This week in my AP Biology class, we had the opportunity to participate in a fetal pig dissection to explore the Kingdom Animalia. In previous classes and camps, I have dissected a frog, worm, squid, and fish... but this so far was the most interesting!
Edu, byTeam Leverage, et al. “18 Interesting Science Experiments for Class 6 at Home.” Leverage Edu, 14 Mar. 2021, leverageedu.com/blog/science-experiments-for-class-6/.
Due to Covid-19, the amount of hands-on labs we have completed this year has been minimal. So, when given the opportunity, my class was excited to watch our teacher dissect a fetal pig and teach us about the different structures in our body! What I found interesting about this lab was getting to see how the organs and tissues package together and fit within an organism. It was fascinating to discuss the different structures and functions of each organ and relate this to the human body and previous topics in AP bio. Our class was able to make connections to previous units that covered the topics of cell structure, diffusion, osmosis, enzymes, and evolution. As our teacher completed the dissection, we eagerly discussed how these topics related to the many processes that occur in our body!
Vectorwin, et al. “Probiotic Icon Vector. Isolated Contour Symbol Illustration Stock Vector Art 1213467627.” IStock, www.istockphoto.com/search/2/image?mediatype=illustration&phrase=small+intestine.
For example, when exploring the coiling small intestine, we noted how large the surface area to volume ratio was. Then, we connected this back to our topic of osmosis and diffusion, discussing how a large surface area to volume ratio allows water and important nutrients to diffuse at faster rate - because there is more surface area (room) for these molecules to diffuse through. This is beneficial to the organisms because the organ will get the important water and nutrients it needs for the cells to function properly.
This investigation left me curious about about my own body and the many processes happening in these complex systems! Overall, I really enjoyed being able to participate in a hands-on lab that explored Kingdom Animalia. Fascinating!
Check out this short video on how to dissect a fetal pig! Note - content may be disturbing to some viewers:
Protista is more or less the catch-all phylum of the life classifications. Anything that cannot be classified as plant, animal, or fungi is placed here. This results in an extremely diverse, and truly captivating group of organisms. One of the most common protists are seaweeds. My team and I explored different seaweeds, and various other types of protists for this lab, to get a better idea of what truly makes up this mosh pit of life.
Today in class we had a visit from Modern Explorer, Alizé Carrère, through the Exploring By The Seat of Your Pants discussion. Carrère is a National Geographic explorer, filmaker, PhD student, and current researcher of how humans adapt to environmental change.
Ever since she was a child she has been very in tune with the environment, as she lived in a home with a three hundred year old oak tree growing through the porch. This unusual feature of her home. sparked her interest in the environment and science. Since she has moved on from her home in Ithaca, New York she has been involved in work surrounding how people interact with the world around them.
Carrère has had access to so many amazing travel opportunities through her work with National Geographic. For example she has done work in Madagascar, the Falkland Islands, Bangladesh, and the Philippines. In Madagascar she studied how farmers dealt with deforestation. She found that farmers had adapted to their new landscape by creating holes to move water down hillsides and control the irrigation of their crops.
National Geographic has granted Carrère the opportunity to host a series called Modern Explorer where alongside co-host, Tom Richie, Carrère looks into what makes an explorer. Her visit to the Falkland Islands and South Georgia consisted of studying fur seals and king penguins among others. She mentioned that she chose Richie as her co-host because he has a lot of experience traveling for scientific research. As he is an older scientist, he brings a different perspective of travel and methods of conducting research. Carrère explains that he bridges a different generation of explorers. In the first episode of Modern Explorer, Carrère notes the differences between her and Richie’s form of documenting their findings. Carrère’s method consists of many pictures and journal entries while Richie has shelves and drawers of his findings in a shack by his house. The two forms of documenting shows how much technology has affected our world and the way we keep track of information.
