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Tuesday, May 4, 2021

How a bad day at work led to better COVID predictions - PRNewswire

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Morjaria says, "Generally, I have good intuition for how patients will progress." However, that intuition failed her when confronted with COVID-19. She says:
"When the pandemic first hit, we had a hard time understanding and predicting which patients were going to have severe COVID. People were ordering a slew of labs, and a lot of times, there were unnecessary tests."

Navlakha joined CSHL in 2019. He uses computer science to understand biological processes. Morjaria wondered if her husband could help:

"So I came home and I would tell him, 'Saket, it would be great if we could come up with a methodology to figure out, using machine-learning, which patients are going to go on to develop severe COVID versus not.'"

The team collected 267 variables from cancer patients diagnosed with COVID-19. The variables ranged from age and sex to cancer type, most recent treatments, and laboratory results. They trained a machine-learning computer program to classify patients into three groups. Those who will require high levels of oxygen through a ventilator:

  1. immediately
  2. after a few days
  3. not at all

The researchers found approximately 50 variables that contributed most to the outcome prediction. Their method had an accuracy rate of 70–85%, and it performed especially well for patients that would require immediate ventilation. More generally, the tool can help tease apart interactions between multiple risk factors that might not be apparent, even to those with trained eyes. The program also prevents over-testing, which Morjaria knows will "spare patients unnecessary massive hospital costs."

Navlakha believes this work would not have been possible without close collaboration with his wife and other MSK clinician-scientists, including Rocio-Perez Johnston and Ying Taur. He says:

"Sejal and I talk about better ways to integrate what she's experiencing on the bedside versus what we can analyze and do computationally. As someone who's never worked with clinical data, if I were to try to have done this without Sejal's guidance, I would have made tons of mistakes."

Navlakha and Morjaria hope their work will inspire more physicians and computer scientists to work together and create innovative clinical solutions for complex diseases.

About Cold Spring Harbor Laboratory
Founded in 1890, Cold Spring Harbor Laboratory has shaped contemporary biomedical research and education with programs in cancer, neuroscience, plant biology and quantitative biology. Home to eight Nobel Prize winners, the private, not-for-profit Laboratory employs 1,100 people including 600 scientists, students and technicians. For more information, visit www.cshl.edu

SOURCE Cold Spring Harbor Laboratory

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"bad" - Google News
May 04, 2021 at 07:00AM
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How a bad day at work led to better COVID predictions - PRNewswire
"bad" - Google News
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