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High-Throughput Screening, CRISPR & Immunotherapy - The Sidi Chen Lab at Yale School of Medicine

January 08, 2026

Transcript

  • 00:05Immunotherapy
  • 00:07is, by definition, the therapy
  • 00:09to harness the immune system
  • 00:11as therapeutics.
  • 00:12It utilize
  • 00:13your own cells
  • 00:15and turn them into
  • 00:17disease fighting drugs.
  • 00:19Our own cells
  • 00:21are also controlled by our
  • 00:22own genome. So we have
  • 00:25a three billion
  • 00:26base pair genome that encodes
  • 00:28the secret of life that
  • 00:30governs the development, the morphology,
  • 00:33your height,
  • 00:34your behavior, and diseases when
  • 00:36they go wrong.
  • 00:37So
  • 00:39our own cells
  • 00:40that we utilize in neurotherapy
  • 00:42to stimulate, to attack cancer
  • 00:44cells,
  • 00:45they're also governed by those
  • 00:46genes.
  • 00:47So in order to understand
  • 00:49how immunotherapy work, we need
  • 00:50to know how the genes
  • 00:52work in in order to
  • 00:53control the immune cells.
  • 00:58We try to understand what
  • 00:59genes control what immune cells
  • 01:01in what disease settings
  • 01:04in a systems manner, which
  • 01:06means, broadly speaking, we look
  • 01:08at every gene,
  • 01:10every molecule,
  • 01:11and all the possible cell
  • 01:13types,
  • 01:14trying to understand what are
  • 01:15the key problems of immunotherapy
  • 01:18and how we can overcome
  • 01:19them.
  • 01:23One of the most canonical
  • 01:26approach we utilize is unbiased
  • 01:28genetic screens.
  • 01:29With the technology breakthroughs such
  • 01:32as CRISPR gene editing,
  • 01:34we can now edit every
  • 01:35human genes in our hands
  • 01:37in a massive parallel fashion.
  • 01:39So we can perturb all
  • 01:41the twenty thousand genes in
  • 01:42your genome or every possible
  • 01:44base you're interested in, and
  • 01:46then see which genes, when
  • 01:48you perturb, would have an
  • 01:49effect
  • 01:50influencing the outcome of immunotherapy.
  • 01:52And then you can develop
  • 01:54new therapy targeting those genes
  • 01:55that we identified.
  • 01:57So we utilized the shotgun
  • 01:59approach, which is
  • 02:01in vivo
  • 02:03high throughput crystal screen,
  • 02:05and we mutate every gene
  • 02:06possible,
  • 02:07and we eventually came up
  • 02:09with a smaller number of
  • 02:10genes that we believe truly
  • 02:12have a profound effect on
  • 02:14the immune cells function.
  • 02:15And those, if we hit
  • 02:17them,
  • 02:18we can potentially develop novel
  • 02:20novel therapeutics.
  • 02:24The way we develop therapeutics,
  • 02:27we call the gene editing
  • 02:29for
  • 02:30NS immunotherapy.
  • 02:31For the first bucket,
  • 02:33we utilize gene editing to
  • 02:35discover novel targets and then
  • 02:37we hit it with a
  • 02:38traditional modality such as small
  • 02:39molecule or antibodies.
  • 02:41And the second approach is
  • 02:43that for those quote unquote
  • 02:45undruggable or difficult to drug
  • 02:47targets, we we don't need
  • 02:48to make a molecule. We
  • 02:50can directly
  • 02:51edit these genes
  • 02:53inside the genome of the
  • 02:54cell,
  • 02:55and we utilize those cells
  • 02:57as therapeutics.
  • 02:58And finally, what do I
  • 03:00mean by gene editing as
  • 03:01immunotherapy,
  • 03:02right? I mean,
  • 03:03forget about the traditional approach,
  • 03:05forget about the cells, let's
  • 03:07deliver the whole machinery of
  • 03:08gene editing
  • 03:09into the body as a
  • 03:10gene therapy and let that
  • 03:13stimulate or
  • 03:14manipulate
  • 03:15or fine tune the immune
  • 03:16system so they can attack
  • 03:18cancer or they can treat
  • 03:20diseases.
  • 03:21So those are the three
  • 03:22buckets of how we develop
  • 03:23new therapeutics.