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Showing posts with label Coronavirus science. Show all posts
Showing posts with label Coronavirus science. Show all posts

Tuesday, August 04, 2020

We Need to Talk About Ventilation by Zeynep Tufekci in THE ATLANTIC 7.30.2020

Friends, 

I read this piece by Zeynep Tufekci inThe Atlantic twice as I found it to be truly illuminating. Based on the research presented, I am  convinced that ventilation matters— which, of course, has enormous implications for schools, school re-opening, and workplace conditions. 

I hope you find this to be helpful.

-Angela Valenzuela


We Need to Talk About Ventilation 


by ZEYNEP TUFEKCI | JULY 30, 2020 | The Atlantic


 

How is it that six months into a respiratory pandemic, we are still doing so little to mitigate airborne transmission?

My otherwise detailed instructions, however, included only a single sentence on “good ventilation”—a sentence with the potential to do some people more harm than good. I was advised to have “good air flow, such as from an air conditioner or an opened window, weather permitting.” But in certain cases, air-conditioning isn’t helpful. Jose-Luiz Jimenez, an air-quality professor at the University of Colorado, told me that some air conditioners can increase the chances of spreading infection in a household. Besides, “weather permitting” made it all seem insignificant, like an afterthought.

 

While waiting for my results, I checked the latest batch of announcements from companies trying to assure their customers that they were doing everything right. A major U.S. airline informed me how it was diligently sanitizing surfaces inside its planes and in terminals many times a day, without mentioning anything about the effectiveness of air circulation and filtering inside airplane cabins (pretty good, actually). A local business that operates in a somewhat cramped indoor space sent me an email about how it was “keeping clean and staying healthy,” illustrated by 10 bottles of hand sanitizer without a word on ventilation—whether it was opening windows, employing upgraded filters in its HVAC systems, or using portable HEPA filters. It seems baffling that despite mounting evidence of its importance, we are stuck practicing hygiene theater—constantly deep cleaning everything—while not noticing the air we breathe.

How is it that six months into a respiratory pandemic, we still have so little guidance about this all-important variable, the very air we breathe?


The coronavirus reproduces in our upper and lower respiratory tracts, and is emitted when we breathe, talk, sing, cough, or sneeze. Figuring out how a pathogen can travel, and how far, under what conditions, and infect others—transmission—is no small deal, because that information enables us to figure out how to effectively combat the virus. For COVID-19, perhaps the most important dispute centers specifically on what proportion of what size droplets are emitted from infected people, and how infectious those droplets are, and how they travel. That the debate over the virus’s modes of transmission is far from over is not a surprise. It’s a novel pathogen. The Columbia University virologist Angela Rasmussen told me that, historically, it took centuries to understand how pathogens such as the plague, smallpox, and yellow fever were transmitted and how they worked. Even with modern science, there are still debates about how influenza, a common annual foe, is transmitted.

In particular, the size of infectious particles really matters, because that determines how they travel—are they big enough to be quickly pulled down by gravity or are they small enough to float around? Since the beginning of the pandemic, the World Health Organization has considered the primary mode of COVID-19 transmission to be respiratory droplets. These droplets are defined as particles bigger than 5 to 10 microns in diameter, and WHO guidelines say that once they are sprayed out of someone’s mouth, they travel ballistically and fall to the ground within close range of the infected person. For the WHO, that range is about three feet; for the Centers for Disease Control and Prevention, which also considers droplets to be the primary mode of transmission, it’s six feet. The dominance of a ballistic-droplet mode of transmission in this pandemic would mean that we should focus mostly on staying out of droplets’ range, especially to prevent them from falling on our unprotected mouth, nose, and eyes—hence the social-distancing guidelines. It also would mean that keeping that distance would be enough to stay safe from an infected person, on the other side of a room for example. (Of course, our hands can still potentially pick them up from surfaces and bring them to our face, hence the importance of hand-washing.)

 

There is a big dispute in the scientific community, however, about both the size and the behavior of these particles, and the resolution of that question would change many recommendations about staying safe. Many scientists believe that the virus is emitted from our mouths also in much smaller particles, which are infectious but also tiny enough that they can remain suspended in the air, float around, be pushed by air currents, and accumulate in enclosed spaces—because of their small size, they are not as subject to gravity’s downward pull. Don Milton, a medical doctor and an environmental-health professor at the University of Maryland, compares larger droplets “to the spray from a Windex dispenser” and the smaller, airborne particles (aerosols) “to the mist from an ultrasonic humidifier.” Clearly, it’s enough to merely step back—distance—to avoid the former, but distancing alone would not be enough to avoid breathing in the latter.

The disagreement got heated enough that earlier this month, hundreds of scientists around the world signed a letter, pleading with the WHO to acknowledge these smaller particles as an extra mode of transmission and to update its guidelines accordingly. Some experts I spoke with told me that they had been trying to convince the WHO to take the possibility of airborne transmission since March, and that the open letter was borne out of frustration about lack of progress. Signatories who study aerosols—the smaller, floating particles—including professor Linsey Marr of Virginia Tech and Jimenez, told me that they don’t disagree with the idea that transmission at close range represents the most risk, as per the WHO and CDC guidelines. But they disagree that the dominance of close-contact transmission implies that ballistic trajectories or larger respiratory droplets are the overwhelming mode of transmission. In their view, even some portion of that close-contact transmission is likely due to aerosols, and many experts told me that they think even particles bigger than the WHO’s definition of respiratory droplets (larger than 5-10 microns in diameter) can float for a bit. In response, the WHO published a scientific brief on July 9 acknowledging the possibility of airborne transmission, but still concluding that COVID-19 is “primarily transmitted” between people through respiratory droplets and touching, and that the question needs “further study.”

