{"id":305528,"date":"2011-08-23T10:00:54","date_gmt":"2011-08-23T17:00:54","guid":{"rendered":"https:\/\/www.microsoft.com\/en-us\/research\/?p=305528"},"modified":"2016-10-13T14:19:09","modified_gmt":"2016-10-13T21:19:09","slug":"u-k-researcher-garners-tr35-accolade","status":"publish","type":"post","link":"https:\/\/www.microsoft.com\/en-us\/research\/blog\/u-k-researcher-garners-tr35-accolade\/","title":{"rendered":"U.K. Researcher Garners TR35 Accolade"},"content":{"rendered":"
By Douglas Gantenbein, Senior Writer, Microsoft News Center<\/em><\/p>\n Pioneering research into programming biology has earned a Microsoft Research scientist a prestigious TR35 (opens in new tab)<\/span><\/a> award, presented by Technology Review<\/em>.<\/p>\n Andrew Phillips<\/a>, a 34-year-old scientist who leads the Biological Computation<\/a> group at Microsoft Research Cambridge<\/a>, received the award, given each year by Technology Review<\/em> to recognize the world\u2019s top innovators under the age of 35. The awards span energy, medicine, computing, communications, nanotechnology, and other fields.<\/p>\n \u2018It\u2019s possible that programming biology may one day surpass the world of programming silicon,\u2019 says Andrew Phillips, whose work has earned him recognition as one of the world\u2019s top young innovators from Technology Review.<\/p><\/div>\n Phillips was among more than 300 nominations reviewed by a panel that consisted of expert judges and the editorial staff of Technology Review.<\/em> Xiao Li, until recently with Microsoft Research Redmond<\/a>, also was given a TR35 award, for her work with natural language interfaces.<\/p>\n Phillips\u2019 work aims to uncover fundamental principles of biological computation\u2014what cells can compute, and how and why they do so. Understanding biological information processing could take us one step closer to understanding life itself.<\/p>\n One of the central aspects of the Biological Computation effort is research into the design and implementation of DNA-based computational devices that can perform computation in living systems: programming life<\/em>.<\/p>\n \u201cWe want to actually create designed DNA machines with designed instructions and functions and operate them in living cells and systems,\u201d Phillips says. \u201cIn the same way you write programs for a computer, hit \u2018compile,\u2019 and get binary code as a sequence of numbers 0 and 1, we want to be able to write programs for a living cell, hit \u2018compile,\u2019 and get genetic code as a sequence of letters G, A, T, and C. The cell then reads the code and produces the proteins that enable it to change its behavior.\u201d<\/p>\n The work that earned Phillips a TR35 award is moving down two paths. On one, he is working on the principle of what is called DNA-strand displacement.<\/p>\n \u201cIt turns out that we can design, \u2018compile,\u2019 and implement DNA to do computations in a cell,\u201d Phillips says. \u201cAnd since the output of the computation is DNA, it can, in theory, interact with a cell and cause it to do things like generate new proteins and new functions.\u201d<\/p>\n Phillips has led the development of a DNA strand-displacement<\/a> language, called DSD<\/em>, that enables the specification, design, simulation, and compilation of DNA \u201ccircuits\u201d or devices, which can then compile to actual DNA.<\/p>\n In 2009, in the Journal of the Royal Society Interface<\/em>, Phillips and Microsoft colleague Luca Cardelli<\/a> reported that they could use their research to design simple logic gates and catalytic circuits, among other functions. Phillips\u2019 DSD programming environment recently was used by colleagues Lulu Qian and Erik Winfree at the California Institute of Technology to build complex circuits using DNA, as reported in Nature<\/em> (opens in new tab)<\/span><\/a> and Science<\/em> (opens in new tab)<\/span><\/a>.<\/p>\n In another approach, Phillips is investigating the tactic of viewing DNA as digital code\u2014literally, thinking of DNA as the software of a cell.<\/p>\n Recent experiments have shown that DNA can be used to completely reprogram a cell. Just over a year ago, for instance, noted scientist Craig Venter\u2014who led one of the first projects to sequence the human genome\u2014extracted the genetic code from one bacterium, synthesized it, and injected it into a different species of bacteria. That second bacterium then completely changed its behavior to match that of the first bacterium.<\/p>\n
The Next Step: Designing the Program<\/h2>\n