Translate

Saturday, January 31, 2015

Week 2-Semester 3: An Overview of My Research Project

Hello! Welcome back to my blog.

This week, I was ready to begin my project in earnest and move quickly into the next phase, which will deal primarily with polymerase-chain reaction (PCR) primer design for application to multiple bacterial species. What the heck is that, you say?

Well, for you new readers, the gist of my project is as follows: When a lab has a sample of unknown DNA, it can begin the identification of that DNA by running it through a thermo-cycler process known as a PCR. This process subjects the sample to repeated healing and cooling, which breaks down the DNA contained in the sample. A substance called a primer is added to the DNA sample before the PCR is run, and during the PCR cycle that primer binds to the DNA fragments and assists in replicating the DNA until there is a larger quantity of it. The resulting larger sample is then sequenced to determine what organism it originated from. Why is this important? Imagine, if you will, that a violent crime has been committed and a miniscule DNA sample, left behind by an unknown suspect, has been found at the crime scene. This sample is too small to be sequenced (checked for its unique series of genes, contained in every organism's DNA), so it is useless for identifying who the suspect is. But by adding the tiny DNA sample to the proper primer and subjecting it to the PCR process, we can create more of the DNA, sequence it, and potentially identify the culprit.


There are many different primers used in PCRs; in fact, each primer is specific to a particular organism because primers target and adhere to a certain section of genes, unique to that organism only, during the PCR. The means that the need to use the correct targeting primer during a PCR, without knowing the origin of the DNA sample you wish to add it to, can be a little like a roll of the dice in certain circumstances. If a primer could be developed that was universal, or able to be applied to multiple unknown organisms, it would greatly shorten the amount of time needed to identify an organism.

That's where my project comes in. I am looking for primers that can be universally applied to bacterial species. Because E. coli has had its entire genomic sequence mapped, and a particular section of genes that was found in E. coli has also been identified in other bacterial species, I hypothesized that there must be a primer that would work during a PCR for all bacteria. In order to prove my hypothesis, however, I first had to get a crash-course in molecular biology techniques.

As a result, previous semesters have been focused on learning, developing, and implementing those techniques. I had to not only learn the vocabulary of a new field, I had to learn DNA extraction, verification, and amplification procedures. And since a major goal of my project is to also identify protocols that could be adapted into an easy method that the average student could potentially do in a Microbiology class, I had to also simplify those procedures as much as possible while still retrieving a viable, undamaged DNA sample.

That's what I have been doing, in a nutshell. The entire project has kept me fairly busy, but like I said this week I was ready to move forward. I did, in fact, manage to significantly expand my project beyond E. coli to include seven additional bacterial species, and I have begun the process of developing a primer that will target the specific genetic sequence contained in the DNA of those bacteria. Exact details of those developments to follow in a later blog.

Until then, have a most excellent week. Enjoy this pic of some human/chimpanzee gene sequences. Notice the similarities?


www.panspermia.org
"Multiple sequence alignment of the gene sequence of the human gene CLLU1 and similar nucleotide sequences from the syntenic location in chimp and macaque.

Tuesday, January 27, 2015

Week 1-Semester 3

Hello! Welcome back to my blog!

Today was my first day working back in the lab, and I have to say that I hadn't realized how sorely the lab crew and environment was missed until I was amongst it again. I felt like I had come home the moment I opened the micro fridge and pulled out bacteria to start my first cultures of the year.I am looking forward to spending time in the lab again, with my colleagues and friends.

I am expecting this semester to be the most challenging for me yet, both inside and outside the lab. Professionally, I have continued to pick up extra work in education, thanks to the stewardship of PC's resident Developmental Education guru, Robin Ozz. She continuously pushes me to set the bar higher for myself, and under her tutelage I was recently selected for a DevEd position working with high school students. I will be prepping a group of seniors (four times a week) for the college placement exams over the next twelve weeks. Add that to the English 091 and 101 courses I am already tutoring, my ongoing job with the Phoenix Zoo, my class schedule, and the S-STEM scholarship, and I will be a very busy man indeed through mid-May. I am not complaining, however; I am very lucky to be able to do what I do. I remain always cognizant of the fact that I am able to reach for my dreams.Not everyone has that opportunity.

I am also very lucky to have the S-STEM faculty and students supporting me. Thank you in advance for helping me succeed this year! It is much appreciated.

