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Saturday, January 30, 2021

Finally, Gov. Cuomo is called to task

 There’s a truth that the media and others who fawned over Gov. Cuomo didn’t want to hear: that his executive orders were one of the biggest reasons why so many of our parents and grandparents died of COVID in their eldercare facilities

We lost more seniors from COVID in nursing homes than 9/11 and Hurricane Katrina combined. That includes my husband’s parents, Mickey and Dee Newman. Why didn’t this fact spark outrage? 

Now we finally know why, and it’s what we suspected for many months: because this administration has been doing everything it could to keep that information hidden by blaming, bullying, lying and covering up. 

I’ve personally been attacked by the governor’s spokespeople as have my family and the other brave people that dared to go against this administration. I was told that I wasn’t a credible about anything except the weather and that I was part of a death cult that wouldn’t stop hounding Cuomo or his office. I was warned to “watch my back” and “be careful.” He was too powerful, both revered and feared by those that covered him and worked for him. 

Meanwhile, our grieving families continued to watch the mainstream media outlets fawn over him and never ask the questions we so desperately wanted to know: Why did he write that executive order to bring infected patients into nursing homes, and why was he covering up the total number of seniors who died including those who passed away in the hospital? 

Gov. Andrew Cuomo delivers his State of the State address virtually from The War Room at the state Capitol, in Albany
New York may have undercounted COVID-19 deaths among nursing home residents by thousands, the state attorney general charged in a report.
AP Photo/Hans Pennink, Pool, File

We never heard the answers. Instead, we watched him promote and celebrate himself, write his leadership book, and win an Emmy Award. 

It was infuriating. Frustrating. Soul crushing. And despite all my attempts for accountability, I was starting to believe we might never see the day that this governor and his administration were called to task. 

Until now. A 76-page report from the New York Attorney General’s Office that finally gave us reason to believe that the nightmare we were going through was very real. 

Our feelings of hurt, dismay, anger, betrayal from this leader and his Heath Department were valid. What we knew in our hearts was the truth. 

In her report, James wrote: 

“While we cannot bring back the individuals we lost to this crisis, this report seeks to offer transparency that the public deserves and to spur increased action to protect our most vulnerable residents.” 

That’s the part that made me cry. Because we can’t bring back my husband’s parents, but I believe that they helped give me the strength to not give up. 

I called my husband and his sister and told them Mickey and Dee didn’t give up. They helped us to keep going. 

Because those we lost are the ones we are fighting for. 

This report is a door opening, with a glimmer of light peeking through. Perhaps there may be justice, and their deaths will not have been in vain. 

I do hope we see a full investigation into the nursing-home massacre here in New York. These deaths could’ve been prevented. Maybe this is the beginning of protecting other families in the future. 

But first, we need the whole truth and nothing but the truth. From this governor, his Health Department and all those that helped cover it up. Because we deserve that. My husband’s parents deserve that. 

Gov. Cuomo said this week in an interview on one of the channels that never asked him questions about the nursing-home tragedy: 

Incompetent government kills people. More people died than needed to die in COVID. That’s the truth.” 

Turns out he was talking about himself. 

Janice Dean is the senior meteorologist and an anchor for Fox News.

https://nypost.com/2021/01/28/finally-gov-cuomo-is-called-to-task/

Jefferies Names Possible Hedge Fund Short Targets

 Jefferies' equity strategist Steven DeSanctis said while in football targeting will get you ejected, in today's market, some cheer you on.

Amid the ongoing short squeezes in GameStop (NYSE: GME), AMC (NYSE: AMC), Express (NASDAQ: EXPR), and others, the strategist highlighted some others that could be ripe.

DeSanctis highlighted that, just as market veteran Art Cashin points out, short selling is nothing new.

