Showing posts with label Evolution. Show all posts
Showing posts with label Evolution. Show all posts

Friday, 11 December 2015

Process to Accelerate Protein Evolution

Stanford engineers invent process to accelerate protein evolution


A new tool enables researchers to test millions of mutated proteins in a matter of hours or days, speeding the search for new medicines, industrial enzymes and biosensors.

All living things require proteins, members of a vast family of molecules that nature “makes to order” according to the blueprints in DNA.






Through the natural process of evolution, DNA mutations generate new or more effective proteins. Humans have found so many alternative uses for these molecules – as foods, industrial enzymes, anti-cancer drugs – that scientists are eager to better understand how to engineer protein variants designed for specific uses.


accelerate protein, Protein, evolution, enzymes , biosensors, DNA , DNA mutations, Cells, DNA sequence

An overview of the directed evolution process using the new Stanford technique: preparing protein libraries, screening them, extracting desired cells, and then inferring their DNA sequence. (Click image to enlarge.)


Now Stanford engineers have invented a technique to dramatically accelerate protein evolution for this purpose. This technology, described in Nature Chemical Biology, allows researchers to test millions of variants of a given protein, choose the best for some task and determine the DNA sequence that creates this variant.


“Evolution, the survival of the fittest, takes place over a span of thousands of years, but we can now direct proteins to evolve in hours or days,” said Jennifer Cochran, an associate professor of bioengineering who co-authored the paper with Thomas Baer, executive director of the Stanford Photonics Research Center.


“This is a practical, versatile system with broad applications that researchers will find easy to use,” Baer said.


By combining Cochran’s protein engineering know-how with Baer’s expertise in laser-based instrumentation, the team created a tool that can test millions of protein variants in a matter of hours.


“The demonstrations are impressive and I look forward to seeing this technology more widely adopted,” said Frances Arnold, a professor of chemical engineering at Caltech who was not affiliated with the study.


Making a million mutants

The researchers call their tool µSCALE, or Single Cell Analysis and Laser Extraction.


The “µ” stands for the microcapillary glass slide that holds the protein samples. The slide is roughly the size and thickness of a penny, yet in that space a million capillary tubes are arrayed like straws, open on the top and bottom.


accelerate protein, Protein, evolution, enzymes , biosensors, DNA , DNA mutations, Cells, DNA sequence , µSCALE , u scale, microcapillary

The microcapillary glass slide, roughly the size and thickness of a penny, holds the protein samples.


The power of µSCALE is how it enables researchers to build upon current biochemical techniques to run a million protein experiments simultaneously, then extract and further analyze the most promising results.


The researchers first employ a process termed “mutagenesis” to create random variations in a specific gene. These mutations are inserted into batches of yeast or bacterial cells, which express the altered gene and produce millions of random protein variants.




A µSCALE user mixes millions of tiny opaque glass beads into a sample containing millions of yeast or bacteria and spreads the mixture on a microcapillary slide. Tiny amounts of fluid trickle into each tube, carrying individual cells. Surface tension traps the liquid and the cell in each capillary.


The slide bearing these million yeast or bacteria, and the protein variants they produce, is inserted into the µSCALE device. A software-controlled microscope peers into each capillary and takes images of the biochemical reaction occurring therein.


Once a µSCALE user identifies a capillary of interest, the researcher can direct the laser to extract the contents of that tube without disrupting its neighbors, using an ingenious method devised by Baer.


“The beads are what enable extraction,” Baer said. “The laser supplies energy to move the beads, which breaks the surface tension and releases the sample from the capillary.”


Thus µSCALE empties the contents of a single capillary onto a collector plate, where the DNA of the isolated cell can be sequenced and the gene variant responsible for the protein of interest can be identified.


“One of the unique features of µSCALE is that it allows researchers to rapidly isolate a single desired cell from hundreds of thousands of other cells,” said Bob Chen, a doctoral student in Cochran’s lab who wrote the software to examine and detect signs of interesting protein activity within the test tubes.


Promising variants can be collected and reprocessed through µSCALE to further evolve and optimize the protein.


“This is an exciting new tool to answer important questions about proteins,” Cochran said, likening µSCALE to the way that high-throughput tools for gene analysis have allowed researchers to unlock key features of biology underlying human disease.