Read: What You Need to Know About the Coronavirus ]

Part of the difficulty with this discussion has been that the relevant experts, including infectious-disease specialists, epidemiologists, environmental and aerosol engineers, don’t even agree on the terminology. The particles we emit from our mouths can be called droplets, microdroplets, droplet nuclei (particles that start out bigger but get smaller because of evaporation) or aerosols. There is no clear line between big and small particles and droplets and aerosols; it’s a continuum with complex aerodynamics depending on the environment, and to make matters worse, the same word—like aerosol—sometimes means something different in each field. The terminological confusion led Milton to write a “Rosetta Stone” paper to try to clarify the terms across fields. For this article, I’ll call the spray-borne particles that travel ballistically “droplets,” and the ones that can float “aerosols” (regardless of what size the particles may be, as the key question is whether they can float and be pushed around by air—and that size cut-off remains disputed).

 

Plus, this debate has a long history: From the mid-19th century into the 20th century, infectious-disease specialists fought a long and hard-won battle against “miasma” theories of disease that posited that filth and noxious odors, instead of germs, were responsible for disease. In a seminal 1910 book, the public-health pioneer Charles Chapin distinguished “spray borne” diseases (WHO’s droplets that maximally travel only a few feet) from “dust borne” ones—spread by aerosols, or airborne transmission. He concluded that most pathogens were either “spray-borne” or spread through contact, and worried that an over-reliance on “air-borne” theories would needlessly scare the public or cause them to neglect hand-washing. More than a century later, there are still echoes of those concerns.

There are also different kinds of “airborne” transmission—the term can sound scarier than reality and can become the basis for unnecessary scaremongering. For example, some airborne diseases, such as measles, will definitely spread to almost every corner of a house and can be expected to infect about 90 percent of susceptible people in the household. In the virus-panic movie Outbreak, when Dustin Hoffman’s character exclaims, “It’s airborne!” about Motaba, the film’s fictional virus, he means that it will spread to every corner of the hospital through the vents. But not all airborne diseases are super-contagious (more on that in a bit), and, for the most part, the coronavirus does not behave like a super-infectious pathogen.

In multiple studies, researchers have found that COVID-19’s secondary attack rate, the proportion of susceptible people that one sick person will infect in a circumscribed setting, such as a household or dormitory, can be as low as 10 to 20 percent. In fact, many experts I spoke with remarked that COVID-19 was less contagious than many other pathogens, except when it seemed to occasionally go wild in super-spreader events, infecting large numbers of people at once, across distances much greater than the droplet range of three to six feet. Those who argue that COVID-19 can spread through aerosol routes point to the prevalence and conditions of these super-spreader events as one of the most important pieces of evidence for airborne transmission.

Saskia Popescu, an infectious-disease epidemiologist, emphasized to me that we should not call these “super-spreaders,” referring only to the people, but “super-spreader events,” because they seem to occur in very particular settings—an important clue. People don’t emit an equal amount of aerosols during every activity: Singing emits more than talking, which emits more than breathing. And some people could be super-emitters of aerosols. But that’s not all. The super-spreader–event triad seems to rely on three V’s: venue, ventilation, and vocalization. Most super-spreader events occur at an indoor venue, especially a poorly ventilated one (meaning air is not being exchanged, diluted, or filtered), where lots of people are talking, chanting, or singing. Some examples of where super-spreader events have taken place are restaurants, bars, clubs, choir practices, weddings, funerals, cruise ships, nursing homes, prisons, and meatpacking plants.

 

Strikingly, in one database of more than 1,200 super-spreader events, just one incident is classified as outdoor transmission, where a single person was infected outdoors by their jogging partner, and only 39 are classified as outdoor/indoor events, which doesn’t mean that being outdoors played a role, but it couldn’t be ruled out. The rest were all indoor events, and many involved dozens or hundreds of people at once. Other research points to the same result: Super-spreader events occur overwhelmingly in indoor environments where there are a lot of people.

Benjamin Cowling, the head of epidemiology and biostatistics at the University of Hong Kong School of Public Health, points to a case at a restaurant in Guangzhou where a yet asymptomatic COVID-19 patient infected nine other people, many of whom were sitting at other tables but were in the direct line of the air conditioner, which was blowing air from one end of the restaurant to the other. Tables right next to the patient’s but not downwind did not have a single infected person, and closed-circuit camera videos from the day  show that the people at the infected tables didn’t interact with the patient at all. It was the air. Cowling’s colleagues analyzed the fluid dynamics of that outbreak, showing that the air conditioner blew the air in one direction, where it hit a wall, recirculated back, and was pushed out again, basically trapping the unlucky tables downwind, with the infected air going “round and round and round,” as Cowling described it to me.

