HDAC1 regulates the chromatin landscape to control transcriptional dependencies in chronic lymphocytic leukemia

Author:

Lai Tzung-Huei1,Ozer Hatice Gulcin1ORCID,Gasparini Pierluigi2ORCID,Nigita Giovanni1ORCID,Distefano Rosario1ORCID,Yu Lianbo1,Ravikrishnan Janani3,Yilmaz Selen1ORCID,Gallegos Juan Jesus4ORCID,Shukla Sachet A5ORCID,Puduvalli Vinay K6ORCID,Woyach Jennifer A.7,Lapalombella Rosa1,Blachly James S.1ORCID,Byrd John C.8,Sampath Deepa4

Affiliation:

1. The Ohio State University, Columbus, Ohio, United States

2. The Ohio State Univeristy, Columbus, Ohio, United States

3. The Ohio State University Wexner Medical Center, Columbus, Ohio, United States

4. The University of Texas MD Anderson Cancer Center, Houston, Texas, United States

5. The University of Texas MD Anderson Cancer Center, Sugar Land, Texas, United States

6. The Univ. of Texas MD Anderson Cancer Center, Houston, Texas, United States

7. The Ohio State University Comprehensive Cancer Center, Columbus, Ohio, United States

8. The University of Cincinnati, Cincinnati, Ohio, United States

Abstract

Chronic lymphocytic leukemia (CLL) is a quiescent B-cell malignancy that depends on transcriptional dysregulation for survival. The histone deacetylases are transcriptional regulators whose role within the regulatory chromatin and consequence on the CLL transcriptome is poorly characterized. Here, we profiled and integrated the genome wide occupancy of HDAC1, BRD4, H3K27Ac and H3K9Ac signals with chromatin accessibility, Pol2 occupancy and target expression signatures in CLL cells. We identified that when HDAC1 was recruited within super-enhancers marked by acetylated H3K27 and BRD4, it functioned as a transcriptional activator that drove the de novo expression of select genes to facilitate survival and progression in CLL. Targeting HDACs reduced BRD4 and Pol2 engagement to downregulate the transcript and proteins levels of specific oncogenic driver genes in CLL such as BLK, a key mediator of the B-cell receptor pathway, core transcription factors such as PAX5 and IKZF3 and the anti-apoptotic gene, BCL2. Concurrently, HDAC1, when recruited in the absence of super-enhancers repressed target gene expression. HDAC inhibition reversed silencing of a defined set of protein coding and noncoding RNA genes. We focused on a specific set of microRNA genes and show that their upregulation was inversely correlated with the expression of CLL specific survival, transcription factor and signaling genes. Our findings identify that the transcriptional activator and repressor functions of HDACs cooperate within the same tumor to establish the transcriptional dependencies essential for survival in CLL.

Publisher

American Society of Hematology

Subject

Hematology

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