Alizé’s talk today has become one of my favorite Exploring By The Seat of Your Pants discussions! I would love to travel just like her and I thoroughly enjoyed hearing her anecdotes accompanied by pictures. I found her ties to Crash Course and National Geographic inspiring because I think they are two well known groups for education and she is able to be deeply involved in both. Her small beginnings with science has led her to pursue filmmaking and scientific research in a combination of interests. I would recommend watching her session on Exploring By The Seat of Your Pants linked here: https://youtu.be/H5csJka6hZ8. I will definitely be keeping up with her journey through social media and Modern Explorer.
Again, here is her Exploring By The Seat of Your Pants session:
https://youtu.be/H5csJka6hZ8
Here is a link to the Modern Explorer Playlist on National Geographic's Youtube:
https://youtu.be/rR-C7VUB9B8
If you would like to look deeper into Alizé's journey, here is a link to her website:
My team and I had the chance to listen to Alizé Carrère. After having already the chance to listen to some other groups this is my personal favorite one so far. She was super energetic and kept the group engaged during her presentation. She is a modern explorer and discussed her experience about how it has been working in this field. During her presentation, she discussed how outside of her childhood home there is a tree that would grow right infant of their home. When hearing this, she then led on to explain how there was even a joke in her family that the tree was another member of her family. While she then stated how this helped her recognize the importance of keeping our environment intact as she said how her family had to remove slowly the front porch for the tree to be able to continue growing. She then went on to discuss how she has a youtube channel called Modern Explore which my classmates and I have been watching. She then discussed about a man named Ernest Shackleton who was an explorer and how he was attempting to go to Antarctica but, never made it there because of misguidance and misinterpretation. At one point, the explorers were drifting in the sea for nine months until they finally reached land (but before their ship had sunk and they went on into a lifeboat). Although, when they arrived no one was to be spotted. So, he told his crew to stay put and was gone for four months. His crew had to keep hope that one day he would arrive back to them with help (also considering the factor that they did not have any way of communicating). Having this in mind they had no real security nor the right equipment for where they were. Especially, with the note that there was much snow and their clothes were not well suited and I believe they only had a few items such as nails, a lamp, rope, and standard outfits (that would have been most likely wet she stated). Luckily on August 13, 1916, he had arrived back and saved his crew. Even though the team did not make it to Antarctica he brought everyone alive and showed how great of a leader he was. Overall, this was a miracle especially with the fact that the crew were most likely starving/having frostbite and so on. The extremes are purely insane to imagine. Continuing on she discussed how she was able to travel to the site where Ernest set path when attempting to find help. Later, to then state how as an explorer there is no need really in having an expensive camera. As she said that she typically uses her phone and a notebook when exploring. After discussing this she led on to discuss how Tom Ritchie is in a sense a mentor for her. She even stated how she believes that he has traveled to Antarctica the most out of everyone (in the world). Alizé then explained that she hopes that once COVID-19 is gone; Tom and her will be able to resume and continue with their series (Modern Explorer). I enjoyed this presentation and I hope that she can create more content as the year go on!
Today in AP Biology, our class watched a NOVA documentary about how epigenetics affects gene expression. When the entire human genome was mapped, scientists were surprised that there were only about 25,000 genes, the same as fish or mice. This was not expected because humans are more complex than organisms such as fruit flies. Scientists began to wonder what else may contribute to human complexity other than genes, mainly epigenetics.
What is the epigenome? Epigenetics translates to “above the genome”. The epigenome consists of histamine proteins that wrap around the DNA which provide structure. These proteins can either activate or turn off certain genes. When proteins “hug” the DNA tightly, then it is hidden from view for the cell, and cannot be expressed. Environmental factors such as diet and stress can impact the structure of the epigenome which affects how the genetic code is read and expressed.
The movie illustrated this concept with an example of how identical twin mice can weigh differently depending on the activation or deactivation of the agouti gene. The methyl group marker turned off the agouti gene in the thin mice. Scientists were able to control the offspring of the fat agouti mice by silencing the agouti gene in the mother with certain minerals. The change in her genome passed to her offspring resulting in thin baby mice.
