Synthetic biology - putting engineering into biology

被引:200
|
作者
Heinemann, Matthias [1 ]
Panke, Sven [1 ]
机构
[1] ETH, Bioproc Lab, Inst Proc Engn, CH-8092 Zurich, Switzerland
关键词
D O I
10.1093/bioinformatics/btl469
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Synthetic biology is interpreted as the engineering-driven building of increasingly complex biological entities for novel applications. Encouraged by progress in the design of artificial gene networks, de novo DNA synthesis and protein engineering, we review the case for this emerging discipline. Key aspects of an engineering approach are purpose-orientation, deep insight into the underlying scientific principles, a hierarchy of abstraction including suitable interfaces between and within the levels of the hierarchy, standardization and the separation of design and fabrication. Synthetic biology investigates possibilities to implement these requirements into the process of engineering biological systems. This is illustrated on the DNA level by the implementation of engineering-inspired artificial operations such as toggle switching, oscillating or production of spatial patterns. On the protein level, the functionally self-contained domain structure of a number of proteins suggests possibilities for essentially Lego-like recombination which can be exploited for reprogramming DNA binding domain specificities or signaling pathways. Alternatively, computational design emerges to rationally reprogram enzyme function. Finally, the increasing facility of de novo DNA synthesis synthetic biology's system fabrication process-supplies the possibility to implement novel designs for ever more complex systems. Some of these elements have merged to realize the first tangible synthetic biology applications in the area of manufacturing of pharmaceutical compounds. Contact: panke@ipe.mavt.ethz.ch.
引用
收藏
页码:2790 / 2799
页数:10
相关论文
共 50 条
  • [31] Engineering microbes with synthetic biology frameworks
    Leonard, Effendi
    Nielsen, David
    Solomon, Kevin
    Prather, Kristala Jones
    [J]. TRENDS IN BIOTECHNOLOGY, 2008, 26 (12) : 674 - 681
  • [32] Engineering living materials by synthetic biology
    Luo, Jiren
    Chen, Jiangfeng
    Huang, Yaoge
    You, Lingchong
    Dai, Zhuojun
    [J]. BIOPHYSICS REVIEWS, 2023, 4 (01):
  • [33] Synthetic Biology-Metabolic Engineering
    Ahmed, Muhammad Saad
    [J]. AICHE JOURNAL, 2020, 66 (10)
  • [34] Synthetic Biology: A Control Engineering Perspective
    Prescott, Thomas P.
    Papachristodoulou, Antonis
    [J]. 2014 EUROPEAN CONTROL CONFERENCE (ECC), 2014, : 1182 - 1186
  • [35] Engineering the Future through Synthetic Biology
    Moon, Tae Seok
    [J]. BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2023, 28 (06) : 889 - 891
  • [36] Engineering Life: A Review of Synthetic Biology
    Hanczyc, Martin M.
    [J]. ARTIFICIAL LIFE, 2020, 26 (02) : 260 - 273
  • [37] Levels of autonomy in synthetic biology engineering
    Beal, Jacob
    Rogers, Miles
    [J]. MOLECULAR SYSTEMS BIOLOGY, 2020, 16 (12)
  • [38] Engineering polymerases for applications in synthetic biology
    Nikoomanzar, Ali
    Chim, Nicholas
    Yik, Eric J.
    Chaput, John C.
    [J]. QUARTERLY REVIEWS OF BIOPHYSICS, 2020, 53
  • [39] Computational approaches to metabolic engineering utilizing systems biology and synthetic biology
    Fong, Stephen S.
    [J]. COMPUTATIONAL AND STRUCTURAL BIOTECHNOLOGY JOURNAL, 2014, 11 (18): : 28 - 34
  • [40] Editorial overview: Synthetic biology - From understanding to engineering biology and back
    Bange, Gert
    Waldminghaus, Torsten
    [J]. CURRENT OPINION IN CHEMICAL BIOLOGY, 2016, 34 : A151 - A153