He said looking across the six portfolios they track, they have seen the most-shorted names rise 13.4% this month and they're up 157% from the low. In contrast, the Most Popular Longs by Hedge Funds are off by 4.9%, and the UBER Crowded names have slipped 5.6%. For those names that are owned by Long Only folks but Short by Hedge Funds, these stocks are up 9.6% and 110% from 3/18. This all comes on the back of the S&P 500 being basically flat

DeSanctis comments: "Looking for shorts to trade, we offer a few selections on our menu: The data provided by our friends at MSCI allow us to build portfolios based on Net Short positions, those names that have gone from Long to Short. We also add a sprinkle of liquidity, or lack there of, along with biggest shorts by sector. The Margin Table gives you Net Short that are tougher to trade and could see more volatility, especially over the next several days/ weeks. We also look at names that moved from Long to Short and here are the 20 in our portfolio: AYX, BIIB, CME, DPZ, DUK, EIX, ESPR, FDX, HOLX, IIPR, CME, LHX, NVCR, PFE, PNC, ROK, ROP, URI, WDC, YUMC."

https://www.streetinsider.com/Analyst+Comments/Jefferies+Names+Possible+Hedge+Fund+Short+Targets/17884750.html

First study to look at potency of maternal antibodies

 Research shows that certain segments of the population who contract SARS-CoV-2, the strain of the virus that causes COVID-19, tend to get sicker and are at higher risk for worse outcomes, and that includes pregnant women and infants under two months.

In a new study to be presented today at the Society for Maternal-Fetal Medicine's (SMFM) annual meeting, The Pregnancy Meeting™, researchers will unveil findings that suggest that women who contract COVID-19 during pregnancy are able to make antibodies, but that transfer of these antibodies to their infants is less than expected.

Antibodies are produced by the body's immune system to help fight against infection. Specifically, the study looked at immunoglobulin G (IgG) and neutralization activity, a measure of the potency of antibody response, in the maternal immune system.

IgG antibodies make up approximately 75 percent to 80 percent of all the antibodies in the body and can cross the placenta to the fetus. Neutralizing antibodies block infection and make viruses less active.

"A recent study analyzed maternal antibody response to infection, but our study is the first to look at the maternal immune response and neutralizing antibodies," said one of the study's lead authors Naima Joseph, MD, MPH, a clinical fellow in maternal-fetal medicine at Emory University School of Medicine and a member of the SMFM COVID-19 Task Force. "We also looked at the transfer of those antibodies across the placenta to the fetus."

The study analyzed maternal and umbilical cord blood samples from 32 women who tested positive for COVID-19 during pregnancy. Of the maternal samples collected, 100 percent contained IgG and 94 percent contained neutralizing antibodies. Of the cord blood samples, 91 percent contained IgG and 25 percent contained neutralizing antibodies.

"What was interesting about this study is that even if a woman was asymptomatic, she still developed high levels of COVID-19 IgG and neutralizing antibodies," said Joseph.

"A major way that infants are protected from infection is from the antibodies that they receive in utero, so whether a woman was asymptomatic or not, we would have expected to see a higher percentage of antibodies transferred from mother to infant, especially neutralizing antibodies," said another of the study's lead authors, Martina L. Badell, MD, a maternal-fetal subspecialist and associate professor at Emory University School of Medicine. "The next step is to understand why antibody transfer is different in COVID-19 infection from other infections and whether the transfer of these antibodies increases when we vaccinate a pregnant woman."

https://www.eurekalert.org/pub_releases/2021-01/sfmm-fst012721.php

How covid damages lung cells within hours and how to control it

 What if scientists knew exactly what impact the SARS-CoV-2 virus had inside our lung cells, within the first few hours of being infected? Could they use that information to find drugs that would disrupt the virus' replication process before it ever gets fully underway? The discovery that several existing FDA-approved drugs--including some originally designed to fight cancer--can stop coronavirus in its tracks indicates the answer is a resounding yes.

A team of Boston University researchers--hailing from BU's National Emerging Infectious Diseases Laboratories (NEIDL), the Center for Regenerative Medicine (CReM) at BU's Medical Campus, and BU's Center for Network Systems Biology (CNSB)--embarked on a months-long, collaborative and interdisciplinary quest, combining multiple areas of expertise in virology, stem cell-derived lung tissue engineering, and deep molecular sequencing to begin answering those questions. They simultaneously infected tens of thousands of human lung cells with the SARS-CoV-2 virus, and then tracked precisely what happens in all of those cells during the first few moments after infection. As if that was not complicated enough, the team had to cool their entire high-containment research facility inside the NEIDL to a brisk 61 degrees Fahrenheit.