To further understand the impact of epigenetics, the film discussed some studies done on identical twins. Because identical twins have identical genomes, any differences between the twins can be traced to the impact of epigenetics. Scientists can determine exactly how these chemical markers can affect the expression of genes. In a study, the researchers used DNA from identical twins and compared gene expression. The scientists observed how the epigenome in twins differentiates over time from outside experience. Although twins may have the same DNA, their epigenome can become completely unique.
The film showed another study done with rats. Scientists concluded that environmental factors can change the expression of DNA within a lifetime and pass down those changes to following generations. The researchers observed two groups of rats, one with nurturing mothers and the other with detached mothers. The offspring of these two groups significantly responded to stress differently. This was not from genetic differences but their environmental experiences. When studying the epigenomes, they discovered discrepancies in the markers on genes that affected stress response.
The movie went on to discuss how environmental factors can lead to human disease. When epigenetic changes silence tumor suppressor genes or active oncogenes, the regulation of the cell cycle can be affected. This can result in overstimulation of cell division or an inability to inhibit cell growth leading to tumors or cancer. Doctors have started doing epigenetic therapy for diseases such as cancer. Medical professionals can now treat patients with drugs that remove silencing tags that turn off the tumor suppressor genes. Over half of these patients have experienced significant remission in their cancer growth with minimal side effects. One example patient explained how he has now been cancer-free for two years after receiving this epigenetic treatment.
The speaker went on to describe how epigenetics can help explain why a specific gene for autism has yet to be found. Because the epigenome can affect the expression of any gene, it is difficult to identify a specific sequence that was chemically tagged to turn on or off. Additionally, for each individual, the markers may affect DNA differently. The film showed a set of identical twins where one sister had autism while the other did not. Since their DNA is identical, the epigenome would make the difference in their conditions.
At the end of the movie, the episode focused on the information found in a Swedish village that helps to explain more about epigenetics and inheritance. Scientists tracked births and deaths for centuries alongside the frequent famines that occurred. The researchers were initially looking at the connection between poor nutrition and health. During the study, they discovered that the available food supply from one generation affected the grandchildren with an increased or decreased risk for diabetes. This was not from direct mutations to DNA but the environmental information tagged on the epigenome.
After watching this documentary, I was surprised by the complexity that epigenetics adds to gene expression and our understanding of human DNA. I am excited to see how this science will develop in the future especially with improvements for medical treatments. The conclusions made from the Swedish village made me rethink the choices I make today knowing they can affect my children or grandchildren later on. Learning about this "second genome" provided insight into how experiences can mold genomes within a lifetime and live in following generations.
In class, I got to meet two very inspiring women who spoke about their passion for genetic counseling, Quinlyn Highsmith and Brooke Nightingale! One thing that was very interesting to hear about was how Quinlyn found her passion and how she recommends we find ours. First, she suggested that we focus on what subjects we find most interesting in school and then research careers that have to do with these subjects. She also recommended shadowing people at different jobs because it will help us observe what daily life would look like in that career. I really enjoyed hearing about Quinlyn’s suggestions because I have never even thought of shadowing different places to determine if a specific job is what I want to pursue. This is a great tip and piece of advice that I will definitely use in the future to explore more about the possible jobs that I am thinking of applying for.
Next, hearing about Brooke’s experience with genetic counseling was a little bit different because she has more experience in this field. I learned so much from her presentation and found the stories of her clients very interesting. One thing that Brooke taught the class about was Androgen Insensitivity Syndrome. This was a very engaging topic because I have never heard about this condition before. Brooke had two female clients who were curious to know why they had not gotten their period yet by the time they were 16 and 20 years old. After running tests and analyzing the results, Brooke found that they had Androgen Insensitivity Syndrome which is when someone has an X and a Y chromosome (which males have), however, their body cannot respond to some male hormones. This is why people with this condition may have some physical female characteristics, but be genetically male, thus not getting a period. This really surprised me because conditions like Androgen Insensitivity Syndrome are definitely not talked about very often, ultimately making these lessons and topics more taboo. Although Brooke’s presentation touched a lot on topics that I have explored in my AP Biology class, such as inheritance, family pedigrees, and disorders such as breast cancer and Alzheimer’s, she also introduced a completely new condition that I have never gotten to learn about before!
