A co-authored paper on a cell-free protein expression system from extremely low DNA concentrations has been published in the journal ACS Synthetic Biology.
A paper co-authored by Dr. Furubayashi and Professor Hiroyuki Noji of the Graduate School of Engineering, the University of Tokyo, has been published in the journal ACS Synthetic Biology.
T. Furubayashi, N. Terasaka , K. Tajima , H. Noji. Boosted cell-free gene expression for robust signal readout from a single-copy DNA template in microdroplets. ACS Synth. Biol. (2026)
Cell-free gene expression in microcompartments constitutes a chassis for biotechnology and synthetic biology. Protein synthesis from low DNA concentrations, including a single copy per compartment, is essential for in vitro evolution of biomolecules and synthetic cells. However, insufficient protein yields from typically subpicomolar DNA inputs result in undetectable signals or inadequate activity of desired protein functions. Here we identify and largely mitigate yield-limiting bottlenecks of reconstituted in vitro transcription and translation (IVTT) at low DNA input. Systematic comparison of commercial reconstituted IVTT kits revealed that gene expression becomes limited by mRNA scarcity within the 20−200 pM DNA-input range. We further uncovered that the standard ribosome concentration is excessive at low-DNA input and shortens the lifetime of translation. These findings led to a simple optimization recipe that combines supplementation with a commercial highly active T7 RNA polymerase reagent and a reduction in ribosome concentration, which synergistically amplified gene expression by ∼10-fold across diverse fluorescent proteins and enzymes. This low-DNA-optimized formulation in picoliter droplets achieved ∼94 nM protein expression from a single copy of a PCR-derived linear DNA template (∼0.12 pM). The user-friendly boosted IVTT protocol paves the way for straightforward functional screening and in vitro reconstitution of cellular functions in DNA-scarce environments.


Comments