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May 11, 2023 |
With the traditional ringing of the bell we bring this meeting to order!
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Welcome to this week’s meeting of the eClub of the State of Jefferson.
I am Bob Gibson, President of the Rotary eClub of State of Jefferson. Welcome to this week’s meeting. I hope this finds you well.
I am so grateful that Mitch Allen, your Club VP and Membership Chair, attended the District 5110 Conference in Eugene. He has posted about his experience on our Facebook page. When you visit the Facebook page, you will also notice another member of our Club is active with the District and Rotary projects.
Rotarian Dan Smith recently returned from a visit to Ukraine. He discussed the insights he gained and what service opportunities exist for Rotary in his presentation at the District Conference. In addition, Dan received a Distinguished District Service Award for his work as District Webmaster. Congratulations Dan! Your commitment and passion is contagious.
Our Program Chair, Bruce Garrett is currently leading the way to complete an application for a District Grant for a Book Vending Machine for the Chinle “Planting Hope” organization. This will serve the youth of the Navajo Nation. This project will provide reading opportunities and encourage service among the Navajo youth. They will earn tokens with service projects and by meeting reading goals. The tokens will be used in the vending machine to select their next reading adventure.
We have many active and passionate Rotarians in our Club. Rotary is like a large home with many rooms. Each room is an opportunity for service. The exciting challenge is to find the room that best fits your service “needs.” If you identify a need, there is a good chance that Rotary can provide the tools to have a positive impact. We have seasoned Rotarians in our Club. We can help you bring a program to life.
Thank you for your interest in our Club and your commitment to “Service above Self.”
Enjoy the meeting.
If you have any questions or comments, I am available. My e-mail address is: bob@bluewaterphoto.net.
email president@StateOfJeffersonRotary.org

eClub Board Meeting May 18, 2023
08:00 AM Pacific Time (US and Canada)
The Rotary D5110 Youth Exchange Committee has agreed to host an inbound exchange student from Ukraine. There are now a total of seven Ukraine exchange students, including Bohdan, supported by seven different US and international Rotary Districts. Our student, Bohdan, lives in Liski, a suburb of Odessa on the Black Sea Coast. He goes to school in Odessa, commuting there every day. For his exchange, Bohdan will be arriving in August of 2023 and will be staying with host families in Klamath Falls. He will attend Klamath Union High School.
We need your help to make Bohdan's exchange possible. The total cost is $5,000. This covers $1,000 for health insurance, $2,500 for airfare, and $1,500 for his monthly allowance. We are seeking contributions from the members of our district to help cover these costs. If you are interested in or willing to help, please let me know. Donations should be sent to our District Youth Exchange Treasurer, Michele Kellison, at 520 NW Oak Ave, Suite C, Corvallis, OR 97330.
Be sure to indicate that your check is intended for the Ukraine student expenses. Thank you for your consideration and support.
Yours in Rotary Service,
DG Aimee
May is Youth Service Month

Youth Service Month is a special time in Rotary. Throughout the month of May, members of Rotary clubs, Rotaract, Interact, and those involved in Rotary Youth Leadership Awards (RYLA) and Rotary Youth Exchange celebrate the opportunities Rotary provides to connect, grow through service, develop leadership skills, mentor or be mentored, and have fun.
Although COVID may prevent some of us from celebrating Youth Service Month in person, it need not dampen our enthusiasm, excitement, and gratitude for these programs and the volunteers who make them possible. Here are four ways you can safely celebrate:
- Serve. Make the month special by identifying needs in your community, and getting creative with ways to meet them with local guidelines. This could include sewing masks for essential workers, collecting and distributing supplies for shut-ins, or creating a phone chain to offer a message of encouragement to seniors who are isolated and alone. Check out this list of projects being conducted by Rotary clubs around the world for inspiration.
- Stay Connected. Schedule an online meeting with your sponsor Rotary club, or with program participants and alumni. Recognize past accomplishments and discuss ways to work together in the future to strengthen participation. Visit the Meeting Online learning topic to find and share resources, join discussions, and ask for expert advice about creating online meeting spaces.
- Unite behind a fundraiser. Empower Rotary’s response to the pandemic by donating to the Disaster Response Fund. Grants from this fund are providing hospitals in Belgium, Croatia, and Italy with lifesaving ventilators; and equipping frontline healthcare workers with personal protective equipment in Korea, Nigeria, the Philippines, Spain, and the United States. In India, disaster response grants are providing disinfectant sprayers, beds, and mattresses for healthcare facilities.
