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Lee, M. F. S.

Publications and source records attributed to Lee, M. F. S..

3 recordsLinked to original sources

Cell-free pathway prototyping enables cost-effective biomanufacturing of 1,2,4-butanetriol at the 1-L scale

Biomanufacturing offers sustainable alternatives to chemical synthesis under lower temperatures and pressures than traditional catalytic methods. However, the slow pace and iterative engineering bottlenecks of cell strain development restrict the feasible biological design space. Cell-free systems circumvent these constraints, providing a flexible and high-throughput screening approach to accelerate pathway prototyping and enzyme optimization but are not typically used for manufacturing scale-up. To understand the scalability of cell-free biosynthesis, we establish an end-to-end fully cell-free architecture to discover, develop, and scale the biosynthesis of 1,2,4-butanetriol (BT), a high-value industrial platform chemical. First, we systematically screened ~150 enzymes across the 4-step pathway from xylose to BT to identify highly active homologs for each reaction. Next, we applied statistical Design of Experiments to optimize reaction formulations for cost and titer. Finally, the maximum-titer and minimum-cost formulations were scaled up across five orders of magnitude, from 10-{micro}L to 1-L reactions. This resulted in peak volumetric productivities of ~1 g/L/h and yields over 13 g of BT in a single 1-L reaction, with raw substrate costs totaling just $3.00 per liter. This work expands the diversity of enzymes tested for BT synthesis and establishes a blueprint for advancing industrial biochemical manufacturing fully in vitro.

synthetic biology↗

Self-assembling protein materials with genetically programmable morphology and size

Materials are challenging to synthetically program down to the atom level. Nature, however, excels at creating hierarchical materials from nanoscale building blocks, a feat that remains a major challenge in synthetic systems. A deeper understanding of the molecular rules governing self-assembly would unlock the potential for designing genetically programmable materials with atomic precision. Hexameric bacterial microcompartment (BMC-H) proteins offer a powerful model system for exploring this question. These sequence-defined proteins naturally assemble into complex architectures and can be expressed biologically, making them ideal candidates for studying how minor sequence variations influence supramolecular structure. In this work, we leverage cell-free protein synthesis (CFPS) alongside immunostaining and super-resolution microscopy to investigate the self-assembly behavior of two BMC-H proteins, PduA and PduJ. We find that both proteins form micro-to millimeter scale structures when expressed in vitro. Further, we demonstrate how single point mutation changes lead PduA and PduJ to form significantly different supramolecular structures when produced using CFPS. These studies support the future exploration of self-assembling proteins as programmable scaffolds in broad materials applications. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=147 SRC="FIGDIR/small/666636v1_ufig1.gif" ALT="Figure 1"> View larger version (35K): org.highwire.dtl.DTLVardef@3376faorg.highwire.dtl.DTLVardef@c81730org.highwire.dtl.DTLVardef@6a6a5borg.highwire.dtl.DTLVardef@6cb4ff_HPS_FORMAT_FIGEXP M_FIG C_FIG

synthetic biology↗

Cell-Free Protein Expression in Polymer Materials

While synthetic biology has advanced complex capabilities like sensing and molecule synthesis in aqueous solutions, important applications may also be pursued for biological systems in solid materials. Harsh processing conditions used to produce many synthetic materials such as plastics makes incorporation of biological functionality challenging. One technology that shows promise in circumventing these issues is cell-free protein synthesis (CFPS), where core cellular functionality is reconstituted outside the cell. CFPS enables genetic functions to be implemented without the complications of membrane transport or concerns over cellular viability or release of genetically modified organisms. Here we demonstrate that dried CFPS reactions have remarkable tolerance to heat and organic solvent exposure during the casting processes for polymer materials. We demonstrate the utility of this observation by creating plastics that have spatially patterned genetic functionality, produce antimicrobials in situ, and perform sensing reactions. The resulting materials unlock the potential to deliver DNA-programmable bio-functionality in a ubiquitous class of synthetic materials.

synthetic biology↗