Read: Paging Dr. Hamblin: Can AC spread the coronavirus? ]

In another super-spreader event, at a choir practice of 61 people in Skagit, Washington, a single patient caused 32 confirmed and 20 likely COVID-19 cases—almost everyone in the room. In another striking case, at a Korean call center, where people talk all day, 94 out of 216 people on one floor of the building were infected, with cases clustered on one side of the floor but some as far as 20 desks away from each other, with a few as far away as the opposite wall. Only three people on other floors were infected, despite the employees sharing a lobby and elevators, reinforcing that surfaces aren’t efficient transmitters, but that shared air pockets can be, almost regardless of distance.

For these super-spreader events, Milton says you have to “really jump through hoops to argue that they were anything other than transmitted by air.” But it’s not only COVID-19’s super-spreader events that are indoors. The rest of the pattern of spread of COVID-19 —when it is spreading slowly, in small numbers—is also overwhelmingly through indoor transmission. Milton told me that if those sprayed droplets were the primary means of transmission, we would expect to see more transmission outdoors, since the droplets are being ejected with some force and falling on people, but that doesn’t seem to be the case. Even if sunlight, which can deactivate viruses, were dampening transmission outdoors, one would at least expect to see a lot more outdoor transmission than we are seeing now. Instead, epidemiologists are finding that this disease stalks us indoors.

 

There is also evidence from health-care settings. Hitoshi Oshitani, a virology professor at Tohoku University Graduate School of Medicine in Japan, told me that quarantine officers on the Diamond Princess cruise ship, who followed standard precautions against droplets and close contact, nonetheless got infected anyway. This was an important clue for Japanese scientists about the importance of aerosols. “Those were professionals,” he said. For him, that meant that it was unlikely they slipped up, and more likely that the disease acted in ways they weren’t prepared for. A recent (preprint) paper showed that health-care workers in the United Kingdom—where hospitals are older and ventilation measures are poorer—were getting sick at higher rates than those in the United States where many hospital buildings come with ventilation mitigation measures. And in a peer-reviewed paper just published in Nature, researchers reported finding viral RNA in more than half the air samples in a hospital, including outside patients’ rooms and in the hallways. While it remains a question how infectious those particles may have been, Marr told me that it was significant that “100 percent of samples from the floor under the bed and all but one window ledge were positive for viral RNA, indicating that the virus was transported through the air and settled onto these surfaces.”

However, to date, there is also no evidence of truly long-range transmission of COVID-19, or any pattern of spread like that of measles. Screaming “it’s airborne!” can give the wrong impression to an already weary and panicked public, and that’s one reason that some public-health specialists have been understandably wary of the term, sometimes even if they agreed aerosol transmission was possible. Cowling told me that it’s better to call these “short-range aerosols,” as that communicates the nature of the threat more accurately: Most of these particles are concentrated around the infected person, but, under the right circumstances, they can accumulate and get around.

All this has many practical consequences. As Marr, from Virginia Tech, says, if aerosols are crucial, we should focus as much on ventilation as we do on distancing, masks, and hand-washing, which every expert agrees are important. As the virologist Ryan McNamara of the University of North Carolina told me, all these protections stack on top of one another: The more tools we have to deploy against COVID-19, the better off we are. But, it’s still important for the public to have the correct mental model of the reasoning behind all the mitigations, since even those agreed-upon protections don’t all behave the same way under an aerosol regime.

For example, current WHO guidelines don’t recommend masks indoors if a distance of one meter can be maintained. Similarly, the CDC makes scant reference to the distinction between indoor and outdoor transmission in its mask guidance, and recommends masks in public settings, “especially when other social distancing measures are difficult to maintain.” However, an aerosol regime would suggest that distancing isn’t as protective indoors as one would hope, especially since people eating and drinking tend to be talking while unmasked. (The CDC seems to recognize this when it recommends hosting gatherings outdoors, though it still officially stresses transmission through droplets).

 

Under an aerosol regime, we would have different rules for the indoors and the outdoors (especially since, in addition to the diluting power of air, sunlight quickly deactivates viruses.) We would mandate masks indoors regardless of distancing, but not necessarily outdoors. Marr told me that she wears her mask outdoors only if she’s interacting with people, if she’s in a crowd, or if she cannot maintain distance. Yet, in the United States, many locales are mandating masks indoors and outdoors under the same rules, forcing even the solitary person walking her dog to mask up. And there are places, such as Chicago, where beaches are closed because officials fear crowds, but indoor restaurants and gyms remain open with mild restrictions.

As another example, you may have seen the many televised indoor events where the audience members are sitting politely distanced and masked, listening to the speaker, who is the only unmasked person in the room. Jimenez, the aerosol expert, pointed out to me that this is completely backwards, because the person who needs to be masked the most is the speaker, not the listeners. If a single mask were available in the room, we’d put it on the speaker. This is especially important because cloth masks, while excellent at blocking droplets (especially before they evaporate and become smaller, thus more likely to be able to float), aren’t as effective at keeping tinier aerosol particles out of the wearer’s mouth and nose once they are floating around the room (though they do seem to help). We want to see the speaker's mouth, one might say, but that is a problem we can approach creatively—face shields that wrap around the head and seal around the neck, masks with transparent portions that can still filter, etc.—once we stop ignoring the problem. In fact, designing a high-filtration but transparent mask or face shield might be an important solution in classrooms as well, to help keep teachers safe.