- Set and achieve goals. Take this month to focus on initiatives that will help your club earn this year’s Rotary Citation. Brainstorm sustainable service projects, ways to increase giving to The Rotary Foundation, and build awareness of Rotary in your community. Young people are looking for a way to make a difference. Show them how Rotary equips them to do so, especially in this time of crisis. And watch your membership grow.
Share how you’re celebrating Rotary’s Youth Service Month on social media with #RotaryYouthService.
He Invented a $2 Paper Microscope For Remote Lab Work So Scientists Don’t Have to Haul Heavy Equipment

A young scientist who worked in the jungles of Thailand has been awarded a national prize for his invention of a $2 paper microscope that can be taken on field expeditions.
If a scientist wants to study something at the microscopic level, they need a microscope, which if they are deep in the Amazon Rainforest presents a serious problem.
Stanford University bioengineer Manu Prakash saw in his team’s $50,000 microscope a serious contradiction. As well as being bulky and ridiculously challenging to transport to remote locations, it needed training from skilled technicians to know how to use it. It also had to stay well out of the weather and other environmental impacts.
So he invented a portable one. Costing $1.75, the Foldscope has a 140x zoom, which is a small enough field to see a malaria parasite inside a cell.
That zoom can be enhanced if you simply slide the lens of your smartphone over the lens of the Foldscope.
“I want to bring science into everyone’s hands, make it more personal,” Prakash told CNN. “We have decoupled everyday life from the process of science.”
The ultimate in schoolhouse science, Prakash’s invention has sold 1.6 million units, mostly to schools in America, but serious scientists are also using it—like Dr. Kirti Nitnaware in India who works on the isolation and characterization of bioactive metabolites in cyanobacteria.
She used the Foldscope last year to isolate a new species of cyanobacteria. For this and other reasons, Prakash received the 2022 Golden Goose Award from the American Association for the Advancement of Science (AAAS), parent company of the scientific journal, Science.
“The Golden Goose Award reminds us that potential discoveries could be hidden in every corner and illustrates the benefits of investing in basic research to propel innovation,” said Sudip S. Parikh, chief executive officer at AAAS.
WATCH Prakash and the Foldscope in action…
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The History of the Polio Vaccine
Polio was once the most dreaded disease in the U.S. Discover the two distinct vaccines — developed by Dr. Jonas Salk and Dr. Albert Sabin — that stopped its spread.
On April 12, 1955, virologists announced that they’d developed a safe and potent vaccine against polio, the deadly, paralyzing disease that then tormented thousands of individuals in the U.S. Setting off a series of concentrated vaccination campaigns in the country and abroad, the announcement sowed the seeds for a polio-free future.
Today, 68 years after the arrival of the vaccine, the disease teeters on the verge of disappearance. In the U.S., cases of wild, community-circulating polio were wiped out in the 1970s, and since then, they've been banished from almost all corners of the world.
So, in honor of its April announcement, here's what you'll want to know about the history of the polio vaccine.
The Plague of Polio
Though the virus that causes polio has circulated throughout human history, it wasn’t until the 1900s that the poliovirus prompted seasonal spates of infections. The first of these outbreaks to occur in the U.S. took place in Vermont in the 1890s, infecting 132, paralyzing 58, and killing 18. And waves of worse outbreaks only followed, troubling the population (and particularly the young) for the next 60 years or so.
The reason for the sudden onset of these seasonal, summer outbreaks remains a mystery. Some specialists see the creation and circulation of stronger strains of the poliovirus as the culprit. Others credit improving sanitation systems in the U.S., which prevented people from increasing their immunity to the virus in their infancy.
That said, regardless of the reason, the sudden appearance of an annual polio season was devastating. In 1952, the single worst wave of the disease infected 60,000 individuals in the U.S., many of whom were left with canes, crutches, wheelchairs and full-body breathing apparatuses called "iron lungs" in the aftermath of the surge.
With polio ravaging the population and no cure in sight, an assembly of specialists supported by the National Foundation for Infantile Paralysis set out to fight the virus with vaccines. By that time, the notion of fending off a virus with vaccines was nothing new. But producing a vaccine against polio was still a tricky task, requiring an intimate knowledge of the transmission of the virus.
