Distributed biological computation with multicellular engineered networks

被引:247
作者
Regot, Sergi [2 ]
Macia, Javier [1 ]
Conde, Nuria [1 ,2 ]
Furukawa, Kentaro [3 ]
Kjellen, Jimmy [3 ]
Peeters, Tom [2 ]
Hohmann, Stefan [3 ]
de Nadal, Eulalia [2 ]
Posas, Francesc [2 ]
Sole, Ricard [1 ,4 ,5 ]
机构
[1] UPF, ICREA Complex Syst Lab, E-08003 Barcelona, Spain
[2] UPF, Dept Ciencies Expt & Salut, Cell Signaling Unit, E-08003 Barcelona, Spain
[3] Univ Gothenburg, Dept Cell & Mol Biol Microbiol, S-40530 Gothenburg, Sweden
[4] Santa Fe Inst, Santa Fe, NM 87501 USA
[5] UPF, CSIC, Inst Biol Evolut, E-08003 Barcelona, Spain
关键词
SYNTHETIC BIOLOGY; COMMUNICATION; PARTS;
D O I
10.1038/nature09679
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Ongoing efforts within synthetic and systems biology have been directed towards the building of artificial computational devices(1) using engineered biological units as basic building blocks(2,3). Such efforts, inspired in the standard design of electronic circuits(4-7), are limited by the difficulties arising from wiring the basic computational units (logic gates) through the appropriate connections, each one to be implemented by a different molecule. Here, we show that there is a logically different form of implementing complex Boolean logic computations that reduces wiring constraints thanks to a redundant distribution of the desired output among engineered cells. A practical implementation is presented using a library of engineered yeast cells, which can be combined in multiple ways. Each construct defines a logic function and combining cells and their connections allow building more complex synthetic devices. As a proof of principle, we have implemented many logic functions by using just a few engineered cells. Of note, small modifications and combination of those cells allowed for implementing more complex circuits such as a multiplexer or a 1-bit adder with carry, showing the great potential for re-utilization of small parts of the circuit. Our results support the approach of using cellular consortia as an efficient way of engineering complex tasks not easily solvable using single-cell implementations.
引用
收藏
页码:207 / 211
页数:5
相关论文
共 27 条
[1]  
Amos M, 2004, SER SYST BIOL, P3
[2]   Synthetic biology: new engineering rules for an emerging discipline [J].
Andrianantoandro, Ernesto ;
Basu, Subhayu ;
Karig, David K. ;
Weiss, Ron .
MOLECULAR SYSTEMS BIOLOGY, 2006, 2 (1) :2006.0028
[3]   COMPUTATIONAL FUNCTIONS IN BIOCHEMICAL REACTION NETWORKS [J].
ARKIN, A ;
ROSS, J .
BIOPHYSICAL JOURNAL, 1994, 67 (02) :560-578
[4]   A synthetic Escherichia coli predator-prey ecosystem [J].
Balagadde, Frederick K. ;
Song, Hao ;
Ozaki, Jun ;
Collins, Cynthia H. ;
Barnet, Matthew ;
Arnold, Frances H. ;
Quake, Stephen R. ;
You, Lingchong .
MOLECULAR SYSTEMS BIOLOGY, 2008, 4 (1)
[5]   Rewiring Cells: Synthetic Biology as a Tool to Interrogate the Organizational Principles of Living Systems [J].
Bashor, Caleb J. ;
Horwitz, Andrew A. ;
Peisajovich, Sergio G. ;
Lim, Wendell A. .
ANNUAL REVIEW OF BIOPHYSICS, VOL 39, 2010, 39 :515-537
[6]   Engineering stability in gene networks by autoregulation [J].
Becskei, A ;
Serrano, L .
NATURE, 2000, 405 (6786) :590-593
[7]   PROTEIN MOLECULES AS COMPUTATIONAL ELEMENTS IN LIVING CELLS [J].
BRAY, D .
NATURE, 1995, 376 (6538) :307-312
[8]   Engineering microbial consortia: a new frontier in synthetic biology [J].
Brenner, Katie ;
You, Lingchong ;
Arnold, Frances H. .
TRENDS IN BIOTECHNOLOGY, 2008, 26 (09) :483-489
[9]   Engineered bidirectional communication mediates a consensus in a microbial biofilm consortium [J].
Brenner, Katie ;
Karig, David K. ;
Weiss, Ron ;
Arnold, Frances H. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (44) :17300-17304
[10]   Programming and engineering biological networks [J].
Chin, Jason W. .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2006, 16 (04) :551-556