Showing posts with label Death. Show all posts
Showing posts with label Death. Show all posts

Monday, May 9, 2011

What Matt Knows About the Human Body (based on prior knowledge and way too much time spent watching scrubs)

As of right now, my knowledge on the human body is limited, and most of it is derived from random bits and pieces of info that have accumulated in my mind over the course of my life as well as a bits and pieces from watching the TV show, "Scrubs." First off, the human body is a system. It is an intricate piece of machinery that is made up of many smaller systems that must all work in tandem in order to run smoothly. When one metaphorical cog in the machine malfunctions, it can cause negative affects across the board. Some of these systems within the human body include the nervous (cue the puns), circulatory, digestive and respiratory systems, among others. The circulatory system is one's blood. Blood is critical in delivering oxygen and other nutrients to different areas of the body. Muscles, for instance, need oxygen to operate. Now where does the blood get this oxygen, the curious child asks, well let me tell you. The oxygen must come from outside of the body, and it gets inside via the respiratory system. The respiratory system revolves around the lungs. When one inhales, they breathe in oxygen, among other things, and this oxygen is then carried through the blood stream. This illustrates the intricate interconnectedness of the human body. Systems rely on systems, and if system doesn't fulfill its duty, the others suffer as a result. The human body is like a well oiled machine, and it needs to prevent malfunctioning. This is done by the immune system which strives to prevent disease or sickness from falling upon the body. Although I am aware that the human body is a metaphorical interdependent machine, I am not at all educated on the specifics of how exactly the systems work perfectly in tandem. In this next segment, I will simply list random facts about the body that I know, and I hope that charging headfirst at this unit, metaphorically of course, will help me understand how all of the different facets of the human body are able to perform together as one.

Random Facts:

  1. There are four compartments of the heart
  2. The thyroid is a butterfly shaped gland surrounding the larynx
  3. A possibly malignant skin tumor can be differentiated from a benign mole by its appearance. Often, malignant moles will be darker in color and have indistinct borders.
  4. The appendix is a non-essential organ and can be removed. This also applies to the gal bladder
  5. Only one healthy kidney is needed to live
  6. The liver has a lot of smooth endoplasmic reticulum
  7. The small intestine is longer than the large intestine
  8. Renal is a word that indicates association with the kidneys
  9. The pituitary gland controls the thyroid gland
  10. Blood travels through capillaries, arteries, and veins
  11. Due to a process called peristalsis, the esophagus can move food towards the stomach even if the person is upside down
  12. Heartburn has nothing to do with the heart
  13. An air bubble to the jugular is lethal
  14. When talking about blood, shock is an actual medical term that does not refer to a person being stunned mentally or emotionally
  15. Most of the body is made up of water
  16. One's wingspan is roughly equal in length to how tall the person is
  17. I am nervous to learn about the nervous system. Zing!
I hope this post was satisfactory and if anybody feels the urge to comment, let me know who you think would win in a fight, Brock Lesnar or DinoCroc.

Thursday, March 10, 2011

Jean-etics and the Lavv (Genetics and the Law)


In recent years, due to a dramatic advances in genetics research, many legal and bioethical issues have arisen about how gene research can and cannot be used. Although many of these issues have arisen, I am going to turn my microscope on to the 40x lens and focus in on legislation related to stem cell research and legislation related to discrimination based upon genetic make up, just two bioethical issues on the slide of genetics and the law. First I will delve in to the mysterious concept of discrimination based upon the genes that one is born with.

