<p>Introducing CO<sub>2</sub>-concentrating mechanisms (CCM) into C<sub>3</sub> crops represents a major frontier in synthetic biology with potential to enhance photosynthetic efficiency and yields. Despite decades of progress in elucidating CCM components, mechanisms and genetics (including structures of native Rubisco-containing compartments), installing algal pyrenoids or cyanobacterial carboxysomes into plants remains a formidable challenge. This is due to the requirement for chloroplast engineering to facilitate sufficient expression, and specificity of condensate proteins that impedes use of heterologous Rubiscos without extensive genetic redesign. Here, we present a modular streamlined alternative, a synthetic system using encapsulin nanocompartments from <i>Quasibacillus thermotolerans</i> (QtEnc). By fusing a short cargo-loading peptide to diverse Rubisco isoforms, we achieve targeted encapsulation within QtEnc while retaining CO<sub>2</sub>-fixing activity. Our isoform-agnostic design establishes a foundation for constructing plant-compatible synthetic carboxysome mimics. While carbonic anhydrase remains to be incorporated, our system offers a simpler tractable path towards integrating a functional CCM in crops.</p>

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Reprogramming encapsulins into modular carbon-fixing nanocompartments

  • Taylor N. Szyszka,
  • Davin S. Wijaya,
  • Rezwan Siddiquee,
  • Alex Loustau,
  • Timothy Rhodes,
  • Nathan Paul,
  • Spencer M. Whitney,
  • Yu Heng Lau

摘要

Introducing CO2-concentrating mechanisms (CCM) into C3 crops represents a major frontier in synthetic biology with potential to enhance photosynthetic efficiency and yields. Despite decades of progress in elucidating CCM components, mechanisms and genetics (including structures of native Rubisco-containing compartments), installing algal pyrenoids or cyanobacterial carboxysomes into plants remains a formidable challenge. This is due to the requirement for chloroplast engineering to facilitate sufficient expression, and specificity of condensate proteins that impedes use of heterologous Rubiscos without extensive genetic redesign. Here, we present a modular streamlined alternative, a synthetic system using encapsulin nanocompartments from Quasibacillus thermotolerans (QtEnc). By fusing a short cargo-loading peptide to diverse Rubisco isoforms, we achieve targeted encapsulation within QtEnc while retaining CO2-fixing activity. Our isoform-agnostic design establishes a foundation for constructing plant-compatible synthetic carboxysome mimics. While carbonic anhydrase remains to be incorporated, our system offers a simpler tractable path towards integrating a functional CCM in crops.