PduU modifications alter shell permeability while fully maintaining organelle structural integrity, monodispersity, and electrostatic colloidal stability, providing a scalable strategy for biomanufacturing of high-value bio-based products in tailor-made MCP nanobioreactors.
Abstract
Bacterial microcompartments (MCPs) are versatile proteinaceous organelles that compartmentalize metabolic pathways, offering promising scaffolds for synthetic biology and metabolic engineering. However, designing customized nanobioreactors requires distinguishing structurally indispensable shell proteins from those that can be modified or deleted to tune shell permeability without disrupting core organelle assembly. In this study, we performed a systematic biophysical and metabolic characterization of the hexameric shell protein PduU to evaluate its potential as a modular platform for synthetic organelle engineering. We tested whether deleting pduU or selectively truncating its N-terminal β-barrel domain preserves shell assembly, metabolite flux, and intermediate confinement. Our results demonstrate that PduU modifications alter shell permeability while fully maintaining organelle structural integrity, monodispersity, and electrostatic colloidal stability. Crucially, this modulation in permeability redirects internal metabolic flux toward the energy-generating propionate pathway, resulting in elevated cell biomass and significantly increased yields of propionate, an economically vital industrial platform chemical. By establishing that PduU is a non-essential structural component whose modification tunes small-molecule flux, this work highlights PduU as a flexible locus for shell engineering, providing a scalable strategy for biomanufacturing of high-value bio-based products in tailor-made MCP nanobioreactors.
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