The Pathology of Polio
Polio, or poliomyelitis, is an intestinal infection caused by the poliovirus, which passes from person-to-person through the ingestion of the feces of an infected individual.
The infections are mostly mild, involving symptoms such as fever, fatigue and nausea. But in around 1 in 200 infections, the virus travels to the nervous system, where it destroys the neurons that direct muscle movement. When this occurs, the virus can cause permanent paralysis and sometimes death, whenever the muscles within an individual's airways are adversely affected.
Throughout the 1940s, researchers learned a lot about the poliovirus. In 1949, a team discovered that there were three types of virus in circulation, including PV1, PV2 and PV3, which would need to be targeted and treated by a vaccine on an individual basis. That same year, another team discovered that these three types of virus could all be cultivated artificially, which would supply a stream of poliovirus, safely and consistently, from which a potential vaccination could be created.
Salk's Polio Vaccine
Armed with the knowledge of the three types of poliovirus, as well as a steady supply of all three, American virologist Jonas Salk developed the first promising vaccine against polio in 1952. After several small trials, the vaccine was tested in the Francis Field Trial, which was then the most massive medical field test in the U.S.
Named after Thomas Francis, the administrator of the test, the trial involved almost 2 million individuals who received injections of a vaccine or a placebo, or who received nothing at all. After observing the participants to determine whether the vaccine reduced their chances of contracting polio, Francis concluded in April 1955 that the vaccine was 60 to 70 percent effective against PV1 and 90 percent effective against PV2 and PV3.
Breaking from the traditional process of vaccine development, Salk’s vaccine did not contain any active strains of the virus that it intended to defeat. Instead, it contained only inactivated strains of the virus, incapacitated by formaldehyde, which could induce antibodies without inducing infection. As one of the first pioneers of this type of vaccine, Salk was convinced that these strains were as potent as active strains, but much more secure when included in vaccinations.
The results of the trial inspired the immediate approval of the vaccine. Soon, millions of vaccinations were transported throughout the U.S., where they were distributed, first and foremost, to the “polio pioneers” who participated in trials without receiving doses of the drug themselves. Following this initial wave of vaccinations, infections dipped, and deaths decreased by 50 percent after a single year.
Sabin's Polio Vaccine
Within two years of the announcement, annual infections from polio plummeted to around 5,600 in the U.S. Within six years of the announcement, infections plunged to 160. This additional drop in infections was due to the development of an alternative, active version of the vaccine, developed by virologist Albert Sabin and made available to the public in 1961.
While Sabin acknowledged that the inactive strains included in Salk’s vaccine could induce antibodies temporarily, the virologist thought that an active virus was required to raise antibodies that really stuck around. As such, Sabin studied an assortment of active poliovirus variants, searching for strains which were too weak to cause serious symptoms but were strong enough to evoke an enduring antibody response.
By 1961, Sabin found three of these attenuated strains, and incorporated them in an active vaccine for polio. Administered orally, by being dropped onto the tongue or infused in sugar, Sabin's active vaccine was simple and affordable to administer. Once approved, it immediately supplanted Salk’s injected vaccine, becoming the most popular method of protection against polio in the U.S.
Polio Vaccines in the U.S.
Throughout the virologist's career, Sabin insisted that the chances of contracting paralytic polio from an active vaccine were minimal. But despite Sabin’s ideas, almost 110 cases of vaccine-associated polio arose in the U.S. between 1980 and 1992, occurring when the weakened virus incorporated in the vaccine regained its virulence after ingestion.
In response to these infections, the U.S. returned to the inactive vaccine in 2000. Since then, all vaccines administered against polio in the country have been inactive, completely removing the risk of contracting vaccine-associated polio.

Save the Date! June 7th, 2023 to participate in Navajo Solar light installations.
Housing is limited. Contact John Allman to reserve your space and to get more information.
Chinle Planting Hope Literacy Project This program is a great way to prepare children for the future. Let's bring engagement and excitement to reading books again! Book Vending Machine Success Story - Literacy Programs - Global Vending Group from Global Vending Group on Vimeo Inchy the Bookworm - Inchys Impact through Book Vending Machines by Global Vending Group from Global Vending Group on Vimeo.
Inchy’s Bookworm Vending Machine™ works by rewarding kids for good behavior, good grades, and good attendance. We believe that the combination of vending books and a personalized reward system could bridge the gap between literacy and engagement. 