Genesis and proofs

The project began five years ago when Baer and collaborator Ivan Dimov developed the first instrument. They showed how to identify cell types in a microcapillary array and extract a single capillary’s contents using glass beads and a focused laser.


About three years ago, Cochran and Baer joined forces to develop µSCALE for protein engineering, and the team devised three experiments to showcase µSCALE’s utility and flexibility.


In one experiment, researchers sifted through a protein library produced in yeast cells to select antibodies that bound most tightly to a cancer target. Antibodies with a high target-binding affinity are known to be effective against cancer.


In a second example, they engineered a bright orange fluorescent protein biosensor. Using µSCALE, they did this almost 10 times faster than previous methods. Such biosensors are often used as tags in a wide variety of biology experiments.


A third experiment, carried out with Stanford biochemistry Professor Daniel Herschlag, used µSCALE to improve upon a model enzyme.


“This system will allow us to explore the evolutionary and functional relationships between enzymes, guiding the engineering of new enzymes that can carry out novel beneficial reactions,” Herschlag said.


The Stanford team included graduate students Sungwon Lim and Arvind Kannan, postdoctoral scholar Spencer Alford and researcher Fanny Sunden.


Support for this work included a Wallace H. Coulter Translational Partnership Award, which made this pioneering interdisciplinary research possible.




– Credit and Resource –


Written by: Ramin Skibba


Provided by: Standford University




Process to Accelerate Protein Evolution

Friday, 18 September 2015

What Hubble Observed

Freedawn, Scientia, Galaxy, space, Hubble, NASA, Galaxies, Evolution

It is known today that merging galaxies play a large role in the evolution of galaxies and the formation of elliptical galaxies in particular. However there are only a few merging systems close enough to be observed in depth. The pair of interacting galaxies seen here — known as NGC 3921 — is one of these systems.


NGC 3921 — found in the constellation of Ursa Major (The Great Bear) — is an interacting pair of disk galaxies in the late stages of its merger. Observations show that both of the galaxies involved were about the same mass and collided about 700 million years ago. You can see clearly in this image the disturbed morphology, tails and loops characteristic of a post-merger.


The clash of galaxies caused a rush of star formation and previous Hubble observations showed over 1,000 bright, young star clusters bursting to life at the heart of the galaxy pair.


Image credit: ESA/Hubble & NASA, Acknowledgement: Judy Schmidt

Text credit: European Space Agency

Last Updated: Sep. 18, 2015

Editor: Ashley Morrow


 






Hubble Looks at Stunning Spiral


Freedawn, Scientia, Galaxy, space, Hubble, NASA, Galaxies, Evolution, Spiral, J04542829-6625280, LEDA 89996, Milky Way

This little-known galaxy, officially named J04542829-6625280, but most often referred to as LEDA 89996, is a classic example of a spiral galaxy. The galaxy is much like our own galaxy, the Milky Way. The disk-shaped galaxy is seen face on, revealing the winding structure of the spiral arms. Dark patches in these spiral arms are in fact dust and gas — the raw materials for new stars. The many young stars that form in these regions make the spiral arms appear bright and bluish.


The galaxy sits in a vibrant area of the night sky within the constellation of Dorado (The Swordfish), and appears very close to the Large Magellanic Cloud — one of the satellite galaxies of the Milky Way.


The observations were carried out with the high resolution channel of Hubble’s Advanced Camera for Surveys.


Image credit: ESA/Hubble & NASA, Acknowledgement: Flickr user C. Claude

Text credit: European Space Agency

Last Updated: July 31, 2015

Editor: Ashley Morrow


 




Hubble Sees a Galactic Sunflower


Freedawn, Scientia, Galaxy, space, Hubble, NASA, Galaxies, Evolution, Spiral, J04542829-6625280, LEDA 89996, Milky Way

The arrangement of the spiral arms in the galaxy Messier 63, seen here in an image from the NASA/ESA Hubble Space Telescope, recall the pattern at the center of a sunflower. So the nickname for this cosmic object — the Sunflower Galaxy — is no coincidence.


