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Modifying Plant Photosynthesis and Growth via Simultaneous Chloroplast Transformation of Rubisco Large and Small Subunits.
Martin-Avila, Elena; Lim, Yi-Leen; Birch, Rosemary; Dirk, Lynnette M A; Buck, Sally; Rhodes, Timothy; Sharwood, Robert E; Kapralov, Maxim V; Whitney, Spencer M.
Afiliación
  • Martin-Avila E; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Lim YL; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Birch R; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Dirk LMA; Department of Horticulture, Seed Biology Group, University of Kentucky, Lexington, Kentucky 40546-0312.
  • Buck S; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Rhodes T; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Sharwood RE; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia.
  • Kapralov MV; School of Natural and Environmental Sciences, Newcastle University, Newcastle upon Tyne, NE1 7RU, United Kingdom.
  • Whitney SM; Research School of Biology, The Australian National University, Acton, Australian Capital Territory 2601, Australia spencer.whitney@anu.edu.au.
Plant Cell ; 32(9): 2898-2916, 2020 09.
Article en En | MEDLINE | ID: mdl-32647068
ABSTRACT
Engineering improved Rubisco for the enhancement of photosynthesis is challenged by the alternate locations of the chloroplast rbcL gene and nuclear RbcS genes. Here we develop an RNAi-RbcS tobacco (Nicotiana tabacum) master-line, tobRrΔS, for producing homogenous plant Rubisco by rbcL-rbcS operon chloroplast transformation. Four genotypes encoding alternative rbcS genes and adjoining 5'-intergenic sequences revealed that Rubisco production was highest (50% of the wild type) in the lines incorporating a rbcS gene whose codon use and 5' untranslated-region matched rbcL Additional tobacco genotypes produced here incorporated differing potato (Solanum tuberosum) rbcL-rbcS operons that either encoded one of three mesophyll small subunits (pS1, pS2, and pS3) or the potato trichome pST-subunit. The pS3-subunit caused impairment of potato Rubisco production by ∼15% relative to the lines producing pS1, pS2, or pST However, the ßA-ßB loop Asn-55-His and Lys-57-Ser substitutions in the pS3-subunit improved carboxylation rates by 13% and carboxylation efficiency (CE) by 17%, relative to potato Rubisco incorporating pS1 or pS2-subunits. Tobacco photosynthesis and growth were most impaired in lines producing potato Rubisco incorporating the pST-subunit, which reduced CE and CO2/O2 specificity 40% and 15%, respectively. Returning the rbcS gene to the plant plastome provides an effective bioengineering chassis for introduction and evaluation of novel homogeneous Rubisco complexes in a whole plant context.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Ribulosa-Bifosfato Carboxilasa / Nicotiana / Solanum tuberosum / Cloroplastos Idioma: En Revista: Plant Cell Asunto de la revista: BOTANICA Año: 2020 Tipo del documento: Article País de afiliación: Australia

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Ribulosa-Bifosfato Carboxilasa / Nicotiana / Solanum tuberosum / Cloroplastos Idioma: En Revista: Plant Cell Asunto de la revista: BOTANICA Año: 2020 Tipo del documento: Article País de afiliación: Australia