol m⁻² s⁻¹ PFD (HL). φ increased at low PFD and was positively correlated with O₂ partial pressure. Low PFD during growth caused BS conductance and interveinal distance to be lower in the LL plants, compared to the HL plants, which correlated with lower φ. Model analysis showed that incomplete inhibition of photorespiration, especially in the HL plants, and an increase in the relative contribution of mitochondrial respiration at low PFD could explain the observed increases in φ.

摘要

Rubisco 周围 CO₂ 浓缩能力使 C₄ 作物能够抑制光呼吸。然而,由于磷酸烯醇丙酮酸的再生需要 ATP,因此在低光合通量密度(PFD)下,C₄ 途径的能量效率成为了一个平衡,需要在质膜(M)细胞中 CO₂的浓缩和初级固定,以及在束鞘(BS)细胞中 CO₂的还原之间进行平衡。在低 PFD 下,BS 细胞中 CO₂的反向扩散相对于 M 细胞中碳酸氢盐固定的速率(称为漏泄φ)增加。本文研究了这种φ的增加是否可以用不完全抑制光呼吸来解释。在不同的 O₂分压下测量了年轻玉米植株在 250(LL)和 750 µmol m⁻² s⁻¹ PFD(HL)下的 PFD 响应。φ 在低 PFD 下增加,与 O₂分压呈正相关。生长期间的低 PFD 导致 LL 植株的 BS 导度和叶脉间距离低于 HL 植株,这与较低的 φ 相关。模型分析表明,不完全抑制光呼吸,特别是在 HL 植株中,以及在低 PFD 下线粒体呼吸的相对贡献增加,可以解释观察到的 φ 的增加。

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