Discovered by Pierre Mechain in 1779, the galaxy later made it as the 63rd entry into fellow French astronomer Charles Messier’s famous catalogue, published in 1781. The two astronomers spotted the Sunflower Galaxy’s glow in the small, northern constellation Canes Venatici (the Hunting Dogs). We now know this galaxy is about 27 million light-years away and belongs to the M51 Group — a group of galaxies, named after its brightest member, Messier 51, another spiral-shaped galaxy dubbed the Whirlpool Galaxy.


Galactic arms, sunflowers and whirlpools are only a few examples of nature’s apparent preference for spirals. For galaxies like Messier 63 the winding arms shine bright because of the presence of recently formed, blue–white giant stars and clusters, readily seen in this Hubble image.


Image credit: ESA/Hubble & NASA

Text credit: European Space Agency

Last Updated: Sep. 11, 2015

Editor: Ashley Morrow



What Hubble Observed

Monday, 14 September 2015

evolution in real time


Scientia — In ongoing research to record the interaction of environment and evolution, a team led by University of California, Riverside biologist David Reznick has found new information illustrating the evolution of a population of guppies.


Freedawn, Scientia, evolution , real time, environment , population of guppies, biology, biological , conservation

David Reznick is a distinguished professor of biology at UC Riverside. Credit: L. Duka.


Working in a river in Trinidad, the researchers determined which male guppies would contribute more offspring to the population as well as which would live longer and which would have a shorter lifespan.


“We’re detailing how evolution happens,” Reznick, a distinguished professor of biology, said. “Usually people look at evolution as change over time but they don’t know the details of how it changes.”






The new work is part of research that Reznick has been doing since 1978. It involved transplanting guppies from a river with a diverse community of predators into a river with no predators – except for one other fish species, an occasional predator – to record how the guppies would evolve and how they might impact their environment.


To do this, the team, which includes Reznick’s former graduate student Swanne P. Gordon and two undergraduates working in his lab, used scales from the guppies to archive their DNA. When they returned the guppies to the river and new unmarked guppies showed up, the latter were marked and samples of their scales were taken for study. In this way the team tracked the guppies’ differential success in making babies and surviving.


“We could look at their appearance and see how male color pattern affected their ability to make babies or to survive,” Reznick said. “We used the DNA from the scales to identify who their parents were. That means we could reconstruct their pedigree and eventually know over time their success for contributing offspring.”


The research also found that males with more or larger orange and black spots produce more offspring; males with black spots also have a higher risk of mortality.


The findings, which appeared online Aug. 19 in the Proceedings of the Royal Society B, show how real time evolution can be resolved into differences among fathers in siring sons, which could be attributed to how successful the father is in finding mates or how long he lives. It also shows how evolution can link these differences to heritable individual attributes.


“People think of evolution as historical. They don’t think of it as something that’s happening under our nose. It is a contemporary process. People are skeptical; they don’t believe in evolution because they can’t see it. Here, we see it. We can see if something makes you better able to make babies and live longer,” Reznick said.




“People look at the genetics of aging in mice and apply that to humans,” he added. “But those mice are in a lab. Results from studying animals in captivity may not be the same as you get when you look at an animal in nature.”


Results from the new work could also be used in biological conservation or anywhere researchers are looking at change overtime because these methods can reveal the attributes of individuals that enhance survival and reproduction. Another important goal of Reznick’s research program is detailing how the animals are evolving and influencing their environment.


“We call this the ‘interaction between ecology and evolution,"” he said. “Animals can change their environment around them and that change can adapt to how they evolve. The idea of ecology and evolution interacting is a different view. If you look at ecological evolution, it treats animals as a constant. But this research has recorded the guppies evolving and how they change their environment as they evolve. An interaction between ecology and evolution could yield entirely different results from what you would expect if you modeled the process without the interaction.”


Reznick emphasized that evolution is not a linear process.


“It’s a series of episodes,” he said. “What we set out to do is watch and get a real sense of how evolution happens. The path is unpredictable and it is happening now.”


– Credit and Resource –


More information: Selection analysis on the rapid evolution of a secondary sexual trait, Published 19 August 2015.DOI: 10.1098/rspb.2015.1244


Journal reference: Proceedings of the Royal Society B


Provided by: University of California – Riverside




evolution in real time