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September 19, 2012New Phytologist319 citationsOpen Access

Silicon nutrition increases grain yield, which, in turn, exerts a feed‐forward stimulation of photosynthetic rates via enhanced mesophyll conductance and alters primary metabolism in rice

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KDKelly C. DetmannWAWagner L. AraújoSMSamuel C. V. Martins

Key Points

  • To elucidate the physiological and metabolic mechanisms through which silicon nutrition enhances grain yield in rice under unstressed conditions.
  • Compared wild-type rice (Oryza sativa) with the low-silicon rice mutant lsi1 under unstressed growth conditions.
  • Assessed crop yield and integrated gas exchange analysis, carbon isotope labelling, and primary metabolic profiling across growth stages.
  • Silicon nutrition significantly enhanced harvest index and nitrogen use efficiency in rice.
  • Increased crop yields induced a feed-forward stimulation of photosynthetic rates driven primarily by elevated mesophyll conductance during grain filling, while leaving vegetative and de-grained photosynthetic rates unchanged.
  • Silicon treatment modified primary metabolism by promoting amino acid remobilization and boosting source capacity to meet higher sink demand.

Abstract

Silicon (Si) is not considered to be an essential element for higher plants and is believed to have no effect on primary metabolism in unstressed plants. In rice (Oryza sativa), Si nutrition improves grain production; however, no attempt has been made to elucidate the physiological mechanisms underlying such responses. Here, we assessed crop yield and combined advanced gas exchange analysis with carbon isotope labelling and metabolic profiling to measure the effects of Si nutrition on rice photosynthesis, together with the associated metabolic changes, by comparing wild-type rice with the low-Si rice mutant lsi1 under unstressed conditions. Si improved the harvest index, paralleling an increase in nitrogen use efficiency. Higher crop yields associated with Si nutrition exerted a feed-forward effect on photosynthesis which was fundamentally associated with increased mesophyll conductance. By contrast, Si nutrition did not affect photosynthetic gas exchange during the vegetative growth phase or in de-grained plants. In addition, Si nutrition altered primary metabolism by stimulating amino acid remobilization. Our results indicate a stimulation of the source capacity, coupled with increased sink demand, in Si-treated plants; therefore, we identify Si nutrition as an important target in attempts to improve the agronomic yield of rice.

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Cite This Study

Detmann et al. (2012) studied this question.

synapsesocial.com/papers/69dc24bac58b9bea43955247https://doi.org/10.1111/j.1469-8137.2012.04299.x
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