After sharing this with us, I felt very connected to Brooke’s story because she reminded me of a nurse. She spoke about how delivering this kind of news to her clients is very difficult to do, which is why it is so important for her to be a strong support system for others. I respected Brooke on a deeper level after this because I realized that she is not just examining tests and reporting what she finds, but she is also delivering life-changing information that ultimately breaks family’s hearts. This is why I loved when she recognized that a huge part of her job is to continuously be compassionate and supportive to whoever she is working with.
Although I got to spend an entire class period learning from both Quinlyn and Brooke, I am still curious to hear about Quinlyn’s future and other clients that Brooke works with! I have included a picture below, that Brooke shared with my class, about the multiple tasks of a genetic counselor in case you are interested in pursuing a career in this field!
Secret codes… we often think of these devices being used to open safes or hidden passages. Although there is a secret code hidden inside all of us, in the form of DNA. DNA is a nucleic acid found in the nucleus of our cells. DNA contains our genetic code, which sequences for the creation of proteins that help our body to function properly and also determines our phenotype. These sections of DNA that code for the genes that produce specific proteins, have a unique sequence of nitrogenous bases (Adenine, Guanine, Cytosine, and Thymine) that determine what the protein produced will be. If there is even a single mutation in this sequence, a misplaced nitrogenous base, a certain protein will either not be produced or it will be produced incorrectly meaning that the protein will not function properly either. These genetic mutations, which can sometimes be passed from parents to offspring, can lead to diseases, such as cystic fibrosis or down syndrome, due to the dysfunctional proteins produced, or not produced. So essential DNA is the secret code for human life and development. And if this secret code is discovered, meaning the whole genome is sequenced, it can be beneficial to some individuals but damaging to others as well.
("What Kinds of Gene Mutation…”)
This image demonstrates the result of even having a single mutated base in a gene sequence. The shape of the protein produced could be altered, meaning the protein cannot function properly, or no protein could be produced at all. Knowing these mutations in the genome can help doctors to diagnose an individual, and by editing these mutations with CRISPR the correct protein can hopefully be produced and the body can begin to function properly.
Due to advancements in technology our society has been able to sequence DNA, meaning the entire genome of an individual was read. Through sequencing, certain mutations can be distinguished and therefore a cure/prevention method can be found. This technology has been developed to the point where an individual's DNA, or at least sections of it, can be sequences in a fast, accurate, and cost effective manner. This means that certain companies, such as 23 & Me, are able to collect an individual's DNA and go through certain parts of gene sequences to determine if that person is more or less prone to developing a certain disease. Since only a portion if the DNA is sifted through, these results cannot be entirely accurate since the development of these diseases usually rely on environmental factors as well as other genes.
All of this new information can be very helpful to treating diseases and cancers, such as cystic fibrosis or melanoma. Scientists can determine the mutation in the genotype of the sick individual and fix the issue. In the case of cystic fibrosis, gene based drugs are given to the patient to allow the mutated protein to stop producing the thick mucus that is causing their problems. Scientists sequenced the genotype of skin cancer, melanoma to be exact, and found that some patients have a mutation in the BRAF gene which causes the cells to replicate rapidly and uncontrollably. So scientists have found that giving a specific drug can inhibit this mutated protein from sending the signals to the cells that cause them to rapidly divide, therefore stopping the spread and growth of this skin cancer. This new discovery has allowed scientists to make some amazing advancements that will allow people to treat their diseases in a more effective manner, these treatments customized for their specific genome, or take preventative measures to ensure that a certain disease that they are prone to does not develop.