This concept, as implausible as it may seem, is actually fairly possible. This is well illustrated in a movie called GATTACA (For some unknown reason when you turn on captions that transcribe the audio the name changes to CUAAUGU), where job interviews consist of having one’s DNA read. Legislation been around this has been discussed for around 15 years, but a bill was only recently passed by former President George W. Bush in 2008. Legislation regarding this scenario is pretty straightforward; discrimination against any person because of their genetic makeup is not permitted in the United States. This pertains particularly to hiring companies and insurance companies. Companies are forbidden from using genetic tendencies towards disease as factors when hiring or promoting. Also, insurance companies cannot mandate genetic tests or use similar data in deciding whether to insure a certain person This is instrumental because many people refused to get genetically tested even when it opens up many treatment options due to fear of unemployment or lack of insurance. It seems like a stretched comparison, but if discrimination was allowed to reach the point of genetics, it would share qualities with racial discrimination of the 1960s. In the 1960s, black people did not register to vote for fear of the registrar contacting the attempted registrants employer and having the attempted registrant fired. In that scenario, the discriminated had to abstain from voting and if a situation analogous to life in GATTACA arose, people would steer clear of getting genetically tested. Refusing to get genetically tested could lead to people not learning about hereditary or other diseases as early as they should, which in turn severely limits treatment options. This so called Genetic Information Nondiscrimination Act is instrumental in preventing our world from becoming a utopian world full of unfairness such as the worlds in sci-fi movies like GATTACA and Minority Report.
 Here is a sketchfu I put together that would be very useful for a PSA if this bill hadn't already been passed or it could be useful if our world goes all GATTACA on us.

Make your own drawings at SketchfuMore from this artist at SketchfuShare this drawing from Sketchfu
Learn how to draw cartoons, comics, and anime at Sketchfu!


Now let’s have a rhetorical discussion (you can comment if you must) about stem cell research and legislation related to it, particularly Executive Order 13505 that was issued by President Barack Obama in March of 2009. Stem cell research, ever since its discovery, has led to many advances in science. If you would like to learn more about stem cells as a whole, you can check out my fellow classmates blog post about it here: http://sarasbioblog.blogspot.com/2011/03/stem-cell-research.html. Essentially, this order allows stem cell research, as long as it is carried out responsibly and used only for advances in medical research that are legal. This order also provides guidelines and budget for the NIH to research stem cells. In addition, this order revokes a previous presidential order that put restrictions on stem cell research. This EO was issued because stem cell research is quickly advancing and has the potential to help many medical treatment processes and open many doors.

Sources: 

 I DARE YOU CLICK THIS AND THIS

Monday, February 14, 2011

Thahy-roid Kan-ser [ Thyroid Cancer ]

Please enjoy my beautifully composed analysis of thyroid cancer. If I were a teacher, I would make a new grade just for this paper and give it an A++, but that's just me. In lieu of pictures throughout the paper, you can view my also A++ worthy powerpoint that is fairly incoherent when I am not there talking and filling in the blanks, but knock yourself out.

Matt Pendo
2-13-11
Thyroid Cancer

Thyroid Cancer is cancer that occurs in the thyroid gland. Cancer of the thyroid was discovered slightly before the end of 19th century by Dr. William Stewart Halsted, an American surgeon who was also a cocaine and morphine addict. Thyroid cancers take up about 1% of all diagnosed cancers and the survival rates are generally very high, particularly if the cancer has not metastasized. (University of Texas Medical Branch) Thyroid cancer is fairly rare, and one out of every 111 people will be diagnosed with thyroid cancer over the course of their life. (National Cancer Institute) This is .9%, an extremely low number that shows just how uncommon thyroid cancer is. Although it is uncommon, every year around 25,000 women and 8,000 men learn that they have thyroid cancer. (NCI)

The thyroid gland is a butterfly shaped hormonal gland located just below the Adam’s apple that is wrapped around the windpipe and makes and stores hormones. These hormones regulate heart rate, metabolism, blood pressure, and growth. The thyroid uses iodine to make hormones that every cell in the body relies on. In particular, the hormones thyroxine (T4) and triiodinetyronine (T3), play a large role in the regulation of metabolism and are extremely important. Hormonal production of the thyroid is controlled by thyroid stimulating hormone (TSH) in feedback mechanism similar to the renal feedback mechanism. When levels of T3 and T4 become too low, the pituitary gland in the brain signals for TSH to be secreted and regulate the hormone levels. Conversely, if hormone levels are too high the pituitary gland secretes less TSH until the hormonal level is normal. Another hormone made by the thyroid is calcitonin. Calcitonin is made by the C cells of the thyroid rather than the follicular cells that make T3 and T4 and helps bone cells add calcium to the bone. Thyroid cancer affects the normal production of these hormones and can cause many problems if not treated.

