20080927
Cell Movie
http://www.studiodaily.com/main/searchlist/6850.html
20080919
Lisa Randall on Colbert
http://bravenewfilms.org/blog/29097-colbert-report-lisa-randall
Synthetic biology--drugs and biofuels
Amyris is also engineering bacteria to produce other terpenoids that can be made into a type of fuel called biodiesel. Many people are interested in using biodiesel as a renewable alternative to fossil fuels, especially with concerns about global warming and energy security. Amyris researchers are doing metabolic engineering to try to maximize the amount of biodiesel that their bacteria produce. They plan on beginning large-scale production soon.
What was especially exciting for me about Tim Gardner's presentation was the idea that we may be able to use mathematical modeling to help us design better biofuel-producing bacteria. His team of scientists at Amyris are developing mathematical models of gene networks and biochemical reactions inside the bacteria. They hope to use these models to predict what genetic modifications to the bacteria will make them produce more biofuel. If successful, mathematical modeling may allow Amyris researchers to test their ideas in silico (on computers) before trying to implement them in the real world. This would be less expensive, and it might also lead to new ideas.
20080918
Large Hadron Collider
Here's an article about the LHC:
http://blog.wired.com/wiredscience/2008/09/first-beam-circ.html
And here's an interview with Lisa Randall, a theoretical physicist at Harvard who has predicts that the LHC may allow us to discover extra dimensions! (She also came to my school to give a seminar a couple of years ago...she's a really amazing scientist.)
http://video.google.com/videoplay?docid=-45154219728824809
This summer, I went to the q-Bio Conference on Cellular Information Processing. You can see the website here: http://cnls.lanl.gov/q-bio/ It was a really interesting international meeting of so-called “quantitative biologists”—people who study biology in a way that uses numbers and equations.
This is something that I’m really interested in, because it seems like a very natural way to study biology. There are numbers everywhere in biology, after all, from concentrations of a protein inside a cell to forces tugging on a cell membrane. And ultimately, everything in biology works according physical laws, which we can express mathematically.
There’s a pretty good Wikipedia article about “Systems Biology,” which is similar to “quantitative biology.” There are also closely-related things called “computational biology,” “computational systems biology,” “mathematical biology,” or “biomathematics.” Sometimes I wish they would stop coming up with new words and just call it biology!!!!
20080604
Fluorescent proteins
Fluorescence occurs when a molecule absorbs light of one color (wavelength) and emits light of another color. For instance, you can shine ultraviolet light on certain rock
s like the ones below, and they’ll emit visible light of a lower wavelength.
It turns out that some organisms like jellyfish make proteins that are fluorescent. The most famous of these is green fluorescent protein (GFP). “How can a protein be fluorescent?” you might ask. The way that this works is that there are amino acids inside the protein that undergo a chemical reaction (shown below) to generate a fluorescent molecule or fluorophore. The amino acids within the protein have to be positioned next to each other in exactly the right way within the protein in order for this reaction to occur—it’s really an amazing chemical feat!
Here are some fluorescent jellyfish of the species Aequorea victoria
The GFP fluorophore absorbs blue light and then gives off green light. What makes all of this really useful for biologists like me is that scientists have been able to isolate and make copies of (“clone”) the gene that encodes green fluorescent protein. You can introduce the gene into other organisms and make them produce GFP and glow as well. Here are some GFP animals:
(Check out GFP Bunny and glowfish)
One way that this is useful for research is that you can place the GFP gene under the control of the promoter of another gene that you’re interested in. You can think of a promoter as a sort of biochemical switch that turns a gene on and off. The promoter of a gene regulates where (in which tissues and cell types) the gene is turned on or expressed. So if you put the GFP gene under the control of the promoter of another gene, you can see where that promoter is active in the organism. This promoter-GFP combo is an example of a “reporter gene.” It’s called that because it “reports” on where the promoter is active.
Here’s a really pretty example. This is an image of transgenic (“transgenic” means genetically engineered—with an added gene) fruit fly embryos and larvae in different stages of development. In these animals, the GFP gene is under the control of a promoter that is active only in motor neurons (the nerve cells that control muscles). And so the motor neurons glow and you can see them very clearly under a fluorescence microscope.
Right now in my lab, I’m trying to create different fluorescent protein reporter genes to study the activity of different promoters. My ultimate goal is to develop a mathematical model of how those genes are regulated. My current model can be summarized with these equations:
(Don’t worry: You don’t have to understand all of that!)
My big challenge at the moment will be putting together an experiment to measure gene activity as a function of inputs and then use this data to fit and test the model. But more on all of this later!
20080413
Welcome to my blog!
Right now, I'm a college student at the University of Chicago, and I'm double-majoring in chemistry and biology. I spend my spare time working on a research project in collaboration with Professor Ilaria Rebay in the biology department and Professor Aaron Dinner in the chemistry department. Specifically, we're trying to develop mathematical models of gene regulation in fruit flies. Expect more on that later!




