Mitzi Kuroda headshot

Mitzi I. Kuroda, Ph.D.

Professor of Genetics, Harvard Medical School

Analysis of chromatin organization and epigenetic gene regulation in health and disease

We study epigenetic regulators using genetics, genomics and proteomics. The factors we study include the MSL dosage compensation complex in fruit flies, the Polycomb Group in both flies and humans, and a translocation oncoprotein, BRD4-NUT, that drives an aggressive form of squamous cell cancer in humans. The common thread is that each is strongly implicated in the creation of active or silent chromatin domains that are integral to the fidelity of gene regulation. One serious obstacle to understanding the interactions of such factors with additional proteins and RNAs on chromatin has been the trade-off between removal from the DNA, to allow purification, and the resultant loss of interactions with key partners in function. Therefore, we have adapted a crosslinking approach that allows us to affinity-purify fragmented chromatin with protein and RNAs attached, to avoid disruption of interactions that may only occur on DNA. After reversal of crosslinks, the DNA, protein, histone peptides, and RNA fractions can be separately analyzed using comprehensive sequencing and mass spectrometry. Our current results are providing us with a rich and comprehensive view of key epigenetic complexes bound to their chromatin templates.

An example is our recent work with BRD4-NUT, a translocation-encoded fusion protein that plays a defining role in NUT midline carcinoma (NMC). In collaboration with Christopher French’s lab at BWH, we discovered that nuclear foci containing BRD4-NUT protein correspond to extremely broad, cell type-specific, hyperacetylated chromatin domains in patient tissue and cell lines. These are much larger than typical activated regions or ‘super-enhancers’, ranging from 100 kb to 2 Mb. These ‘megadomains’ appear to reflect a pathologic, feed-forward regulatory loop in which hyperacetylation drives further bromodomain-dependent binding and aberrant transcriptional activity. The novelty of megadomains is that they spread from select pre-existing enhancers, surprisingly not enriched for recently described ‘super-enhancers’, to fill individual topologically associating domains (TADs). Although the selected TADs generally differ by cell type, the c-MYC and TP63 regions are targeted in all NMC patient cells examined to date. The ability to spread to fill whole regulatory compartments surrounding genes encoding proteins like MYC and p63 is likely to explain the extremely aggressive nature of NUT midline carcinoma.

Regional control of chromatin organization by noncoding roX RNAs and the NURF remodeling complex in Drosophila melanogaster.
Authors: Authors: Bai X, Larschan E, Kwon SY, Badenhorst P, Kuroda MI.
Genetics
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Normalization and experimental design for ChIP-chip data.
Authors: Authors: Peng S, Alekseyenko AA, Larschan E, Kuroda MI, Park PJ.
BMC Bioinformatics
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Noncoding RNAs and intranuclear positioning in monoallelic gene expression.
Authors: Authors: Yang PK, Kuroda MI.
Cell
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High-resolution ChIP-chip analysis reveals that the Drosophila MSL complex selectively identifies active genes on the male X chromosome.
Authors: Authors: Alekseyenko AA, Larschan E, Lai WR, Park PJ, Kuroda MI.
Genes Dev
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MSL complex associates with clusters of actively transcribed genes along the Drosophila male X chromosome.
Authors: Authors: Larschan E, Alekseyenko AA, Lai WR, Park PJ, Kuroda MI.
Cold Spring Harb Symp Quant Biol
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Global regulation of X chromosomal genes by the MSL complex in Drosophila melanogaster.
Authors: Authors: Hamada FN, Park PJ, Gordadze PR, Kuroda MI.
Genes Dev
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Variable splicing of non-coding roX2 RNAs influences targeting of MSL dosage compensation complexes in Drosophila.
Authors: Authors: Park Y, Oh H, Meller VH, Kuroda MI.
RNA Biol
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Sequence-specific targeting of MSL complex regulates transcription of the roX RNA genes.
Authors: Authors: Bai X, Alekseyenko AA, Kuroda MI.
EMBO J
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Multiple classes of MSL binding sites target dosage compensation to the X chromosome of Drosophila.
Authors: Authors: Oh H, Bone JR, Kuroda MI.
Curr Biol
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Molecular biology. Filling gaps in genome organization.
Authors: Authors: Alekseyenko AA, Kuroda MI.
Science
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