Single-pot glycoprotein biosynthesis using a cell-free transcription-translation system enriched with glycosylation machinery

Однореакторный биосинтез гликопротеинов с использованием бесклеточной системы транскрипции и трансляции, обогащённой аппаратурой гликозилирования
Matthew P. DeLisa, Cameron J. Glasscock, Jessica C. Stark, Milan Mrksich, Michael C. Jewett, Thapakorn Jaroentomeechai, Aravind Natarajan, Laura E. Yates, Karen J. Hsu
2018-07-06

asparagine-linked glycosylationcell-free glycoprotein synthesiscell-free transcription-translationlipid-linked oligosaccharidesoligosaccharyltransferases
The emerging discipline of bacterial glycoengineering has made it possible to produce designer glycans and glycoconjugates for use as vaccines and therapeutics. Unfortunately, cell-based production of homogeneous glycoproteins remains a significant challenge due to cell viability constraints and the inability to control glycosylation components at precise ratios in vivo. To address these challenges, we describe a novel cell-free glycoprotein synthesis (CFGpS) technology that seamlessly integrates protein biosynthesis with asparagine-linked protein glycosylation. This technology leverages a glyco-optimized Escherichia coli strain to source cell extracts that are selectively enriched with glycosylation components, including oligosaccharyltransferases (OSTs) and lipid-linked oligosaccharides (LLOs). The resulting extracts enable a one-pot reaction scheme for efficient and site-specific glycosylation of target proteins. The CFGpS platform is highly modular, allowing the use of multiple distinct OSTs and structurally diverse LLOs. As such, we anticipate CFGpS will facilitate fundamental understanding in glycoscience and make possible applications in on demand biomanufacturing of glycoproteins.
1
A novel cell-free glycoprotein synthesis platform integrates protein biosynthesis with site-specific asparagine-linked glycosylation in a single pot.
2
CFGpS is modular, accommodating multiple distinct oligosaccharyltransferases and structurally diverse lipid-linked oligosaccharides.
3
Glyco-optimized Escherichia coli extracts are enriched with oligosaccharyltransferases and lipid-linked oligosaccharides to support glycoprotein production.
4
The platform enables efficient, site-specific glycosylation while avoiding cell viability constraints and in vivo control limitations.
5
The technology may enable mechanistic glycoscience studies and on-demand biomanufacturing of designer glycoproteins.

cell-free glycoprotein synthesis reactions using transcription-translation extracts enriched with oligosaccharyltransferases and lipid-linked oligosaccharides

one-pot, modular and site-specific integration of protein biosynthesis with N-linked glycosylation using diverse oligosaccharyltransferases and lipid-linked oligosaccharides

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2018-07-06
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Authors
Matthew P. DeLisa
Cameron J. Glasscock
Jessica C. Stark
Milan Mrksich
Michael C. Jewett
Thapakorn Jaroentomeechai
Aravind Natarajan
Laura E. Yates
Karen J. Hsu
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