TY - JOUR
T1 - Nonlinear Regulation of Enzyme-Free DNA Circuitry with Ultrasensitive Switches
AU - Lai, Wei
AU - Xiong, Xiewei
AU - Wang, Fei
AU - Li, Qian
AU - Li, Li
AU - Fan, Chunhai
AU - Pei, Hao
N1 - Publisher Copyright:
Copyright © 2019 American Chemical Society.
PY - 2019/9/20
Y1 - 2019/9/20
N2 - DNA is used to construct synthetic chemical reaction networks (CRNs), such as inorganic oscillators and gene regulatory networks. Nonlinear regulation with a simpler molecular mechanism is particularly important in large-scale CRNs with complex dynamics, such as bistability, adaptation, and oscillation of cellular functions. Here we introduce a new approach based on ultrasensitive switches as modular regulatory elements to nonlinearly regulate DNA-based CRNs. The nonlinear behavior of the systems can be finely tuned by programmable regulation of the linker length and the ligand binding sites, of which the Hill coefficients (nH) are in the range of 1.00-2.32. By integrating two different strand displacement reactions with low-order nonlinearities (nH ≈ 1.44 and 1.54), we could construct CRNs exhibiting high-order nonlinearities with Hill coefficients of up to ∼2.70. In addition, this could provide an efficient approach for designing CRNs at will with complex chemical dynamics by incorporating our design with previously developed enzyme-free DNA circuits.
AB - DNA is used to construct synthetic chemical reaction networks (CRNs), such as inorganic oscillators and gene regulatory networks. Nonlinear regulation with a simpler molecular mechanism is particularly important in large-scale CRNs with complex dynamics, such as bistability, adaptation, and oscillation of cellular functions. Here we introduce a new approach based on ultrasensitive switches as modular regulatory elements to nonlinearly regulate DNA-based CRNs. The nonlinear behavior of the systems can be finely tuned by programmable regulation of the linker length and the ligand binding sites, of which the Hill coefficients (nH) are in the range of 1.00-2.32. By integrating two different strand displacement reactions with low-order nonlinearities (nH ≈ 1.44 and 1.54), we could construct CRNs exhibiting high-order nonlinearities with Hill coefficients of up to ∼2.70. In addition, this could provide an efficient approach for designing CRNs at will with complex chemical dynamics by incorporating our design with previously developed enzyme-free DNA circuits.
KW - Hill coefficient
KW - chemical reaction networks
KW - nonlinear regulation
KW - ultrasensitive switch
UR - https://www.scopus.com/pages/publications/85072508592
U2 - 10.1021/acssynbio.9b00208
DO - 10.1021/acssynbio.9b00208
M3 - 文章
C2 - 31461263
AN - SCOPUS:85072508592
SN - 2161-5063
VL - 8
SP - 2106
EP - 2112
JO - ACS Synthetic Biology
JF - ACS Synthetic Biology
IS - 9
ER -