A result of this study of the human genome has also allowed for the development of CRISPR technology. This method allows scientists to address the genetic mutation directly, and replace the mutated nitrogenous base with the correct base. This will allow the correct protein to be produced and the body to work efficiently on it’s own once again. If you would like to learn more about the exact details of how CRISPR works and controversy surrounding the discovery, please feel free to check out this link: https://www.wired.com/story/wired-guide-to-crispr/
While DNA sequencing for the most part has had many benefits, there are a few dangerous consequences that have developed from the discovery of this new technology. For example, people who discover that they have the BRCA1 gene, which is associated with developing breast and ovarian cancer, may be more likely to get married and have children before they are really ready so that they can have their breasts and ovaries removed. This person will rush their life because of this new information that they found out, meaning that they may not have thought through their decisions to ensure they would be entirely happy with their spouse. Companies or banks could also get a hold of your genetic information and begin to discriminate against you based on what diseases you are more prone to develop. And finally, the development of CRISPR may also mean the development of “designer babies”.
Scientists have stated to generally edit embryos to see if they would be able to prevent a child from being born with a genetic disease that their parents may have passed down to them. While this started with good intentions, as the technology developed it became harder to control what others would be doing with CRISPR. Many want to genetically edit their children so that they can have favorable traits or skills, such as height, intelligence, or physical abilities. Fortunately the scientists in the documentary say that since these traits are linked to so many different genes on so many different chromosomes, it would be very difficult to make the edits necessary for the baby produced to have these traits. Still the world is not quite yet ready for CRISPR babies, yet some scientists overstep the bounds. One scientist edited an embryo to ensure that the children produced would be resistant to HIV, and while this seems like a good cause the edit was not necessary since there is already medicine present that treats HIV. The samples that the scientist used were also not meant to be developed into human life, yet still two baby girls were born who are resistant to HIV due to genetic editing. If you would like to learn more about the scientific community's response to the scientist and how access has changed to get these embryo research samples because of this incident, please take a look at this link: https://www.wired.com/story/us-biotech-firms-made-chinese-crispr-babies-possible/?mbd=GuidesLearnMore
("#110 Gattaca, 22 Years Later")
This Sci-Fi movie from 1997 explores the societal impact of knowing your peers genetic code and having the ability to edit this code before birth. This film plays on the fear that if this genetic code is known it can be used to discriminate against individuals, adding another reason for our picky society to favor certain individuals and leave others to suffer for something that is not their fault.
As one can see, understanding an individual's genome can have benefits, but there are also many downfalls as well. With these new technological and scientific developments our society must create a more solid ethical foundation on what is considered “right”, and what is “going too far”. At what point must we sacrifice scientific development in order to ensure that we stay true to our ethics and are protecting every human, and future generations, from the discrimination or other unknown side effects that may go along with understanding and editing the human genome. Knowing about your DNA can be a life-altering experience, but depending on the mutations in your sequence it can either save your life or make you aware of your imminent downfall.
Works Cited
Molteni, Megan, and Grace Huckins. "The WIRED Guide to Crispr." Wired, 1 Aug.
As biophysicist Gregory Stock states “we are entering an era of unprecedented self knowledge” as “we are beginning to understand the processes that constitute our cells where we can intervene to take control of our own future”. The documentary Cracking Your Genetic Code discusses the ways in which advancements in the field of genomics is changing the world.
The first time a genome was sequenced took thirteen years, hundreds of scientists and billions of dollars. Now gene sequencing, genotyping and gene testing is becoming more readily available and integrated into our society. For example, the biotechnical company 23andMe allows one to access their genetic information and risk for possible genetic diseases for two hundred dollars. This means that many people have access to their genetic information especially as more and more companies develop this technology. However, no technology can fully and accurately predict a health condition because the technology is still relatively new and there are still so many unknowns about the human genome. As stated in the documentary, “the vast majority of genetic information is largely probabilistic” (Cracking Your Genetic Code).