The result of that challenging and massive undertaking? The BU team has revealed the most comprehensive map to date of all the molecular activities that are triggered inside lung cells at the onset of coronavirus infection. They also discovered there are at least 18 existing, FDA-approved drugs that could potentially be repurposed to combat COVID-19 infections shortly after a person becomes infected. Experimentally, five of those drugs reduced coronavirus spread in human lung cells by more than 90 percent. Their findings were recently published in Molecular Cell.

Now, academic and industry collaborators from around the world are in contact with the team about next steps to move their findings from bench to bedside, the researchers say. (Although COVID-19 vaccines are starting to be rolled out, it's expected to take the better part of a year for enough people to be vaccinated to create herd immunity. And there are no guarantees that the current vaccine formulations will be as effective against future SARS-CoV-2 strains that could emerge over time.) More effective and well-timed therapeutic interventions could help reduce the overall number of deaths related to COVID-19 infections.

"What makes this research unusual is that we looked at very early time points [of infection], at just one hour after the virus infects lung cells. It was scary to see that the virus already starts to damage the cells so early during infection," says Elke Mühlberger, one of the study's senior investigators and a virologist at BU's NEIDL. She typically works with some of the world's most lethal viruses like Ebola and Marburg.

"The most striking aspect is how many molecular pathways are impacted by the virus," says Andrew Emili, another of the study's senior investigators, and the director of BU's CNSB, which specializes in proteomics and deep sequencing of molecular interactions. "The virus does wholesale remodeling of the lung cells--it's amazing the degree to which the virus commandeers the cells it infects."

Viruses can't replicate themselves because they lack the molecular machinery for manufacturing proteins--that's why they rely on infecting cells to hijack the cells' internal machinery and use it to spread their own genetic material. When SARS-CoV-2 takes over, it completely changes the cells' metabolic processes, Emili says, and even damages the cells' nuclear membranes within three to six hours after infection, which the team found surprising. In contrast, "cells infected with the deadly Ebola virus don't show any obvious structural changes at these early time points of infection, and even at late stages of infection, the nuclear membrane is still intact," Mühlberger says.

The nuclear membrane surrounds the nucleus, which holds the majority of a cell's genetic information and controls and regulates normal cellular functions. With the cell nucleus compromised by SARS-CoV-2, things rapidly take a bad turn for the entire cell. Under siege, the cells--which normally play a role in maintaining the essential gas exchange of oxygen and carbon dioxide that occurs when we breathe--die. As the cells die, they also emit distress signals that boost inflammation, triggering a cascade of biological activity that speeds up cell death and can eventually lead to pneumonia, acute respiratory distress, and lung failure.

"I couldn't have predicted a lot of these pathways, most of them were news to me," says Andrew Wilson, one of the study's senior authors, a CReM scientist, and a pulmonologist at Boston Medical Center (BMC), BU's teaching hospital. At BMC, Boston's safety net hospital, Wilson has been on the front lines of the COVID-19 pandemic since March 2020, trying to treat and save the sickest patients in the hospital's ICU. "That's why our [experimental] model is so valuable."

The team leveraged the CReM's organoid expertise to grow human lung air sac cells, the type of cell that lines the inside of lungs. Air sac cells are usually difficult to grow and maintain in traditional culture and difficult to extract directly from patients for research purposes. That's why much coronavirus research to date by other labs has relied on the use of more readily available cell types, like kidney cells from monkeys. The problem with that is kidney cells from monkeys don't react the same way to coronavirus infection as lung cells from humans do, making them a poor model for studying the virus--whatever is learned from them doesn't easily translate into clinically relevant findings for treating human patients.

"Our organoids, developed by our CReM faculty, are engineered from stem cells--they're not identical to the living, breathing cells inside our bodies, but they are the closest thing to it," says Darrell Kotton, one of the study's senior authors. He is a director of the CReM and a pulmonologist at BMC, where he has worked alongside Wilson in the ICU treating COVID-19 patients. The two of them often collaborated with Mühlberger, Emili, and other members of their research team via Zoom calls that they managed to join during brief moments of calm in the ICU.