There are four main types of thyroid cancer, and they are all carcinomas, meaning they all occur in tissue cells. The most common type of thyroid cancer is papillary carcinoma, which makes up around 80% of all thyroid cancer cases. This cancer occurs in the follicular cells and is usually very treatable if found before metastasis. The second most common form of thyroid cancer is follicular carcinoma, which also occurs in the follicular cells. This type of thyroid cancer accounts for about 15% of thyroid cancer cases and is also treatable if found early. The third most common variety of thyroid cancer is Medullary carcinoma, which occurs in the C cells of the thyroid and affects the levels of calcitonin. This variety makes up about 3% of all thyroid cancer diagnoses and is also treatable when found before it has metastasized. The final form of thyroid cancer and the most uncommon is anaplastic carcinoma. This form of thyroid cancer occurs in the follicular cells of the thyroid and only accounts for about 2% of all thyroid cancer cases. Although this is the most rare, it is the most deadly. Anaplastic carcinoma grows rapidly and is extremely difficult to control. All of these cancers form growths on the thyroid gland that are called nodules. These nodules are basically tumors on the thyroid, but only 10% of thyroid nodules are malignant.

Although thyroid cancer is a fairly uncommon form of cancer, there are several risk factors that can increase one’s chances of obtaining thyroid cancer. One of these risk factors is radiation, either from high dose x-rays or radioactive fallout. Dental x-rays from the first half of the 20th century along with association with nuclear weapons or energy puts one at an increased risk of getting thyroid cancer. Family history also plays a role in thyroid cancer. Growths on the colon or goiters can increase somebody’s chances of getting papillary carcinoma. Also, Medullary carcinoma can be passed down genetically. Specifically, a mutation in the RET gene can be passed down. Almost everyone who was born with this mutation gets Medullary carcinoma. In addition, females are three times more likely to get thyroid cancer than males. Studies are also being done to see if iodine levels are associated with thyroid cancer. Preliminary research hints that low iodine levels can cause follicular carcinoma and that high levels of iodine can cause papillary carcinoma. Finally, there is some research that suggests increased consumption of shellfish or seafood could be associated with thyroid cancer risk.

Cancers are caused by mutations in the cell cycle, and scientists have been able to pinpoint some of the exact mutations that cause thyroid cancer. As I mentioned before, Medullary carcinoma can be caused by the heredity of a mutated RET gene. Papillary carcinoma is usually caused by one of three genetic mutations. The mutation usually occurs in the RET gene, the BRAF gene, or the RAS gene. When radiation is not an associated factor, the mutation usually happens to the BRAF gene. The BRAF gene fuses with part of the AKAP9 gene and the combined gene stimulates normal cells to turn in to cancerous cells. In anaplastic carcinoma, the RhoB tumor suppressor gene stops functioning and a cancerous growth is the result. When radiation is associated, the mutation usually occurs in the RET gene. Although these cancers happen when the cell cycle functions improperly, there are several ways to treat thyroid cancers.

There are several treatment options for one who has thyroid cancer. One of the major treatment options is surgery. Two of the most common surgical procedures are a thyroidectomy or a lobectomy. In a thyroidectomy, the whole thyroid gland is removed. This removes the nodule, but without a thyroid pills will have to be taken for the rest of one’s life in order to regulate hormone levels. A lobectomy is a procedure sometimes used on patients with follicular or papillary thyroid cancer and only part of the thyroid is removed. Another treatment option is thyroid hormone treatment. These are usually pills that regulate blood pressure, heart rate, weight, and body temperature and are often prescribed after thyroid surgery. Another option is treatment with radioactive iodine. This is used on some patients with papillary or follicular thyroid cancer and consists of the patient consuming radioactive iodine which kills the thyroid cells, both cancerous and non cancerous. Yet another option is external radiation therapy. This is when radiation from outside of the body is concentrated at the affected area and is only used when surgery and radioactive iodine treatment cannot be used. For anaplastic thyroid cancer, the deadliest, chemotherapy is often used. In chemotherapy, the patient consumes radioactive medicine that kills cancerous cells. Another treatment for anaplastic thyroid cancer is a drug called RS5444. This drug activates the RhoB tumor suppressor that is dysfunctional in anaplastic thyroid cancer cells. Drugs that activate deactivated genes are rare, but this drug does exactly that. Although thyroid cancer is rare, there are many treatment options and survival rates are high.