The presence and availability of this technology asks the question: How will knowing what the diseases you might have in the future affect the way you live? Katie Moser decided to get tested for the gene which causes Huntington’s disease because the gene ran in her family. The test results indicated that she had the gene and therefore had a high likelihood of being diagnosed with Huntington’s disease later in her life. With this information, she believed she could better plan for her life. Contrarily, Catherine Elton intentionally did not do gene testing even though she knew that there was a chance she could have a mutated BRCA1 (because the gene ran in her family). She believed that if she knew she had that gene, she would be carrying a burden which would constrict her from living her life to the fullest. Ultimately, she was diagnosed with breast cancer when pregnant with her second child but claimed she would not have changed her decision to do gene testing.
The images below gives a visual example for how genetic sequencing works, using a liver (DNA Sequencing Process). The second image is a close up of how the gene sequences can appear on a computer for scientists to analyze. Each color represents one of the four nitrogenous bases that make up DNA('Measuring Stick' Standard for Gene Sequencing)
This documentary left me thinking a lot about the future of biological sciences. The possibility of our genome being the new way in which we define ourselves in the coming years is not absurd. In my opinion, this idea is frightening because genetic information adds another factor in which one can be discriminated against and adds more complexity to things such as privacy. But I also find this new form of self identity to be exciting because this means we are gaining more and more insight into one of the greatest mysteries: human life.
The trailer to the documentary Cracking Your Genetic Code is attached below! Also, if you have a library card you can watch the documentary through Kanopy.
Works Cited
Cracking Your Genetic Code. Dir. Sarah Holt. PBS, 2012. Kanopy. Web. 24 Jan. 2021.
DNA Sequencing Process. National Human Genome Research Institute, www.genome.gov/about-genomics/fact-sheets/DNA-Sequencing-Fact-Sheet. Accessed 24 Jan. 2021.
'Measuring Stick' Standard for Gene Sequencing. NIST, 21 May 2015, www.nist.gov/news-events/news/2015/05/measuring-stick-standard-gene-sequencing-now-available-nist. Accessed 24 Jan. 2021.
"NOVA | Cracking Your Genetic Code." YouTube, uploaded by NOVA PBS Official, 9 Feb. 2012, www.youtube.com/watch?v=UPzid88oSFc. Accessed 24 Jan. 2021.
In my AP Biology class, our teacher tasked us with a unique way to build a DNA molecule. Half the class had instructions on how to build the molecule while the other half had the materials. We would be paired with someone who had the opposite of what we had, in order to work together to build a DNA molecule. One of the teammates read the instructions while the other constructed the molecule. I had received the materials to make the molecule.
When I pulled out the bag full of materials to build a DNA molecule I thought to myself, ‘How will I make a DNA molecule from these materials?’ I was pretty nervous to build my DNA molecule because I was not sure if my group would be able to communicate well. I have never done something like this before, so this added to the unpredictability of the task. However, my group worked well together and our communication was better than I expected. I actually finished my DNA structure quickly and was impressed with my team's fast progress. This experience was so unique because I was able to build something without the instructions and instead have someone read them to me through the screen. It was fun to be able to work with my peers on this simple yet complicated task.
The model of DNA that I created accurately represents an actual DNA molecule. The grey, green, blue and red straws represent the four different bases that make up DNA; Adenine, Thymine, Guanine and Cytosine. Adenine pairs with Thymine just like the grey pairs with the green and Guanine pairs with Cytosine just as the blue pairs with red. The DNA structure I built also shows the spiral like structure our DNA has. One of the sides of the structure has a “red ball” at the top while the other side has this at the bottom; this serves to represent how one of the sides of the DNA is 5’ to 3’ while the other side is 3’ to 5’. Attached below is a YouTube video that is very helpful if you would like to learn more about the structure of DNA!