In another recent study using the CReM's engineered human lung cells, the research team confirmed that existing drugs remdesivir and camostat are effective in combating the virus, though neither is a perfect fix for controlling the inflammation that COVID-19 causes. Remdesivir, a broad-use antiviral, has already been used clinically in coronavirus patients. But based on the new study's findings that the virus does serious damage to cells within hours, setting off inflammation, the researchers say there's likely not much that antiviral drugs like remdesivir can do once an infection has advanced to the point where someone would need to be put on a ventilator in the ICU. "[Giving remdesivir] can't save lives if the disease has already progressed," Emili says.

Seeing how masterfully SARS-CoV-2 commandeers human cells and subverts them to do the manufacturing work of replicating the viral genome, it reminded the researchers of another deadly invader.

"I was surprised that there are so many similarities between cancer cells and SARS-CoV-2-infected cells," Mühlberger says. The team screened a number of cancer drugs as part of their study and found that several of them are able to block SARS-CoV-2 from multiplying. Like viruses, cancer cells want to replicate their own genomes, dividing over and over again. To do that, they need to produce a lot of pyrimidine, a basic building block for genetic material. Interrupting the production of pyrimidine--using a cancer drug designed for that purpose--also blocks the SARS-CoV-2 genome from being built. But Mühlberger cautions that cancer drugs typically have a lot of side effects. "Do we really want to use that heavy stuff against a virus?" she says. More studies will be needed to weigh the pros and cons of such an approach.

The findings of their latest study took the four senior investigators and scientists, postdoctoral fellows, and graduate students from their laboratories almost four months, working nearly around the clock, to complete the research. Of critical importance to the team's leaders was making sure that the experimental setup had rock-solid foundations in mimicking what's actually happening when the SARS-CoV-2 virus infects people.

"Science is the answer--if we use science to ask the lung cells what goes wrong when they are infected with coronavirus, the cells will tell us," Kotton says. "Objective scientific data gives us hints at what to do and has lessons to teach us. It can reveal a path out of this pandemic."

He's particularly excited about the outreach the team has received from collaborators around the world. "People with expertise in supercomputers and machine learning are excited about using those tools and the datasets from our publication to identify the most promising drug targets [for treating COVID-19]," he says.

Kotton says the theme that's become obvious among COVID-19 clinicians and scientists is understanding that timing is key. "Once a patient is on a ventilator in the ICU, we feel limited in what we can do for their body," he says. "Timing is everything, it's crucial to identify early windows of opportunity for intervention. You can keep guessing and hope we get lucky--or you [do the research] to actually understand the infection from its inception, and take the guesswork out of drug development."

https://www.eurekalert.org/pub_releases/2021-01/bu-hcd012821.php

Forecast :125,000 fewer U.S. COVID deaths if 50% initiate vaccination by March 1

 A new report combining forecasting and expert prediction data, predicts that 125,000 lives could be saved by the end of 2021 if 50% or more of the U.S. population initiated COVID vaccination by March 1, 2021.

"Meta and consensus forecast of COVID-19 targets," developed by Thomas McAndrew, a computational scientist and faculty member at Lehigh University's College of Health, and colleagues, incorporates data from experts and trained forecasters, combining their predictions into a single consensus forecast. In addition McAndrew and his team produce a metaforecast, which is a combination of an ensemble of computational models and their consensus forecast.

In addition to predictions related to the impact of vaccinations, the report includes forecasting analyses on a variety of U.S. COVID-related issues, including number of cases, hospitalizations and deaths and the prevalence of the B.1.1.7 variant, which first emerged in the United Kingdom but is believed to be spreading rapidly in the U.S.

