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Real-time precision opto-control of chemical processes in live cells
ChemistryNature Communications

Real-time precision opto-control of chemical processes in live cells

M. G. Clark, G. A. Gonzalez, et al.

Discover the groundbreaking real-time precision opto-control technology developed by Matthew G. Clark and colleagues, capable of detecting and manipulating molecular activities in live cells with remarkable accuracy. This innovative approach allows for site-specific control, paving the way for new insights into cellular dynamics.... show more
Abstract
Precision control of molecular activities and chemical reactions in live cells is a long-sought capability by life scientists. No existing technology can probe molecular targets in cells and simultaneously control the activities of only these targets at high spatial precision. We develop a real-time precision opto-control (RPOC) technology that detects a chemical-specific optical response from molecular targets during laser scanning and uses the optical signal to couple a separate laser to only interact with these molecules without affecting other sample locations. We demonstrate precision control of molecular states of a photochromic molecule in different regions of the cells. We also synthesize a photoswitchable compound and use it with RPOC to achieve site-specific inhibition of microtubule polymerization and control of organelle dynamics in live cells. RPOC can automatically detect and control biomolecular activities and chemical processes in dynamic living samples with submicron spatial accuracy, fast response time, and high chemical specificity.
Publisher
Nature Communications
Published On
Jul 27, 2022
Authors
Matthew G. Clark, Gil A. Gonzalez, Yiyang Luo, Jesus A. Aldana-Mendoza, Mark S. Carlsen, Gregory Eakins, Mingji Dai, Chi Zhang
Tags
real-timeprecision opto-controlmolecular activitieslive cellslaser scanningmicrotubule polymerizationorganelle dynamics
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