Can improvement in photosynthesis increase crop yields?

Может ли улучшение фотосинтеза повысить урожайность сельскохозяйственных культур?
Stephen P. Long, Xin‐Guang Zhu, Shawna L. Naidu, Donald R. Ort
2006-03-01

crop yield potentialelevated CO2light conversion efficiencyphotosynthetic efficiencytransgenic crop improvement
The yield potential (Yp) of a grain crop is the seed mass per unit ground area obtained under optimum growing conditions without weeds, pests and diseases. It is determined by the product of the available light energy and by the genetically determined properties: efficiency of light capture (epsilon i), the efficiency of conversion of the intercepted light into biomass (epsilon c) and the proportion of biomass partitioned into grain (eta). Plant breeding brings eta7 and epsilon i close to their theoretical maxima, leaving epsilon c, primarily determined by photosynthesis, as the only remaining major prospect for improving Yp. Leaf photosynthetic rate, however, is poorly correlated with yield when different genotypes of a crop species are compared. This led to the viewpoint that improvement of leaf photosynthesis has little value for improving Yp. By contrast, the many recent experiments that compare the growth of a genotype in current and future projected elevated [CO2] environments show that increase in leaf photosynthesis is closely associated with similar increases in yield. Are there opportunities to achieve similar increases by genetic manipulation? Six potential routes of increasing epsilon c by improving photosynthetic efficiency were explored, ranging from altered canopy architecture to improved regeneration of the acceptor molecule for CO2. Collectively, these changes could improve epsilon c and, therefore, Y p by c. 50%. Because some changes could be achieved by transgenic technology, the time of the development of commercial cultivars could be considerably less than by conventional breeding and potentially, within 10-15 years.
1
Breeding has brought grain partitioning and light-capture efficiency near theoretical maxima, making photosynthetic conversion efficiency the main remaining opportunity to increase yield potential.
2
Leaf photosynthetic rate correlates poorly with yield among crop genotypes, but elevated-CO2 experiments show that increased photosynthesis is closely associated with increased yield.
3
Six proposed strategies for improving photosynthetic efficiency, from canopy architecture to regeneration of the CO2 acceptor molecule, could collectively increase conversion efficiency and yield potential by approximately 50%.
4
Some photosynthetic improvements could be implemented through transgenic technology, potentially enabling commercial cultivar development within 10–15 years.
5
Yield potential is determined by available light, light-capture efficiency, conversion efficiency into biomass, and biomass partitioning into grain.

grain crop yield potential under optimum growing conditions

the effect of genetically improving photosynthetic efficiency on biomass conversion efficiency and grain yield potential

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2006-03-01
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Authors
Stephen P. Long
Xin‐Guang Zhu
Shawna L. Naidu
Donald R. Ort
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