Showing posts with label biological. Show all posts
Showing posts with label biological. Show all posts

Tuesday, 22 September 2015

Targeting DNA

Protein-based sensor could detect viral infection or kill cancer cells.


Scientia — MIT biological engineers have developed a modular system of proteins that can detect a particular DNA sequence in a cell and then trigger a specific response, such as cell death.


This system can be customized to detect any DNA sequence in a mammalian cell and then trigger a desired response, including killing cancer cells or cells infected with a virus, the researchers say.


DNA, Targeting DNA, Protein, cancer , Cells, MIT , biological , engineers , DNA sequence, green fluorescent protein, immune , enzyme , NTR, chromosomes


“There is a range of applications for which this could be important,” says James Collins, the Termeer Professor of Medical Engineering and Science in MIT’s Department of Biological Engineering and Institute of Medical Engineering and Science (IMES). “This allows you to readily design constructs that enable a programmed cell to both detect DNA and act on that detection, with a report system and/or a respond system.”






Collins is the senior author of a Sept. 21 Nature Methods paper describing the technology, which is based on a type of DNA-binding proteins known as zinc fingers. These proteins can be designed to recognize any DNA sequence.


“The technologies are out there to engineer proteins to bind to virtually any DNA sequence that you want,” says Shimyn Slomovic, an IMES postdoc and the paper’s lead author. “This is used in many ways, but not so much for detection. We felt that there was a lot of potential in harnessing this designable DNA-binding technology for detection.”


Sense and respond

To create their new system, the researchers needed to link zinc fingers’ DNA-binding capability with a consequence — either turning on a fluorescent protein to reveal that the target DNA is present or generating another type of action inside the cell.


The researchers achieved this by exploiting a type of protein known as an “intein” — a short protein that can be inserted into a larger protein, splitting it into two pieces. The split protein pieces, known as “exteins,” only become functional once the intein removes itself while rejoining the two halves.


Collins and Slomovic decided to divide an intein in two and then attach each portion to a split extein half and a zinc finger protein. The zinc finger proteins are engineered to recognize adjacent DNA sequences within the targeted gene, so if they both find their sequences, the inteins line up and are then cut out, allowing the extein halves to rejoin and form a functional protein. The extein protein is a transcription factor designed to turn on any gene the researchers want.


In this paper, they linked green fluorescent protein (GFP) production to the zinc fingers’ recognition of a DNA sequence from an adenovirus, so that any cell infected with this virus would glow green.


This approach could be used not only to reveal infected cells, but also to kill them. To achieve this, the researchers could program the system to produce proteins that alert immune cells to fight the infection, instead of GFP.


“Since this is modular, you can potentially evoke any response that you want,” Slomovic says. “You could program the cell to kill itself, or to secrete proteins that would allow the immune system to identify it as an enemy cell so the immune system would take care of it.”


Martin Fussenegger, a professor of biotechnology and bioengineering at the Swiss Federal Institute of Technology in Zurich, described this experiment as an “elegant proof of concept” that could lead to greatly improved treatments for viral infection.


“Sentinel designer cells engineered with the DNA sense-and-response system may one day be able to sense and eliminate viruses in our body. This would represent a quantum leap in antiviral therapy,” says Fussenegger, who was not involved in the study.


The MIT researchers also deployed this system to kill cells by linking detection of the DNA target to production of an enzyme called NTR. This enzyme activates a harmless drug precursor called CB 1954, which the researchers added to the petri dish where the cells were growing. When activated by NTR, CB 1954 kills the cells.




Future versions of the system could be designed to bind to DNA sequences found in cancerous genes and then produce transcription factors that would activate the cells’ own programmed cell death pathways.


DNA, Targeting DNA, Protein, cancer , Cells, MIT , biological , engineers , DNA sequence, green fluorescent protein,


Research tool

The researchers are now adapting this system to detect latent HIV proviruses, which remain dormant in some infected cells even after treatment. Learning more about such viruses could help scientists find ways to permanently eliminate them.


“Latent HIV provirus is pretty much the final barrier to curing AIDS, which currently is incurable simply because the provirus sequence is there, dormant, and there aren’t any ways to eradicate it,” Slomovic says.


While treating diseases using this system is likely many years away, it could be used much sooner as a research tool, Collins says. For example, scientists could use it to test whether genetic material has been successfully delivered to cells that scientists are trying to genetically alter. Cells that did not receive the new gene could be induced to undergo cell death, creating a pure population of the desired cells.


It could also be used to study chromosomal inversions and transpositions that occur in cancer cells, or to study the 3-D structure of normal chromosomes by testing whether two genes located far from each other on a chromosome fold in such a way that they end up next to each other, the researchers say.






– Credit and Resource –


Anne Trafton | MIT News Office




Targeting DNA

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