Once we pay attention to airflow, many other risks look different. Dylan Morris, a doctoral candidate at Princeton and a co-author of the first paper to confirm that the virus could remain infectious in aerosolized form, under experimental conditions, showed me a clip of a group of people in a conga line, separated six feet apart by ropes. They were merrily dancing, everyone standing behind someone else, in their slipstream—exactly where you don’t want to be, inhaling aerosol clouds from panting people. Similarly, Jimenez pointed out that, when a masked person is speaking, the least safe location might be beside them or behind them, where the aerosols can escape from the mask, though ordinarily, under a droplet regime, we would consider the risk to only be in front of them. The importance of aerosols may even help explain why the disease is now exploding in the southern United States, where people often go into air-conditioned spaces to avoid the sweltering heat.

 

Finally, all this would have implications for people around COVID-19 patients, especially in the community. In U.S. health-care settings, precautions against aerosols are usually already in place, partly because health-care workers undertake procedures—such as intubation—that generate aerosols even if a disease isn’t very prone to creating them. (Most COVID-19 guidelines, including from the WHO and the CDC, from the beginning acknowledged aerosols to be a risk in health-care settings because of such procedures; the dispute has always been whether aerosol transmission occurs organically in everyday settings). However, in the community, accepting aerosol risks would mean that people around COVID-19 patients at home or anyone high-risk, such as the immunocompromised, should at least be provided with higher-grade masks such as N95s, which do a better job of keeping aerosols out.


There are two key mitigation strategies for countering poor ventilation and virus-laden aerosols indoors: We can dilute viral particles’ presence by exchanging air in the room with air from outside (and thus lowering the dose, which matters for the possibility and the severity of infection) or we can remove viral particles from the air with filters.

Consider schools, perhaps the most fraught topic for millions. Classrooms are places of a lot of talking; children are not going to be perfect at social distancing; and the more people in a room, the more opportunities for aerosols to accumulate if the ventilation is poor. Most of these ventilation issues are addressable, sometimes by free or inexpensive methods, and sometimes by costly investments in infrastructure that should be a national priority.

Last week, I walked around the public elementary school in my neighborhood while thinking about what we could do if we took aerosol transmission more seriously. It’s a single-story building, all the classrooms have windows, some have doors that open directly to the outside, and many have a cement patio right outside. Teaching could move outdoors, at least some of the time, the way it did during the 1918 pandemic. Moreover, even when indoors or during rainy days, opening the doors and windows would greatly improve air circulation inside, especially if classrooms had fans at the windows that pushed air out.

Read: Why can’t we just have class outside?

When windows cannot be opened, classrooms could run portable HEPA filters, which are capable of trapping viruses this small, and which sell for as little as a few hundred dollars. Marr advises schools to measure airflow rates in each classroom, upgrade filters in the HVAC system to MERV 13 or higher (these are air filter grades), and aspire to meet or exceed ASHRAE (the professional society that provides HVAC guidance and standards) standards. Jimenez told me that many building-wide air-conditioning systems have a setting for how much air they take in from outside, and that it is usually minimized to be energy-efficient. During a pandemic, saving lives is more important than saving energy, so schools could, when the setting exists, crank it up to dilute the air (Jimenez told me that Shelly Miller, a fellow professor at the University of Colorado specializing in indoor air quality, persuaded the university to do just that.)

 

Jimenez also wondered why the National Guard hadn’t been deployed to set up tent schools (not sealed, but letting air in like an outdoor wedding canopy) around the country, and why the U.S. hadn’t set up the mass production of HEPA filters for every classroom and essential indoor space. Instead, one air-quality expert reported, teachers who wanted to buy portable HEPA filters were being told that they weren’t allowed to, because the CDC wasn’t recommending them. It is still difficult to get Clorox wipes in my supermarket, but I went online to check, and there is no shortage of portable HEPA filters. There is no run on them.


Some countries have already bucked the trend of ignoring short-range aerosols. Oshitani told me that in Japan, researchers took short-range aerosol transmission seriously from the start, and focused on the few transmission events that spread the disease to large numbers of people at once. Cowling, of Hong Kong University, told me the same thing: He considers short-range aerosols and super-spreader events to be key to the spread of COVID-19. Japan was expected to fail by many, as it implemented an unconventional response, bucking WHO guidelines, eschewing widespread testing, and forcing few formal lockdowns. However, Japan masked up early, focused on super-spreader events (a strategy  it calls “cluster busting”), and, crucially, trained its public to focus on avoiding the three C’s—closed spaces, crowded places, and close conversations. In other words, exactly the places where airborne transmission and aerosols could pose a risk. The Japanese were advised not to talk on the subway, where windows were kept open. Oshitani said they also developed guidelines that included the importance of ventilation in many different settings, such as bars, restaurants, and gyms. Six months later, despite having some of the earliest outbreaks, ultradense cities, and one of the oldest populations in the world, Japan has had about 1,000 COVID-19 deaths total—which is how many the United States often has in a single day. Hong Kong, a similarly dense and subway-dependent city, has had only 24 deaths.