When the cell cycle does not function correctly in the thyroid, cancerous nodules are sometimes the result. However, these cancerous nodules are often treatable. From treatments such as radioactive iodine therapy to RS5444, thyroid cancer has one of the highest survival rates. Even though it has a high survival rate, it is already an uncommon cancer. Ever since its discovery in the late 19th century, research has allowed most people with thyroid cancer to live normal lives after diagnosis.

Sources:
http://www.medterms.com/script/main/art.asp?articlekey=5778
http://www.endocrineweb.com/conditions/thyroid/how-your-thyroid-works
http://www.cancer.gov/cancertopics/types/thyroid
http://www.cancer.gov/cancertopics/wyntk/thyroid/page9
http://www.medindia.net/news/view_news_main.asp?x=3200
http://www.medindia.net/patients/patientinfo/thyroid-cancer-symptoms-risk.htm
http://www.medindia.net/news/New-Drug-To-Turn-On-Tumor-Supressor-Gene-In-Thyroid-Cancer-Cells-46631-1.htm
http://www.utmb.edu/otoref/grnds/thyroid-ca-021204/thyroid-ca-021204.htm
http://seer.cancer.gov/statfacts/html/thyro.html




Check out my powerpoint that won't make sense unless you read the paper.

Thursday, October 14, 2010

Cholera

Cholera, or Vibrio Cholerae, is a rod shaped bacteria that is transmitted through water and food. V. Cholerae produces cholera toxin, which causes the severe diarrhea that is a symptom of Cholera. If Cholera is not treated promptly, than death by dehydration can quickly occur.

 Characteristics of Bacteria:
Vibrio Cholerae  is a rod shaped bacteria with flagella that, when it reaches the small intestine, causes severe disease. Most of the bacteria does not survive for long inside the human body, but the cells that do survive long enough to travel through the small intestine to the intestinal wall do so by shutting down protein production while they travel through the highly acidic stomach fluids. The bacteria create flagella to help them swim through the thick mucus of the small intestine. Once the bacteria reaches the intestinal wall, it begins to produce the the toxic proteins that make up the cholera toxin.

Cholera:
When the bacteria reaches the intestinal wall, it begins to create cholera toxin, which leads to the main symptom of extreme diarrhea. This happens because the cholera toxin activates a certain enzyme in the intestinal cells, and changes there function so that they extract water as well as electrolytes from the tissues and the blood and force it in to the open space inside the small intestine. All of this fluid proceeds to come out of the body as diarrhea. Paired with this extreme loss of fluids is dehydration, urine failure (anuria), an increased acidity in the blood (acidosis), and circulatory shock, which occurs when blood is not able to provide nutrients to tissues quickly enough. Circulatory shock can lead to cardiac arrest or hypoxemia. Teh diarrhea also carries many ions, and the loss of ions, particularly potassium ions, can lead to heart failure as well as circulatory failure. Due to all of these critical symptoms, untreated Cholera has a 50-60% mortality rate.

Treatment:
If Cholera is diagnosed quickly, it can easily be cured by quickly administering fluid either intravenously, or orally if glucose is added. Due to Cholera's simple treatment, the mortality rate stays fairly low for such a quick killing disease. Cholera is really dangerous in less developed countries where sewage is not adequately treated and Cholera can travel extremely quickly. Many of these countries also lack the resources to perform the simple treatment.

Sources:
Image 1: http://www.topnews.in/health/general/health-news?page=10
Image 2: http://www.dr-evans.com/advancedbiology/cholera.html
http://www.textbookofbacteriology.net/cholera.html
http://www.cdc.gov/nczved/divisions/dfbmd/diseases/cholera/
http://en.wikipedia.org/wiki/Cholera