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Biology subjects

Weix, E. W. Z.

Publications and source records attributed to Weix, E. W. Z..

3 recordsLinked to original sources

Noise-guided tuning of synthetic protein waves in living cells

Biological systems use protein circuits to organize cellular activities in space and time, but engineering synthetic dynamics is challenging due to stochastic effects of genetic and biochemical variation on circuit behavior. Genetically encoded oscillators (GEOs) built from bacterial MinDE-family ATPase and Activator modules generate fast orthogonal protein waves in eukaryotic cells, providing an experimental model system for genetic and biochemical coordination of synthetic protein dynamics. Here, we use budding yeast to experimentally define and model phase portraits that reveal how the breadth of frequencies and amplitudes available to a GEO are genetically controlled by ATPase and Activator expression levels and noise. GEO amplitude is encoded by ATPase absolute abundance, making it sensitive to extrinsic noise on a population level. In contrast, GEO frequency is remarkably stable because it is controlled by the Activator:ATPase ratio and thus affected primarily by intrinsic noise. These features facilitate noise-guided design of different expression strategies that act as filters on GEO waveform, enabling us to construct clonal populations that oscillate at different frequencies as well as independently tune frequency and amplitude variation within a single population. By characterizing 169 biochemically distinct GEOs, we provide a rich assortment of phase portraits as starting points for application of our waveform engineering approach. Our findings suggest noise-guided design may be a valuable strategy for achieving precision control over dynamic protein circuits.

synthetic biology↗

Genetically encoded protein oscillators for FM streaming of single-cell data

Wireless devices use frequency modulation (FM) to reliably transmit information. Here, we establish a biochemical analogue of this paradigm using genetically encoded protein oscillators (GEOs) as carrier signals for real-time streaming of single-cell data. The GEO platform leverages evolutionarily diverse MinDE-family ATPase and Activator modules to generate fast synthetic protein oscillations in cells, where the waveform is controlled by both circuit biochemistry and intrinsic cellular physiology. This allows for diverse data encoding strategies, including noise-resistant FM reporters that broadcast proteasomal degradation or transcriptional dynamics; and autoencoder circuits that directly couple shifts in cell physiology to GEO waveform. Deploying GEOs in human embryonic stem cells allowed us to track single-cell developmental states in living populations during differentiation, revealing distinct patterns of spatiotemporal heterogeneity along endoderm, mesoderm, and ectoderm trajectories. The GEO platform establishes a dynamically controllable biochemical carrier signal, unlocking new high-fidelity FM data-encoding paradigms for continuous single-cell analysis.

synthetic biology↗

A programmable reaction-diffusion system for spatiotemporal cell signaling circuit design

Cells self-organize molecules in space and time to generate complex behaviors, but we lack synthetic strategies for engineering spatiotemporal signaling. We present a programmable reaction-diffusion platform for designing protein oscillations, patterns, and circuits in mammalian cells using two bacterial proteins, MinD and MinE (MinDE). MinDE circuits act like "single-cell radios", emitting frequency-barcoded fluorescence signals that can be spectrally isolated and analyzed using digital signal processing tools. We define how to genetically program these signals and modulate their dynamics using engineerable protein-protein interactions. By connecting MinDE to endogenous cellular pathways, we built circuits that broadcast frequency-barcoded single-cell kinase activity or that synthetically pattern actin polymerization. Our work establishes a new paradigm for probing and engineering cellular activities at length and timescales critical for biological function.

synthetic biology↗