To be clear, the science concerning aerosols isn’t settled, which is acknowledged by the signatories of the letter to the WHO urging recognition and mitigation of possible aerosol risks. Rasmussen, the Columbia virologist, could easily rattle off many things she’d like to know about airborne transmission: how much infectious virus is in a given droplet, if some people shed a lot more of the virus than others, or, at what point in their infection, if the virus is more concentrated in the droplet nuclei and what constitutes an infectious dose. But facing a pandemic, we have to act with imperfect information. The letter writers stress that “we must address every potentially important pathway to slow the spread of COVID-19,” even if evidence is incomplete, especially since some of the measures are as simple as opening a window and moving outdoors. This is especially crucial because mitigations stack: The more we have available, the more effective they become.

 

In this period when we don’t have all the answers, much is at stake. My COVID-19 test was negative, so I didn’t need to worry about that, but I wonder about the alternate world, where we take aerosols seriously, had I tested positive, I would have been sent home with firm instructions on opening windows, a loaner HEPA filter, N95 masks for my housemates, and strong warnings not to assume that staying six feet away from me was enough.

Marr told me that she “sheepishly” switched her elementary- and middle-school-age children to a private school because she was able to make a case with the school to take “good ventilation” seriously, in addition to wearing masks and social distancing. Not every school will have such resources, but maybe providing those resources is exactly what we should aspire to for all schools. If the signatories of the letter to the WHO are correct, then adding ventilation to our mitigation stack is exactly what we should focus on, doing everything necessary ranging from the more expensive upgrades to our air-quality infrastructure to opening the windows that are right within our reach.

We want to hear what you think about this article. Submit a letter to the editor or write to letters@theatlantic.com.


ZEYNEP TUFEKCI is a contributing writer at The Atlantic and an associate professor at the University of North Carolina. She studies the interaction between digital technology, artificial intelligence, and society.

 

Sunday, April 12, 2020

Here's What it Will Take to Live in a World with COVID-19 by Gideon Lichfield

However discomforting and unnerving, this very helpful and credible reporting is based on research that comes out of the Massachusetts Institute of Technology (MIT) and is consistent with other equally credible opinions like that of cancer Doctor Ezekiel Emanuel: U.S. Must Stay Locked Down For 12-18 Months Until There's A Vaccine.  It takes an unblinking look at living in a world with COVID over the next 12-18 months with significant implications for life in the free world, as we know it:
"Getting to normal, therefore, is not so much about getting back the old normality as it is about getting back the ability to know what is going to happen tomorrow. And it’s becoming increasingly clear what’s needed to achieve that kind of predictability. What we can’t predict, yet, is how long it will take political leaders to do what it takes to get there."
Though not mentioned, either online or mail-in voting should be our new default for all elections.  Among other things, it recommends mass surveillance which can hopefully be done without "Big Brother" creepiness.  Do take the time to read this in its entirety.  Relatedly, also read this earlier piece by Gordon Lichfield titled, "Social distancing is here to stay for much more than a few weeks. It will upend our way of life, in some ways forever."  

Felices pascuas!  Happy Easter and Happy Passover! "En lo que cabe," my family always says, meaning, "All things considered." Thanks to Rosanna Gomez Moreno​ for sharing.

-Angela Valenzuela

#StayHome #COVID19 #CoronavirusScience

Sunday, April 12, 2020

At some point covid-19 will be vanquished. By early April some 50 potential vaccines and nearly 100 potential treatment drugs were in development, according to the Milken Institute, and hundreds of clinical trials were already registered with the World Health Organization.

Even with all these efforts, a vaccine is expected to take at least 12 to 18 months to bring to market. A treatment may arrive sooner—one company, Regeneron, says it hopes to have an antibody drug in production by August—but making enough of it to help millions of people could take months more.

It could all be over more quickly if certain existing drugs, already known to be safe for other uses, prove effective in treating covid-19. Trials are now under way; we should know by the summer. On the flip side, it may be that only a vaccine delivers the knockout blow, and even then, we still don’t know how long one will stay effective as the virus mutates.

This is why everything feels unmoored and why everybody is stressed: because we can no longer predict what will be allowed and what will not a week, a month, or 12 months hence.

That means we have to prepare for a world in which there is no cure and no vaccine for a long time. There is a way to live in this world without staying permanently shut indoors. But it won’t be a return to normal; this will be, for Westerners at any rate, a new normal, with new rules of behavior and social organization, some of which will probably persist long after the crisis has ended.

In recent weeks a consensus has started to build among various groups of experts on what this new normal might look like. Some parts of the strategy will reflect the practices of contact tracing and disease monitoring adopted in the countries that have dealt best with the virus so far, such as South Korea and Singapore. Other parts are starting to emerge, such as regularly testing massive numbers of people and relaxing movement restrictions only on those who have recently tested negative or have already recovered from the virus— if indeed those people are immune, which is assumed but still not certain.

This will entail a considerable degree of surveillance and social control, though there are ways to make it less intrusive than it has been in some countries. It will also create or exacerbate divisions between haves and have-nots: those who have work that can be done from home and those who don’t; those who are allowed to move about freely and those who aren’t; and, especially in the US and other countries without universal health coverage, those who have medical care and those who lack it. (Though Americans can now get coronavirus tests for free by law, they may still wind up with hefty bills for related tests and treatment.)

