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INFORMATION FOR

    Genome Architectures Spatial Transcriptomics - The Siyuan Wang Lab

    December 11, 2025

    Transcript

    • 00:06Each of our cells
    • 00:08have about six feet of
    • 00:10genomic DNA,
    • 00:11and it's packaged in a
    • 00:12cell nucleus that's about ten
    • 00:14micron in diameter.
    • 00:16The ratio of this packaging
    • 00:17is about the same as
    • 00:19packaging the whole circumference of
    • 00:21Manhattan into a soccer ball.
    • 00:23So the three d genome
    • 00:25organization
    • 00:26on the biological front is
    • 00:27actually linked to many essential
    • 00:29genomic functions. And also when
    • 00:31it goes awry, it's linked
    • 00:32to all kinds of diseases
    • 00:33and also aging.
    • 00:38We are quite a technology
    • 00:40driven lab. We develop state
    • 00:42of the art image based
    • 00:44spatial omics technologies.
    • 00:46We're quite well known for
    • 00:48developing such technologies for studying
    • 00:50the three d genome organization.
    • 00:52Although in recent years, we're
    • 00:53also branching out to other
    • 00:55modes of spatial omics, such
    • 00:57as spatial transcriptomics and and
    • 00:59spatial epigenomics.
    • 01:00We also apply these technologies
    • 01:02that we develop into different
    • 01:04areas of biological study as
    • 01:06well, particularly with a focus
    • 01:08on cancer, aging, and immuno
    • 01:09biology.
    • 01:14The whole lab actually started,
    • 01:16based on a technology I
    • 01:18developed in my post shock
    • 01:19phase called the chromatin tracing.
    • 01:21So it was the first
    • 01:22in kind image based genomics
    • 01:25technology that really really opened
    • 01:26up this subfield of three
    • 01:28d genome organization.
    • 01:30And this allows
    • 01:31us to essentially trace the
    • 01:33three d folding organization of
    • 01:35the DNA or the genome
    • 01:37directly by imaging.
    • 01:38But the one issue we
    • 01:40had is if you want
    • 01:42to discover new regulators of
    • 01:44the three d genome, it's
    • 01:45very low throughput.
    • 01:47We basically developed another technology
    • 01:49called perturb tracing
    • 01:50to address that. We combined
    • 01:53pooled whisper screen
    • 01:55technology
    • 01:56with
    • 01:56the quantum tracing technology.
    • 01:58And we developed a new
    • 02:01in situ barcoding
    • 02:02and the decoding technique
    • 02:04that allows us to
    • 02:06distinguish which cell has which
    • 02:08perturbation
    • 02:09and at the same time,
    • 02:10in the same cells,
    • 02:12trace their three d folding
    • 02:13organization.
    • 02:14So this allows us to
    • 02:16screen for hundreds of potential,
    • 02:18regulators of the three d
    • 02:19genome organization.
    • 02:25If we can find a
    • 02:26way, for example, to use
    • 02:27this three d genome regulators
    • 02:29as handles
    • 02:30to either halt
    • 02:32or revert the deleterious
    • 02:34three d genome changes during
    • 02:36diseases such as cancer,
    • 02:38Or if,
    • 02:40for example,
    • 02:41some protein is a downstream
    • 02:44effector of the three d
    • 02:45genome.
    • 02:46Maybe just by removing that
    • 02:47protein,
    • 02:49one can have beneficial effect
    • 02:51to the patient.
    • 02:53So either from the upstream,
    • 02:55correct the three d genome,
    • 02:56or from the downstream, block
    • 02:57the factor that leads to
    • 02:59diseases.