From the report:

  • 125,000 fewer deaths predicted by end of 2021 if greater than or equal to 50% of U.S. population initiates vaccination by March 1, 2021: McAndrew finds that if greater than or equal to 50% of the U.S. population initiates vaccination by March 1, 2021 the consensus median prediction of the cumulative number of deaths by Dec. 31, 2021 is 520,000. In contrast, if less than 50% of the U.S. population initiates vaccination the consensus median prediction is 645,000. A consensus of subject matter experts and trained forecasters predict 125,000 (difference between two medians above) fewer deaths due to COVID-19 if at least 50% of the population was vaccinated by March 1. 2021 and highlights the importance of increasing the rate of vaccinations throughout the U.S.
  • Predicted increases in hospitalizations, cases and deaths: The team finds that a consensus of experts and trained forecasters predicts, for the week beginning Jan 24th and ending Jan 30th, an increase in the number of pediatric and adult hospital admissions (median = 132,500), increase in the number of new confirmed cases of COVID-19 (median = 1,700,000), and an increase in the number of new deaths due to COVID-19 (median = 22,400).
  • Predicted increase in B.1.1.7 variant prevalence: The report shows that a consensus of subject matter experts and trained forecasters predict 87% of US samples sent for genomic sequencing in the first two weeks of Feb. that have an S-gene dropout (present in all B.1.1.7 samples) will be identified as the B.1.1.7 variant. Currently, according to McAndrew, approximately 22% of samples are being identified as the B.1.1.7 variant.

McAndrew's approach to forecasting is different from the traditional approach, he says. Rather than build a computational model to predict cases, deaths, and hospitalizations due to COVID, he asks experts and trained forecasters to predict these targets and combines their predictions into a single consensus forecast.

In addition he produces a metaforecast: a combination of an ensemble of computational models and the consensus forecast.

"The idea is to combine computational models with human judgment to make more accurate predictions of the US outbreak," says McAndrew.

https://www.eurekalert.org/pub_releases/2021-01/lu-ff012921.php

How vitamins, steroids and potential antivirals might affect SARS-CoV-2

 Evidence is emerging that vitamin D - and possibly vitamins K and A - might help combat COVID-19. A new study from the University of Bristol published in the journal of the German Chemical Society Angewandte Chemie has shown how they - and other antiviral drugs - might work. The research indicates that these dietary supplements and compounds could bind to the viral spike protein and so might reduce SARS-CoV-2 infectivity. In contrast, cholesterol may increase infectivity, which could explain why having high cholesterol is considered a risk factor for serious disease.

Recently, Bristol researchers showed that linoleic acid binds to a specific site in the viral spike protein, and that by doing so, it locks the spike into a closed, less infective form. Now, a research team has used computational methods to search for other compounds that might have the same effect, as potential treatments. They hope to prevent human cells becoming infected by preventing the viral spike protein from opening enough to interact with a human protein (ACE2). New anti-viral drugs can take years to design, develop and test, so the researchers looked through a library of approved drugs and vitamins to identify those which might bind to this recently discovered 'druggable pocket' inside the SARS-CoV-2 spike protein.

The team first studied the effects of linoleic acid on the spike, using computational simulations to show that it stabilizes the closed form. Further simulations showed that dexamethasone - which is an effective treatment for COVID-19 - might also bind to this site and help reduce viral infectivity in addition to its effects on the human immune system.

The team then conducted simulations to see which other compounds bind to the fatty acid site. This identified some drugs that have been found by experiments to be active against the virus, suggesting that this may be one mechanism by which they prevent viral replication such as, by locking the spike structure in the same way as linoleic acid.

The findings suggested several drug candidates among available pharmaceuticals and dietary components, including some that have been found to slow SARS-CoV-2 reproduction in the laboratory. These have the potential to bind to the SARS-CoV-2 spike protein and may help to prevent cell entry.

The simulations also predicted that the fat-soluble vitamins D, K and A bind to the spike in the same way making the spike less able to infect cells.

Dr Deborah Shoemark, Senior Research Associate (Biomolecular Modelling) in the School of Biochemistry, who modelled the spike, explained: "Our findings help explain how some vitamins may play a more direct role in combatting COVID than their conventional support of the human immune system.

"Obesity is a major risk factor for severe COVID. Vitamin D is fat soluble and tends to accumulate in fatty tissue. This can lower the amount of vitamin D available to obese individuals. Countries in which some of these vitamin deficiencies are more common have also suffered badly during the course of the pandemic. Our research suggests that some essential vitamins and fatty acids including linoleic acid may contribute to impeding the spike/ACE2 interaction. Deficiency in any one of them may make it easier for the virus to infect."