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Two youth program choices this week. Enjoy!
The Teresa Carreño Youth Orchestra contains the best high school musicians from Venezuela's life-changing music program, El Sistema. Led here by Gustavo Dudamel, they play Shostakovich's Symphony No. 10, 2nd movement, and Arturo Márquez' Danzón No. 2.
Teen wonders play bluegrass
Brothers Jonny, Robbie and Tommy Mizzone are The Sleepy Man Banjo Boys, a trio of virtuoso bluegrass musicians who play with dazzling vivacity. Did we mention they're all under 16?
weekly@StateOfJeffersonRotary.org
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This 18-Year-Old Developed a Test to Find Out If Your Drink Has Been Spiked
The simple and inexpensive sensor detects the antihistamine in “Benadryl cocktails”

It was the day after Christmas 2021, and Angie Fogarty sat in a dark room with an ultraviolet flashlight trained on a tiny, hole-punch-sized circle of paper in front of her. She carefully placed a few drops of liquid on the red paper, then cast a UV spotlight on the spot as she waited in anticipation. Almost instantly, it turned green.
“I started crying, it was so exciting,” says the now 18-year-old senior at Greenwich High School in Greenwich, Connecticut.
She had finally had a breakthrough in her research project, creating a sensor that detects the presence of diphenhydramine (DPH), the ingredient in Benadryl that causes drowsiness, in drinks. Meant to prevent drugging and drug-facilitated sexual assaults, the sensor is small, inexpensive and easy to use.
This innovation is what made Fogarty one of 40 finalists in the 2023 Regeneron Science Talent Search, the country’s oldest and most prestigious science and math competition for high school seniors. The competition’s top prizes this year went to a student who designed a computer model that can predict the structure of RNA molecules, with the goal of making it easier to diagnose and treat certain diseases, and another who used artificial intelligence to show that the Boston Globe’s descriptions of homicide victims from 1976 to 1984 were less humanizing in coverage of Black victims.
Entrants in the Science Talent Search often choose to focus on issues that directly affect them or their community, says Maya Ajmera, the president and CEO of Society for Science, which runs the competition. This year’s third-place finisher, Ellen Xu, developed an algorithm that aids in the diagnosis of Kawasaki disease, the leading cause of acquired heart disease in children between 1 and 5 years old, which her younger sister was diagnosed with.
“A lot of these projects are so fascinating because they look at an issue that’s close to home for them,” Ajmera says.

From the beginning, Fogarty knew she wanted to focus her project on women’s health. As she embarked on her college search, the teenager kept seeing headlines about drink spiking and drug-facilitated sexual assaults on various campuses, dampening her excitement to attend.
“It was so discouraging,” she says. “Unfortunately, a lot of young women and young people in general aren’t guaranteed this degree of safety that should be a basic right.”
Fogarty was thinking specifically of preventing drugging on college campuses as she designed her project, though the sensor can be used by anyone seeking to test their drink. A 2017 study of more than 6,000 college students at three universities in Psychology of Violence found that more than 1 in 13 believed they had been drugged, though the researchers caution that they cannot confirm respondents were drugged, and some respondents were unsure. Over twice as many women as men reported being drugged, and women tended to mention sex or sexual assault as a motive, while men tended to mention having fun.
In the hopes of creating a safer environment for everyone, Fogarty landed on her project idea: a simple, color-changing sensor that can tell someone whether an antihistamine has been slipped into their drink. If an individual is wary of a drink, they can place a small amount of the beverage in a bottle, add a few drops of a provided pH adjuster until the liquid becomes a pale yellow, then put a dab of the solution on the sensor, which turns red or green depending on whether the liquid contains DPH or not.
Of course, creating something simple is exactly what made the research process so complex. Fogarty calls the months from November 2021 to March 2022 “the dark ages.”
“I had no free time,” she says. “There was not a weekend, there was not a school break, not an evening that I wasn’t [working].”
First, Fogarty had to figure out how to get the right reaction when DPH hit the sensor. After reviewing other research literature and testing methods, she settled on a two-dye system. She put two dyes, one green, one purple, on a small piece of cellulose paper—a material commonly used for test strips.