This new social order will seem unthinkable to most people in so-called free countries. But any change can quickly become normal if people accept it. The real abnormality is how uncertain things are. The pandemic has undercut the predictability of normal life, the sheer number of things we always assume we will still be able to do tomorrow. That is why everything feels unmoored, why the economy is collapsing, why everybody is stressed: because we can no longer predict what will be allowed and what will not a week, a month, or three or six or 12 months hence.

Getting to normal, therefore, is not so much about getting back the old normality as it is about getting back the ability to know what is going to happen tomorrow. And it’s becoming increasingly clear what’s needed to achieve that kind of predictability. What we can’t predict, yet, is how long it will take political leaders to do what it takes to get there.

The background

First, let’s look at why simply waiting for a drug or vaccine isn’t a practical option.

One feature of the covid-19 pandemic is the speed with which the unthinkable has become the obvious. In mid-March, the British government was still advocating for letting most people go about more or less their normal daily business, while only the sick and the especially vulnerable isolated themselves. It changed tack rapidly after researchers at Imperial College London published a study showing the policy would lead to as many as 250,000 deaths in the UK.

That study made the case for what almost everyone now agrees is essential: imposing social distancing on as much of the population as possible. This is the only way to “flatten the curve,” or slow the spread of the virus enough to prevent hospitals from being overwhelmed, as they have been in Italy, Spain, and New York City. The goal is to keep the pandemic ticking along at a manageable level until either enough people have had covid-19 to create “herd immunity”—the point at which the virus is starting to run out of new people to infect—or there’s a vaccine or cure.

Waiting for herd immunity is not an idea most experts take seriously. But no matter what the final outcome, some degree of social distancing has to remain in place until we get there. A strict lockdown can slow new infections to a trickle, as it did in China’s Hubei province, but as soon as measures are relaxed, the infection rate starts to rise again.
In their report on March 16, the researchers at Imperial College proposed a way of alternating between stricter and looser regimes: impose widespread social distancing measures every time admissions to intensive care units (ICUs) start to spike, and relax them each time admissions fall. Here’s how that looks in a graph.



The orange line is ICU admissions. Each time they rise above a threshold—say, 100 per week—the country would close all schools and most universities and adopt social distancing. When they drop below 50, those measures would be lifted, but people with symptoms or whose family members have symptoms would still be confined at home.
What counts as “social distancing”? The researchers define it as “All households reduce contact outside household, school, or workplace by 75%.” That doesn’t mean you should feel free to go out with your friends once a week instead of four times. It means if everyone does everything they can to minimize social contact, then on average, the number of contacts is expected to fall by 75%.

Under this model, the researchers concluded, both social distancing and school closures need to be in force some two-thirds of the time— roughly two months on and one month off—until a vaccine or cure is available. They noted that the results are “qualitatively similar for the US.”

The researchers also modeled various less stringent policies, but all of them came up short. What if you only isolate the sick and the elderly, and let other people move around freely? You’d still get a surge of critically ill people at least eight times bigger than the US or UK healthcare system can handle. What if you lock everybody down for just one extended period of five months or so? No good—as long as a single person is infected, the pandemic will ultimately break out all over again. Or what if you set a higher threshold for the number of ICU admissions that triggers tighter social distancing? It would first mean accepting that many more patients would die, but it also turns out that it makes little difference: even in the least restrictive of the Imperial College scenarios, we’re shut in more than half the time. That means the economic paralysis lasts until there’s a vaccine or cure.

The tools

Those scenarios, however, assumed that being shut in applies equally to everyone. But not everyone is equally at risk, or risky. The key to getting to normal will be to establish systems for discriminating—legally and fairly—between those who can be allowed to move around freely and those who must stay at home.

Assorted proposals now coming out of bodies such as the American Enterprise Institute, the Center for American Progress, and Harvard University’s Edmond J. Safra Center for Ethics, describe how this might be done. The basic outlines are all similar.

First, keep as many people as possible at home until the rate of infections is well under control. Meanwhile, massively ramp up testing capacity, so that once the country is ready to relax social distancing rules, anybody who asks for a test—and some who don’t—can take one and get the result within hours or, ideally, minutes. This has to include testing both for the virus, in order to detect people who are currently sick even if they don’t have symptoms, and for antibodies, in order to find people who have had the disease and are now immune.

People who test positive for antibodies might be granted “immunity passports,” or certificates to let them move freely; Germany and the UK have already said they plan to issue such documents. People who test negative for the virus would be allowed to move around too, but they would have to get retested regularly and agree to have their cell phone’s location tracked. This way they could be alerted if they come into contact with anyone who has been infected.

This new social order will seem unthinkable to most people in so-called free countries

This sounds Big Brotherish, and it can be: in Israel, such automated monitoring and contact tracing is being done by the domestic intelligence agency, using surveillance tools created for tracking terrorists. But there are less intrusive ways of doing it.

The Safra Center, for example, outlines various schemes for “peer-to-peer tracking,” in which an app on your phone swaps encrypted tokens via Bluetooth with any other phones that spend some minimum period of time nearby. If you test positive for the virus, you put that information into the app. Using the tokens your phone has collected in the past few days, it sends alerts to those people to self-isolate or go get tested. Your actual location doesn’t have to be tracked, only the anonymized identities of the people you’ve been near. Singapore uses a peer-to-peer tracking app called TraceTogether, which sends the infection alerts to the health ministry, but—in principle at least— such a system can be set up with no centralized record-keeping at all.

