Loading...

Daily news and top headlines for life science research professionals

FREE Email Newsletter View Sample


Scripps Research and Technion Scientists Develop Biological Computer to Encrypt and Decipher Images

Featured In: Academia News

Wednesday, February 8, 2012

See today's top life science stories and headlines - Sign up now!

newsvine diigo google
slashdot
Share
Loading...

Scientists at The Scripps Research Institute in California and the Technion–Israel Institute of Technology have developed a “biological computer” made entirely from biomolecules that is capable of deciphering images encrypted on DNA chips. Although DNA has been used for encryption in the past, this is the first experimental demonstration of a molecular cryptosystem of images based on DNA computing.

The study was published in a recent online-before-print edition of the journal Angewandte Chemie.

Instead of using traditional computer hardware, a group led by Professor Ehud Keinan of Scripps Research and the Technion created a computing system using bio-molecules. When suitable software was applied to the biological computer, it could decrypt, separately, fluorescent images of The Scripps Research Institute and Technion logos.

A Union Between Biology and Computer Science
In explaining the work’s union of the often-disparate fields of biology and computer science, Keinan notes that a computer is, by definition, a machine made of four components—hardware, software, input, and output. Traditional computers have always been electronic, machines in which both input and output are electronic signals. The hardware is a complex composition of metallic and plastic components, wires, and transistors, and the software is a sequence of instructions given to the machine in the form of electronic signals.

“In contrast to electronic computers, there are computing machines in which all four components are nothing but molecules,” Keinan said. “For example, all biological systems and even entire living organisms are such computers. Every one of us is a biomolecular computer, a machine in which all four components are molecules that ‘talk’ to one another logically.”

The hardware and software in these devices, Keinan notes, are complex biological molecules that activate one another to carry out some predetermined chemical work. The input is a molecule that undergoes specific, predetermined changes, following a specific set of rules (software), and the output of this chemical computation process is another well-defined molecule.

“Building” a Biological Computer
When asked what a biological computer looks like, Keinan laughs.

“Well,” he said, “it’s not exactly photogenic.” This computer is “built” by combining chemical components into a solution in a tube. Various small DNA molecules are mixed in solution with selected DNA enzymes and ATP. The latter is used as the energy source of the device.

“It’s a clear solution—you don’t really see anything,” Keinan said. “The molecules start interacting upon one another, and we step back and watch what happens.” And by tinkering with the type of DNA and enzymes in the mix, scientists can fine-tune the process to a desired result.

“Our biological computing device is based on the 75-year-old design by the English mathematician, cryptanalyst, and computer scientist Alan Turing,” Keinan said. “He was highly influential in the development of computer science, providing a formalization of the concepts of algorithm and computation, and he played a significant role in the creation of the modern computer. Turing showed convincingly that using this model you can do all the calculations in the world. The input of the Turing machine is a long tape containing a series of symbols and letters, which is reminiscent of a DNA string. A reading head runs from one letter to another, and on each station it does four actions: 1) reading the letter; 2) replacing that letter with another letter; 3) changing its internal state; and 4) moving to next position. A table of instructions, known as the transitional rules, or software, dictates these actions. Our device is based on the model of a finite state automaton, which is a simplified version of the Turing machine.”

Unique Biological Properties
Now that he has shown the viability of a biological computer, does Keinan hope that this model will compete with its electronic counterpart?

“The ever-increasing interest in biomolecular computing devices has not arisen from the hope that such machines could ever compete with electronic computers, which offer greater speed, fidelity, and power in traditional computing tasks,” Keinan said. “The main advantages of biomolecular computing devices over electronic computers have to do with other properties.”

As shown in this work, he continues, a wealth of information can be stored and encrypted in DNA molecules. Although each computing step is slower than the flow of electrons in an electronic computer, the fact that trillions of such chemical steps are done in parallel makes the entire computing process fast. “Considering the fact that current microarray technology allows for printing millions of pixels on a single chip, the numbers of possible images that can be encrypted on such chips is astronomically large,” he said.

“Also, as shown in our previous work and other projects carried out in our lab, these devices can interact directly with biological systems and even with living organisms,” Keinan explained. “No interface is required since all components of molecular computers, including hardware, software, input, and output, are molecules that interact in solution along a cascade of programmable chemical events.” He adds that because of DNA’s ability to store information, major computer companies have been extremely interested in the development of DNA-based computing systems.

Source: The Scripps Research Institute

Join the Discussion
Rate Article:  Average 0 out of 5
register or log in to comment on this article!

0 Comments

Add Comment

Text Only 2000 character limit

Page 1 of 1

Research Exchange

Three Tips to Help Manage Customization in Genomics LIMS Implementations

Nov 21 2011

Labs must consider three elements in evaluating genomics laboratory information management system (LIMS) to support the ever-changing workflow characteristics of next-generation sequencing.

How to Build an Integrated Microscopy System for Live Cell Mechanotransduction Studies

How to Build an Integrated Microscopy System for Live Cell Mechanotransduction Studies

Aug 2 2011

A new integrated microscopy system allows scientists to simultaneously stimulate and image live cell response in real-time.

Tips for Reducing Static Electricity

Tips for Reducing Static Electricity

Aug 1 2011

Static electricity can affect automated instrumentation within the lab.

Microscopes for the Non-Microscopist: Multidisciplinary Research Using Optical Imaging

Microscopes for the Non-Microscopist: Multidisciplinary Research Using Optical Imaging

Jul 5 2011

High quality microscopy is increasingly used by scientists in new areas of research.