Academically, my S-STEM project is the bright spot this semester, though I am also extremely excited to be enrolled in Biology 181+lab with Dr. Anna Marti-Subirana. I also have Calculus 1, but please excuse me if I don't jump for joy over that one. Luckily, I realized my mathematical shortcomings when I booked my schedule, so I rounded out my credit load with a 100 level class to yin the yang of Calculus.

Those of you who read my blog regularly know that I rarely get personal on here. It is, however, the first week of lab work, with little in the way of science to report. But don't get used to me being a frail human! The progress reports begin in earnest next week. :)

Until then, please enjoy the following. It is a short video on the polymerase-chain reaction (PCR), an essential component of my research. Note that the video mentions primers, a substance which allows DNA replication during the PCR; finding PCR primers that work with DNA samples from multiple bacterial species is the core of my research project.







Wednesday, December 3, 2014

Week 14, Semester 2-Wrap Up.

Hello! This final week of the semester has been consumed by data collection and its requisite formatting into both the required research paper and oral presentation, but I did manage to find time in the lab to complete one last experiment. As mentioned in previous Semester 2 blogs, the primary focus this term has been on perfecting extraction protocols and electrophoresis gel production techniques. This focus was rewarded by repeated successful DNA extractions from the initial bacteria, E. coli, and the project was also extended to included two additional gram-negative species, P. aeruginosa and P. vulgaris, as well as one gram-positive organism, S. aureus.

As a final test before the next phase of my project, I took my successfully extracted samples and ran a PCR on them using my existing primers. I then tested the resultant samples for DNA using the gel technique I developed this semester. The result? Negative for DNA. However, this is not discouraging news. In fact, the results simply confirmed my suspicion that the primers I selected based on my original review of results published in Critical Evaluation of Two Primers Commonly Used for Amplification of Bacterial 16s rRNA Genes (Frank, et. al., 2008) would not work for the species in this study. This leads me directly to the next step of this project, designing my own primers, which will resume in January, 2015. Until then, cheers!

 A scanning electron micrograph image of Pseudomonas aeruginosa cultured onboard shuttle mission STS-115, courtesy www.nasa.gov .

Friday, November 21, 2014

Week 13, Semester 2-Success!

This week my DNA research project yielded new results, which upon discovery nearly had me leaping into the air from excitement. However, I refrained from doing so lest I give lie to the calm and studious façade I have cultivated this semester, and instead allowed myself only a silent "Hallelujah" and a brief victory trot through the lab to share my results with any available listeners.

A slight change in electrophoresis gel creation methodology yielded the clearest DNA banding I have yet received during this project. I have tested different gel recipes to-date, with varying results, and recently I began testing the optimal conditions for adding the DNA stain SybrGreen directly to my uncongealed gel solution before pouring and setting the gels. Previously, I simply added the DNA stain into each well as I added the DNA sample for testing; however, these gels showed limited or zero presence of DNA banding. To test the hypothesis that a direct addition would result in improved gel performance, I conducted a comparison experiment of the two gel types. I prepared four DNA samples using an identical protocol. I then created two gels from the same buffer/agarose base. I poured one gel, added DNA stain directly to the remaining mixture, then poured the second and allowed both to set. Finally, I loaded the samples. After thirty-five minutes running @200 volts, gel one showed zero DNA present, yet gel two showed clear banding. While this result was expected, it was exciting nonetheless.

Gel protocol:

The gels utilized for this test were created using a 0.9 g agarose/100 mL buffer mixture heated for 1:45 minutes on high in the microwave. Immediately after heating, gel #1 was poured. The remaining 75 mL mixture was allowed to cool to exactly 60°C, and then 3µl of 10,000x concentration SybrGreen was added and diffused into solution using a five-second swirling action. Gel #2 was poured, then both gels were allowed to set for 20 minutes in darkness (to prevent degradation of the SybrGreen due to UV light). The buffer mixture contained 980 mL/20mL de-ionized water/50X TAE buffer stock.