When a liquid without DPH meets the paper, the green dye dissolves in the liquid, pulling it up and away from the paper so it glows when hit by ultraviolet light. Meanwhile, the purple dye, bonded with the paper, remains hidden underneath.
On the other hand, when the paper meets DPH-containing liquid, a chemical linkage forms between the green dye and the drug, dampening the expression of the dye and allowing the color of the purple dye to show through. Under UV light, the sensor is a red color.
Working with the two dyes made for a challenging task. “Whenever I would make an alteration to one of the dyes, it could negatively impact the other,” Fogarty says. “That’s why I was stuck for so long in the trial-and-error phase.”
Mastering the color-changing effect is what gave Fogarty her Christmas eureka moment. However, that was only the first step—there was much more testing yet to do.
“Because the sensor is supposed to be used to prevent date rape, that involves a lot of alcoholic beverages, which means there could be additives, there could be colors,” Fogarty says. “There were a ton of other variables which were pretty difficult to navigate, especially because I’d spent so long just trying to get the sensor to work with just reacting to the drug. Then it was, ‘Oh, you did that, now does it work in orange juice?’”
As she tested her sensor in mixed drinks, Fogarty found that the acidity of different beverages changed the reaction between the dyes that forms the basis of the test. Eventually, she discovered that adding a tiny amount of sodium hydroxide could standardize the acidity of the beverage, allowing the process to work as planned.
Overall, she estimates that she tested “at least a hundred, probably more” different versions of the sensor before finding the perfect formula. Since it requires tiny amounts of dye, each test only runs around $1 to produce.
Fogarty wanted her sensor to be not only economically accessible but also easy to use. Other drink-spiking detection tests developed for drugs like the sedatives gamma-hydroxybutyrate (GHB) and Rohypnol (few existing tests, if any, detect DPH) often use a lateral-flow test technique, an approach that is common in Covid-19 self-testing. However, these can come with complicated directions, and the movement of liquid and mixing of test agents can be easy to accidentally disturb.
“If you’re testing it in a dark room, which is most likely where you’d find yourself in these kinds of scenarios, it’s hard to be able to distinguish whether or not you have this faint line,” Fogarty says. “That’s why I wanted to do the color system.”
Even with improved usability, another barrier to drink-spiking tests is getting people to actually use them, says Pamela Donovan, a sociologist and author of Drink Spiking and Predatory Drugging: A Modern History. “A lot of people support the idea of getting them and using them, but if you look at all these companies that sell them or you try to follow up with places that have handed them out, basically, there’s no further news, there’s very little in the way of testimonials.”
“I’m not sure why this is, but most people just won’t use them,” she adds.
Additionally, many tests currently on the market can be unreliable. Some tests meant to detect GHB will give a false positive when exposed to liquids like Evian water, dairy or red wine, Donovan says.
While there’s still much to be studied when it comes to the uptake of tests, Donovan sees potential in Fogarty’s project. Existing tests, she says, offer the ability to test for drugs like GHB or ketamine, another drug used in social settings that can also be a drugging agent. “I wonder whether adding a DPH spot [to these tests] would make it seem more comprehensive to potential marketplace consumers,” she says.
Donovan also speculates that the test could be usefully adapted to detect DPH in other situations. The Centers for Disease Control and Prevention has reported early evidence that DPH may be a contributing factor to opioid overdose, and it may sometimes be mixed into the drug supply. Additionally, DPH may interfere with the use of nasal rescue spray in the case of overdoses. If the test could be adapted to detect adulterants, it could both help drug users avoid overdose and give experts more knowledge about the drug supply.
Fogarty herself has also noted another potential use for her test. Because of the way the sensor works, it can be adapted to detect pyrrole, a compound found in marijuana. The adapted sensor, when wetted, can be used as a breathalyzer to determine if someone is under the influence of cannabis and therefore unable to safely drive.
With the $25,000 in prize money awarded to her as a competition finalist, Fogarty plans to pursue patents and marketing for the sensor and its potential extended use. Some of the funds will also be set aside to pay for her tuition at Washington University in St. Louis, where she will study biology with the goal of becoming a veterinarian.
Fogarty’s also eager to see what the other young scientists in the Science Talent Search continue to do now that their work has been recognized.
“It’s great to see so many of these young adults being highlighted for the work they’re doing, and being validated, getting tons of new opportunities, because it’s all so well deserved," she says. "It’s bringing attention to a lot of important issues."


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