4.6 Article

Tunable nano-oleosomes derived from engineered Yarrowia lipolytica

Journal

BIOTECHNOLOGY AND BIOENGINEERING
Volume 110, Issue 3, Pages 702-710

Publisher

WILEY-BLACKWELL
DOI: 10.1002/bit.24761

Keywords

Yarrowia lipolytica; oleosome; surface display; oleosin; emulsion; self assembly

Funding

  1. USDA NIFA [2010-65504-20349]
  2. Hawaii Community Foundation [44272, 11ADVC-49237]
  3. USDA TSTAR research program [2008-34135-19407]
  4. NIFA [581219, 2010-65504-20349] Funding Source: Federal RePORTER

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Oleosomes are discrete organelles filled with neutral lipids surrounded by a protein-embedded phospholipid monolayer. Their simple yet robust structure, as well as their amenability to biological, chemical, and physical processing, can be exploited for various biotechnology applications. In this study, we report facile biosynthesis of functionalized oleosomes within oleaginous yeast Yarrowia lipolytica, through expression of oleosin fusion proteins. By fusing a cDNA clone of a sesame oleosin with either the coding sequence of a red fluorescent protein mCherry or a cellulosomal scaffolding protein cohesin from Clostridium cellulolyticum, these oleosin-fusion proteins were efficiently expressed and specifically targeted to and anchored on the surface of the oleosomes within the Y. lipolytica cells. The engineered oleosomes can be easily separated from the Y. lipolytica cell extract via floating centrifugation and both mCherry and cohesin domains are shown to be functional. Upon sonication, the engineered Yarrowia oleosomes exhibit a mean diameter of 200300nm and are found to be highly stable. The feasibility of co-displaying multiple proteins on the Yarrowia oleosomes was demonstrated by incubating cohesin-displaying oleosomes with different dockerin-fusion proteins. Based on this strategy, engineered oleosomes with both cell-targeting and reporting activities were created and shown to be functional. Taken together, the Yarrowia oleosome surface display system in which oleosin serves as an efficient membrane anchor motif shows great promise as a simple platform for creating tunable nanoparticles. Biotechnol. Bioeng. 2013; 110: 702710. (c) 2012 Wiley Periodicals, Inc.

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