There also needs to be nationwide data-gathering and analysis to better understand how the virus is spreading and spot high-risk areas that might need more testing or medical resources, or another quarantine. This strategy has to include serological surveys—random testing for antibodies to find out how widely the virus has already spread. Some other ways to gauge its prevalence without spying on people directly might be to crowdsource the information using sites like covidnearyou.org, infer it from the volume of Google searches for covid-19 symptoms in different places, or even look for the virus in samples of sewage.

It’s also important to make sure people who have tested positive or been exposed are staying in quarantine. This, however, seems hard to do without more direct surveillance. Countries like Singapore and South Korea use various means, such as making people share their location via WhatsApp or download a specialized tracking app. Whether the US or European countries could impose (let alone enforce) that kind of control isn’t clear. Without it, we have to rely on people to be responsible citizens and self-isolate when necessary.

The point is, there are more and less creepy ways of doing all this, and the crisis could catalyze a broader conversation about how to use people’s data for the collective good while protecting the individual.

The hurdles

Regardless of the methods chosen, the goal is the same: after a couple of months of shutdown, to begin selectively easing restrictions on movement for people who can show they’re not a disease risk. With good enough testing capacity, data collection, contact tracing, enforcement of or adherence to quarantines, and coordination between the federal, state, and local governments, local outbreaks might be contained before they spread and force another national shutdown.

Gradually, more and more people would be able to return to some semblance of normality. It would still be a far cry from the packed bars and sports arenas of the past, but it would be a less unbearable way to wait for the discovery of a vaccine or cure. More important, the economy could start ticking back to life.

This depends on a lot of things going right, though. First, the initial shutdown probably needs to be harsher than it currently is in the US. At the time of writing some US states still had no stay-at-home orders, few cities were enforcing those orders, and there were no restrictions on travel between cities or states. In China, by contrast, cities in Hubei province spent some two months in strictly enforced lockdown, with public transport cut off and inter-city movement restricted.

Second, by some estimates, millions of virus tests a day, promptly performed, may be required to properly keep tabs on the pandemic in the US. By April 8 the country was testing around 150,000 people a day, and many results were taking more than a week to come back.

Third, testing for antibodies is still in its infancy, and most of the tests currently in development still return fairly high rates of both false positives and false negatives, according to the Johns Hopkins Center for Health Security. A plan to order millions of home test kits for the UK ran into trouble after experts found they might work as little as half the time.

Fourth, the US in particular has precious little coordinated national strategy. The chaotic management of the crisis by the Trump administration, the separation of powers between the federal government and the states, and the fragmented nature of privatized health care make it unclear how systems for automated contact tracing, quarantine enforcement, or immune certification will emerge.

That means a reopening of the US in June is optimistic, to say the least, and a reopening by April 30, as President Donald Trump was still hoping for in early April, is a fantasy. But Trump, along with his alter ego, Fox News, has gradually and reluctantly been moving toward a more realistic stance about the pandemic. By the end of March the White House had adopted projections of the death toll in line with those of many experts, even if those projections still assumed stricter social distancing measures than the federal government is currently calling for. As the pandemic spreads further into the country and starts to pummel the more Republican-leaning states, the president’s interests may start to align more closely with those of the country as a whole.

The outcome

This, then, is what passes for optimism in these grim times: the hope that while the days are still warm, and after tens if not hundreds of thousands of lives have been lost that could have been saved with quicker action, some of us will be able to start crawling out into the sunlight. We’ll emerge into a world in which people give each other wide berths and suspicious looks, where those public venues still in business allow only the thinnest crowds to congregate, and where a system of legal segregation determines who can enter them. Millions will still be out of work and struggling to get by, and people will watch nervously for signs of a new flare-up near them.

But as you contemplate that future, spare a thought for the billions of people in the world for whom even social distancing and basic hygiene are unaffordable luxuries, let alone testing, treatment, and technologically advanced governments. The pandemic will roar through the slums of the world’s poorest countries like fire through sawdust. In their considerably younger populations, it will probably be less deadly than in the rich world. But an unchecked pandemic there may also oblige other countries to keep their borders closed for longer to protect their own populations.

A miracle may still happen. Perhaps a readily available drug will work. Perhaps testing will show that the virus is far more widespread and less deadly than we thought. It’s worth hoping for these things, but we can’t bank on them. What we can expect is to have an increasingly clear picture, as the days go by, of how this will play out if we take the right steps.

That’s as normal as things are going to get for a while.