Evaluation of a New Nano-Type UV-Vis Spectrophotometer

Mar 3 2011

Analysis of one- to four-microliter size samples for nucleic acids has become routine in many life science laboratories. However, until now, available instruments require considerable manipulation of the instrument and sample; some require manually recording the data. The user must typically lower and raise the arm manually, then wipe the sample manually from the target after each analysis. And fiberoptics used in some of these instruments are subject to deterioration.

Production of Recombinant Proteins and Monoclonal Antibodies in Hollow Fiber Bioreactors

Jan 25 2011

While well-understood, robust and convenient, classical batch-style 2-D culture on non-porous supports or 3-D suspension culture in other devices are really not very biologically relevant models. Cell culture conditions can affect the quality of the antibody or protein produced.

Selecting Robots for Use in Drug Discovery and Testing

Dec 6 2010

Drug discovery and testing, with their need for speed, repeatability and verification, are ideally suited to benefit from robot automation. It is therefore not surprising that robots have been at the forefront of automation developments in both these areas.

HP Scalable Network Storage Systems for Life Sciences

Sep 13 2010

Life sciences research today is advancing exponentially, each step bringing us closer to the realization of truly personalized medicine–preventive care and treatments designed specifically for each individual. In the near future, PCPGM healthcare researchers expect to be able to use predictive genetic testing to create custom treatment plans for individuals and deliver dramatic improvements over today’s one-size-fits-all approach. But research capabilities are only part of the equation; current storage and operating capacities must also evolve to accommodate ever-expanding amounts of data before the goal of personalized medicine can be realized.

Using the Tecan Genesis Workstation to Automate a Cytometric Bead Array (CBA) Immunoassay

Mar 11 2010

The poster describe the process involved in automating a Cytometric Bead Array (CBA) immunoassay developed to measure relative concentrations of serum antibodies against Tetanus (TT), Sperm Whale Myoglobin (SWM) and Keyhole Limpet Hemocyanin (KLH) in KLH-immunized volunteers.

Ensuring Quality in Assays Performed with Automated Liquid Handlers

Feb 2 2010

The focus of this presentation is to highlight the need of ensuring quality in important assays performed with automated liquid handlers. Nearly all assays performed within a laboratory are volume-dependent. In turn, all concentrations of biological and chemical components in these assays, as well as the associated dilution protocols, are volume-dependent. Because analyte concentration is volume-dependent, an assay’s results might be falsely interpreted if liquid handler variability and inaccuracies are unknown or if the system(s) go unchecked for a long period.

Inkjet System for Protein Crystallography

Feb 1 2010

X-ray crystallography is used routinely by scientists to obtain the three dimensional structure of a biological molecule of interest.Such information can be used to determine how a pharmaceutical interacts with a protein target and what changes might improve functionality. However, the crystallization of macromolecules still remains a serious hindrance in structural determination despite impressive advances in screening methods and technologies.

Attention Deficit & Hyperactivity in a Drosophila Memory Mutant

Attention Deficit & Hyperactivity in a Drosophila Memory Mutant

Nov 9 2009

Action selection is modulated by external stimuli either directly or via memory retrieval. In a constantly changing environment, animals have evolved attention-like processes to effectively filter the incoming sensory stream. These attention-like processes, in turn, are modulated by memory. The neurobiological nature of how attention, action selection and memory are inter-connected is unknown. We describe here new phenotypes of the memory mutant radish in the fruit fly Drosophila.

Red Meat Consumption and Mortality: Results From 2 Prospective Cohort Studies

Mar 16

BACKGROUND: Red meat consumption has been associated with an increased risk of chronic diseases. However, its relationship with mortality remains uncertain. METHODS: We prospectively observed 37 698 men from the Health Professionals Follow-up Study (1986-2008)...

Structural analysis of eyespots: dynamics of morphogenic signals that govern elemental positions in butterfly wings.

Mar 15

ABSTRACT: BACKGROUND: To explain eyespot colour-pattern determination in butterfly wings, the induction model has been discussed based on colour-pattern analyses of various butterfly eyespots. However, a detailed structural analysis of eyespots that can serve as...

Prokariotic Cell Collection in Denmark

Nov 6 2009

I would like to know about a prokariotic cell collection in Denmark. Is there a cell bank in this country? I need a Lactobacillus strain for a fermentation assay and this information about the bank is very helpful for me.

Request for Entries

Oct 16 2009

Ask the Experts is your chance to get the answers to questions on applications, materials, methods, processes, and technologies. Email you question to bst_web@advantagemedia.com, and the editors of Bioscience Technology will find an appropriate expert to answer it. Watch this space in the future to see the questions your colleagues are posting.          

STAY INFORMED: SUBSCRIBE TO

Magazine and E-mail Newsletters

Loading...
Loading...

Free Life Science Industry
Subscriptions

Magazine

wireless week

Newsletters

newsletters

Sign up now



MULTIMEDIA

Video:

Viewing SureFocus Slides

Jun 11 2010

A demonstration of SureFocus Microscope Slides in the review of AFB Smears. SureFocus Slides are a patent-pending breakthrough in tuberculosis detection, as their fluorescent staining circle remains visible during review, Fluorescence Microscopy.

Podcasts:

Allen Institute for Brain Research

Allen Institute for Brain Research

Oct 14 2009

Discussed in this interview are both the mouse brain project and the human cortex project with an emphasis on the importance of these projects to neuroscience research.

Top Stories and Headlines
EVERY DAY!

FREE Email Newsletter