Pre-existing high cholesterol levels have been associated with increased risk for severe COVID-19. Reports that the SARS-CoV-2 spike protein binds cholesterol led the team to investigate whether it could bind at the fatty acid binding site. Their simulations indicate that it could bind, but that it may have a destabilising effect on the spike's locked conformation, and favour the open, more infective conformation.

Dr Shoemark continued: "We know that the use of cholesterol lowering statins reduces the risk of developing severe COVID and shortens recovery time in less severe cases. Whether cholesterol de-stabilises the "benign", closed conformation or not, our results suggest that by directly interacting with the spike, the virus could sequester cholesterol to achieve the local concentrations required to facilitate cell entry and this may also account for the observed loss of circulating cholesterol post infection."

Professor Adrian Mulholland, of Bristol's School of Chemistry, added: "Our simulations show how some molecules binding at the linoleic acid site affect the spike's dynamics and lock it closed. They also show that drugs and vitamins active against the virus may work in the same way. Targeting this site may be a route to new anti-viral drugs. A next step would be to look at effects of dietary supplements and test viral replication in cells."

Alison Derbenwick Miller, Vice President, Oracle for Research, said: "It's incredibly exciting that researchers are gaining new insights into how SARS-CoV-2 interacts with human cells, which ultimately will lead to new ways to fight COVID-19. We are delighted that Oracle's high-performance cloud infrastructure is helping to advance this kind of world-changing research. Growing a globally-connected community of cloud-powered researchers is exactly what Oracle for Research is designed to do."

The team included experts from Bristol UNCOVER Group, including Bristol's Schools of Chemistry, Biochemistry, Cellular and Molecular Medicine, and Max Planck Bristol Centre for Minimal Biology, and Bristol Synthetic Biology Centre, using Bristol's high performance computers and the UK supercomputer, ARCHER, as well as Oracle cloud computing. The study was supported by grants from the EPSRC and the BBSRC.

https://www.eurekalert.org/pub_releases/2021-01/uob-hvs012921.php

Medigen, Dynavax start Phase 2 for Covid vax candidate

 Medigen Vaccine Biologics Corporation (MVC) (TPEx: 6547.TWO) a biopharmaceutical company focusing on the development and production of vaccines and biologics, and Dynavax Technologies Corporation (Nasdaq: DVAX), a biopharmaceutical company focused on developing and commercializing vaccines, today announced that the first participant has been dosed in the Phase 2 clinical trial evaluating MVC's COVID-19 vaccine candidate, MVC-COV1901.  MVC-COV1901 is a subunit vaccine with recombinant S-2P antigen adjuvanted with CpG 1018 supplied by Dynavax.

MVC's Phase 2 clinical trial is a randomized, double-blinded, multi-center clinical trial, expecting to enroll 3,700 healthy subjects, 20 years of age and above. The trial will evaluate MVC-COV1901 safety and endurance of immunogenicity. The proposed dosing regimen is two doses administered intramuscularly one month apart. Based on MVC's Phase 1 interim data, MVC-COV1901 has demonstrated a good safety profile and encouraging immunogenicity performance.

"MVC is delighted to receive the Phase 2 clinical trial IND approval by Taiwan FDA for MVC-COV1901 vaccine" said Charles Chen, Chief Executive Officer at Medigen. "We would like to express our deepest gratitude to all the volunteers, partners and Dynavax for the continued support.  MVC will continue with our best efforts to bring MVC-COV1901 vaccine to market to meet our commitment to help the global community in the fight against COVID-19."

"Dynavax is proud to collaborate with MVC and support their commitment to help the global fight against COVID-19," commented Ryan Spencer, Chief Executive Officer of Dynavax. "We are pleased with the results of Phase 1 clinical testing, where the combination of S-2P and CpG 1018 plus alum induced neutralizing antibody levels higher than human convalescent sera and was well tolerated, allowing for the continued development on the path to bringing this product to market to address the global demand for coronavirus vaccines."

https://www.prnewswire.com/news-releases/medigen-vaccine-biologics-covid-19-vaccine-adjuvanted-with-dynavaxs-cpg-1018-announces-first-participant-dosed-in-phase-2-clinical-trial-in-taiwan-301213721.html