·        

Thursday, April 09, 2020

IMPORTANT MESSAGE. COVID-19 May Be Silently Spreading in Your Community: May this Angel of Death, Pass Over Us on Passover and Beyond

***URGENT.  PLEASE DISTRIBUTE WIDELY***

To ALL Texans:



PLEASE HEED THIS WARNING.  AS MUCH AS IT HURTS, PLEASE DO NOT GO TO CHURCH, SYNAGOGUE, MOSQUE, TEMPLE OR ANY PLACE OF WORSHIP ON EASTER SUNDAY.  

church, mass, synagogue, cathedral, chapel, shrine, temple, or any other place of worship

God gave us good science and scientists, so much so that they are sounding this alarm. Specifically, University of Texas researchers, Emily Javan, Dr. Spencer J. Fox, and Dr. Lauren Ancel Meyers, are desperate to make us aware that the presence of a single case of COVID in your small town or community is noteworthy.
"Using a model developed during the Zika outbreak, the study relied on recent virus data from counties across the country. The implication for states like Texas—where testing is limited, medical supplies scarce, and many counties have few or no confirmed coronavirus cases—is alarming."
It's not that our scientists do not value or respect you or your beliefs.  They have posted their work online because of the urgency of the situation.  No one is questioning anyone's faith or devotion.  It's that they really care for us all and feel ethically bound to let us all know what we're facing.  We're truly all in this together.  Forewarned is forearmed.  If you have any questions or concerns, I'm sure that you can reach out to Dr. Meyers directly at LaurenMeyers@austin.utexas.edu

As much as humanly possible, let's let this virus, this Angel of Death, pass over us on passover and beyond.


-Angela Valenzuela


#StayHome #SocialDistancing #Covid—19 #Covid #Texas #Coronavirus



COVID-19 May Be Silently Spreading Across Rural Counties, University of Texas Researchers Believe

A new study suggests that even in communities with few confirmed cases, the coronavirus could be spreading much more quickly than people realize.

Looking at a map of Texas coronavirus cases, there might be a tendency to assume that large swaths of the state, most of them rural and conservative, have mostly been spared from the outbreak. 
The big clusters of illness, after all—the ones immediately threatening to overwhelm hospitals and turn grocery shopping into a life or death choice—are in cities like Dallas, Houston, Austin, and San Antonio. Ninety-three Texas counties officially remain, at least per confirmed tests, coronavirus-free, and 28 others have reported only a single case. 
That thinking influenced officials like Governor Greg Abbott, who finally issued a stay-at-home order last week after Texas reported 3,266 confirmed cases and the number of cases was increasing by the hundreds across multiple major metropolitan areas. 
Abbott had argued that he was protecting the economies and livelihoods of counties without coronavirus cases from shutdown until the data indicated it was necessary. But a new study from researchers at the University of Texas at Austin casts serious doubt on the wisdom of a wait-and-see approach to containment, and underscores how severe the problem could be in rural counties. The study’s authors suggest that U.S. counties with only a few cases or none at all may still have “sustained community transmission” of the virus. 
Using a model developed during the Zika outbreak, the study relied on recent virus data from counties across the country. The implication for states like Texas—where testing is limited, medical supplies scarce, and many counties have few or no confirmed coronavirus cases—is alarming.



covid 19 probability map
University of Texas at Austin researchers’ map of the probability that the coronavirus has spread in counties across Texas as of April 7.
Courtesy of The University of Texas at Austin

Out of Texas’s 254 counties, 161 have reported COVID-19 cases as of Tuesday. While dozens of counties have reported only a few cases, researchers argue that people living in those areas may still be facing a significant risk. In counties with no cases, researchers conclude that the chance of an “undetected outbreak,” in which there is sustained community transmission, stands at 9 percent. In counties with a single case, like Hansford and Gaines, the chance that an outbreak has already begun jumps to 51 percent, they conclude. In counties with three known cases, such as Milam and Grimes, the chance that an outbreak is unfolding rises to 79 percent. 
Though strict distancing is now in place in Texas, the researchers note that other locations around the country have yet to adopt restrictive measures. “What we’re really concerned about is that local governments may be waiting to see a very large number of cases before enacting strict social distancing guidelines,” said Emily Javan, a UT doctoral student who coauthored the study with infectious disease experts Spencer J. Fox and Lauren Ancel Meyers. “By the time you’ve detected one or two cases, there’s already an underlying epidemic—and that’s why you detected it in the first place.” 
Though their study, “Probability of current COVID-19 outbreaks in all U.S. counties,” is not yet peer-reviewed, Javan said researchers posted their work online because of the urgency of their findings. 
One case doesn’t seem like very much, but depending on where you live, that may be a large proportion of your community,” Javan said. “The numbers may not seem huge, but you have to place them in context.”
To put it another way: “Going to church with 120 people may not be a good idea if you’re in a small area that only has 120 people,” Javan added. (Notably, although Abbott’s order encourages churches to conduct services remotely when possible, religious gatherings are considered essential services, and are allowed to proceed, under the governor’s order.)
To assess the virus’s potential spread, Javan said researchers used tools developed during the Zika outbreak, another crisis involving a widely spread virus that was difficult to track because of asymptomatic carriers. The researchers, who are still validating their model as new data on cases comes in, admit that they arrived at their numbers—which they label “risk estimates”—based on a principal assumption. That assumption: because of low testing, only one in ten cases across the country is being identified and reported. It may seem obvious in cities, where more people are more likely to interact, that there are many potential carriers, but less obvious in rural areas, where people may assume that a low number of cases means they’re safe.
For policymakers still debating the efficacy of enacting social-distancing measures, those estimates, researchers write, should be treated like the kind of evidence that can be used to make tough decisions. It could also be used to bolster Abbott’s decision to shut down day-to-day life in counties that the virus seemingly hasn’t touched. 
“The fate of outbreaks in counties across the U.S. very much hinges on the speed of local interventions,” researchers write. “Early and extensive social distancing can block community transmission, avert rises in hospitalizations that overwhelm local capacity, and save lives.”