From reconstruction to C-4 metabolic engineering: a case study for overproduction of polyhydroxybutyrate in bioenergy grasses
Author
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Gomes de Oliveira Dal'Molin, Cristiana
Author
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Quek, Lake-Ee
Author
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Saa, Pedro
Author
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Palfreyman, Robin
Author
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Nielsen, Lars
Admission date
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2018-11-21T13:27:27Z
Available date
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2018-11-21T13:27:27Z
Publication date
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2018-08
Cita de ítem
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Plant Science 273 (2018) 50–60
es_ES
Identifier
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0168-9452
Identifier
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10.1016/j.plantsci.2018.03.027
Identifier
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https://repositorio.uchile.cl/handle/2250/152753
Abstract
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The compartmentalization of C-4 plants increases photosynthetic efficiency, while constraining how material and energy must flow in leaf tissues. To capture this metabolic phenomenon, a generic plant metabolic reconstruction was replicated into four connected spatiotemporal compartments, namely bundle sheath (B) and mesophyll (M) across the day and night cycle. The C-4 leaf model was used to explore how amenable polyhydroxybutyrate (PHB) production is with these four compartments working cooperatively. A strategic pattern of metabolite conversion and exchange emerged from a systems-level network that has very few constraints imposed; mainly the sequential two-step carbon capture in mesophyll, then bundle sheath and photosynthesis during the day only. The building of starch reserves during the day and their mobilization during the night connects day and night metabolism. Flux simulations revealed that PHB production did not require rerouting of metabolic pathways beyond what is already utilised for growth. PHB yield was sensitive to photoassimilation capacity, availability of carbon reserves, ATP maintenance, relative photosynthetic activity of B and M, and type of metabolites exchanged in the plasmodesmata, but not sensitive towards compartmentalization. Hence, the compartmentalization issues currently encountered are likely to be kinetic or thermodynamic limitations rather than stoichiometric.
es_ES
Patrocinador
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We thank Yield 10 Bioscience, Inc. and Metabolix, Inc. for the support received to develop this work.