Cambridge, UK




Compiled by Jim Haseloff at the University of Cambridge.
This site contains details of recent papers and activity in Synthetic Biology, with particular emphasis on: (i) development of standards in biology and DNA parts, (ii) microbial and (iii) plant systems, (iv) hardware for scientific computing and instrumentation, (v) tools for scientific productivity and (vi) collected miscellany.
The site also contains details of Synthetic Biology research and teaching at the University of Cambridge, including the annual iGEM team run by Jim Ajioka, Jim Haseloff and Gos Micklem in Cambridge.
The Fourth International Workshop on Bio-Design Automation (IWBDA) at DAC will bring together researchers from the synthetic biology, systems biology, and design automation communities....
The overall goal for the workshop is to bring together scientists working in the highly interdisciplinary field of synthetic biology to present cutting-edge research aligned with three...
GCAT is pleased to announce a synthetic biology faculty workshop for the summer of 2012 (June 20-22) hosted by HHMI’s Science Education Alliance (SEA). The goal of this workshop...
A student and post-doc organised conference: they have invited the world's leading scientists to highlight the recent advances in microbial engineering, along with discussing the challenges...
A week long, professional development class will prepare educators to bring biological engineering and synthetic biology into their classrooms and laboratories. The workshop will include...
Finals for the international Genetically Engineered Machine Competition.
The 2nd CSH Asia Synthetic Biology meeting will be held at the Suzhou Dushu Lake Conference Center in Suzhou, China, located approximately 60 miles west of Shanghai.
(Re-)constructing and Re-programming Life
Biotechnol Adv. 2011 Jan-Feb;29(1):156-63
Authors: Wang X, Sa N, Tian PF, Tan TW
DNA assembly is one of the most fundamental techniques in synthetic biology. Efficient methods can turn traditional DNA cloning into time-saving and higher efficiency practice, which is a foundation to accomplish the dreams of synthetic biologists for devising cellular architectures, reprogramming cellular behaviors, or creating synthetic cells. In this review, typical strategies of DNA assembly are discussed with special emphasis on the assembly of long and multiple DNA fragments into intact plasmids or assembled compositions. Constructively, all reported strategies were categorized into in vivo and in vitro types, and protocols are presented in a functional and practice-oriented way in order to portray the general nature of DNA assembly applications. Significantly, a five-step blueprint is proposed for devising cell architectures that produce valuable chemicals.
PMID: 21034806 [PubMed - in process]
(Via pubmed: "synthetic biology".)