I was also able to expand the project to include additional bacterial species, which was another turn towards progress as my original hypothesis theorized the existence of universal primers that can be applied to multiple bacterial species. To-date, all experiments have utilized only E. coli. With this experiment, Pseudomonas aeruginosa, Proteus vulgaris, and Staphylococcus aureus were also subjected to extraction and gel testing. All four species yielded positive results after electrophoresis, with the gram-positive S. aureus providing the most limited results. These were the results I both projected would occur and hoped for. After some additional testing to replicate this week's results with the added bacterial species, this project should now be able to move forward to the next phase, which is intended to focus on primer design.

Altogether, it was a successful week. Please enjoy this photo of my gel results until the next blog. Cheers!
Left to right: E. coli, P. aeruginosa, P. vulgaris, S. aureus

Thursday, November 20, 2014

Week 12, Semester 2

This week is focused on expanding my extraction protocols to include additional bacterial species. To date, E. coli has been the sole species utilized for all extractions and polymerase chain reactions(PCRs). The additional species that have been included are : Pseudomonas aeruginosa, Proteus vulgaris, and Staphylococcus aureus. The two former were chosen due both to availability and their status as gram-negative bacteria; the protocol I am using for extractions was specifically developed for application against gram-negative species, due to the structural differences that exist between gram-negative and gram-positive species. S. aureus, though gram-positive, was selected both to test to efficacy of the gram-negative protocol against a positive species and to be used as the base species for design of a gram-positive specific protocol. It is expected that my current protocol will be ineffective at producing DNA from a gram-positive organism due to the gram-negative specificity of the cell lysing agents used in the developed protocol, thus a separate protocol will have to be designed.

Until the next blog, please enjoy the following links.

Everything you always wanted to know about unlocking and sequencing the human genome can be found at this fascinating Smithsonian website:
http://www.genome.gov/smithsonian/

Gain access to my personal favorite scientific study, the Gombe Research Project, which Dr. Jane Goodall has been conducting for more than 50 years; use Google Earth to enjoy the panoramic views of chimpanzee individuals, their family groups, and the Tanzanian park within which they reside.
http://www.google.com/maps/about/behind-the-scenes/streetview/treks/gombe-tanzania/

Photo credit: Fanni, photographed by Anup Shah for National Geographic Magazine.
Access additional photos and background information at:
http://ngm.nationalgeographic.com/ngm/0304/feature4/zoom4.html



Thursday, November 13, 2014

Week 11, Semester 2-A Much-Needed Break

Hello! Last week, I was able to join our fellow scholars and faculty advisors for a welcome bit of rest and relaxation on our first field trip of the semester. We piled into the van and headed for Dreamy Draw Park and Recreation Area to hunt for an (alleged) alien crash site, do a little hiking and geo-caching, and eat lunch courtesy of Phoenix College. Who knew exercise and getting a sunburn could be so fun?

Even though the nearest Starbucks drive-through was miles away, somehow we managed to have a great time, use GPS, and learn about ephemeral desert washes before the day was over. No alien life forms were spotted, but somehow it didn't matter when I looked around at the smiling faces of this semester's team of scholars and faculty and realized once again how lucky I am to be part of this crew. It saddens me to think that another semester has almost come and gone, and before long this program, for me, will have concluded.

Next week I will pick up my research again, and begin drafting this semester's research paper. Until then, please enjoy these candid pics from our outing.




Thursday, November 6, 2014

Week 10, Semester 2

Hello! And welcome back to this blog.

This week has been focused on reviewing the data collected thus far and determining the next steps of my research project. I have decided to analyze genomic sequences of the various bacteria named in my abstract for sequence correlations; this will allow me to predict a primer design that will result in DNA amplification during the polymerase-chain reaction (PCR) process. This design prediction is in line with my original project hypothesis, which is that there are universal primers for PCR usage which will successfully amplify DNA from seven common bacterial species (all species are named in my abstract; see blog Week 6, Semester 1 for details.)

After primer design is complete, the next phase of this project is to repeat the procedures used to conduct extractions on E. coli. The entire protocol testing process will not be repeated; only the protocol and precipitate solutions found to be successful at extracting E. coli will be used on the six remaining species. Then, bacterial samples from all seven species will be submitted for PCR amplification using the specific primers that were designed.

This next phase begins in earnest in Week 11. For my remaining lab time this week, I will be joining the Biology staff and other S-STEM scholars on a much-needed off-site field trip to the Dreamy Draw Park & Recreation Area. For those of you who are unable to attend, please enjoy this shot of our beautiful desert, taken from within the park.