While making this DNA molecule, I was thinking about the process of DNA replication. This process occurs in the nucleus and happens during interphase. A majority of the “key players” in this process are enzymes (this is evidenced by the names of the molecules; they all end in “ase”!) The first step in DNA replication is when the helicase protein unwinds the DNA. Then SSB proteins bind to DNA strands and primase creates the primer for the DNA. DNA polymerase is the protein that begins to build the new DNA. DNA polymerase can only work 5’ to 3’. The ligase protein is thought of as the gluer because it binds the new molecules to the DNA. The process of DNA replication is semi- conservative meaning that with the DNA molecule created, there is one original strand and one new strand. Attached below is another video on DNA replication if you would like to learn more about this process!
Do you ever wonder why you get your flu shot in the winter time? Or why when it's colder and drier you tend to get more sick? In this video, we will be discussing the Influenza Virus and the Vaccine for the Flu, and how they are all affected by the seasons changing!
Works Cited
All Images by WeVideo
“Colds and Flu: Why Do They Strike in Winter?” Medical News Today, MediLexicon International, www.medicalnewstoday.com/articles/320099.
Dobson, Roger. “Flu Costs the US $90bn a Year, Report Shows.” BMJ : British Medical Journal, BMJ Publishing Group Ltd., 2 June 2007, www.ncbi.nlm.nih.gov/pmc/articles/PMC1885332/.
Klepser, Michael E. “Socioeconomic Impact of Seasonal (Epidemic) Influenza and the Role of over-the-Counter Medicines.” Drugs, Springer International Publishing, Sept. 2014, www.ncbi.nlm.nih.gov/pmc/articles/PMC4149741/.
Krug, Robert M., and Robert R. Wagner. “Virus.” Encyclopædia Britannica, Encyclopædia Britannica, Inc., 18 Aug. 2020, www.britannica.com/science/virus.
Says:, Nic Bernhoeft, et al. “The Reason for the Season: Why Flu Strikes in Winter.” Science in the News, 4 Dec. 2016, sitn.hms.harvard.edu/flash/2014/the-reason-for-the-season-why-flu-strikes-in-winter/.
“Selecting Viruses for the Seasonal Influenza Vaccine.” Centers for Disease Control and Prevention, Centers for Disease Control and Prevention, 4 Sept. 2018, www.cdc.gov/flu/prevent/vaccine-selection.htm.
“Understanding How Vaccines Work.” CDC Vaccines, July 2018, www.cdc.gov/vaccines/hcp/conversations/downloads/vacsafe-understand-color-office.pdf.
After choosing one question to research I was able to look into why some organisms can be carrier to viruses that kill humans. To understand this better I looked at the human immune system, bat’s immune system, and looked into why some people are asymptomatic. Although there is no definite answer yet there is much valuable info that is helping more people research why viruses work the way they do.
I am very curious about the impacts that gene editing can have on the future of viruses. I think that the subject has some serious promises when it comes to revolutionizing the epidemiology field. I want to be someone who is known for pushing the boundaries and causing positive change in the science world. I think that this question is very interesting and I thoroughly enjoyed researching this topic. If you are interested in the answer to this complex question watch the video!
Simon, A Katharina, et al. “Evolution of the Immune System in Humans from Infancy to Old Age.” Proceedings. Biological Sciences, The Royal Society, 22 Dec. 2015, http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4707740/.
I found that these were pretty difficult for me. I think that sketch notes are a great way to learn and to make connections. Though I did feel like it takes me longer to process things and to actually find a connection between words and pictures. Then trying to organize it in a way too so that other people were able to understand it and see my way of thinking.
Season 10 was all about the body systems as we virtually dissected a fetal pig. To demonstrate our learning, Kristen and I created a newsletter that describes each body system and has a reflection of the fetal pig dissection that we witnessed. Hope you enjoy!