Forest H. Andrews
University of Colorado Denver
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Forest H. Andrews.
Nature Chemical Biology | 2016
Forest H. Andrews; Stephen A. Shinsky; Erin K. Shanle; Joseph B. Bridgers; Anneliese Gest; Ian K. Tsun; Krzysztof Krajewski; Xiaobing Shi; Tatiana G. Kutateladze
The discovery of new histone modifications is unfolding at startling rates, however, the identification of effectors capable of interpreting these modifications has lagged behind. Here we report the YEATS domain as an effective reader of histone lysine crotonylation – an epigenetic signature associated with active transcription. We show that the Taf14 YEATS domain engages crotonyllysine via a unique π-π-π-stacking mechanism and that other YEATS domains have crotonyllysine binding activity.
Nature Chemical Biology | 2016
Forest H. Andrews; Tatiana G. Kutateladze
The field of chromatin biology has been advancing at an accelerated pace. Recent discoveries of previously uncharacterized sites and types of post-translational modifications (PTMs) and the identification of new sets of proteins responsible for the deposition, removal, and reading of these marks continue raising the complexity of an already exceedingly complicated biological phenomenon. In this Perspective article we examine the biological importance of new types and sites of histone PTMs and summarize the molecular mechanisms of chromatin engagement by newly discovered epigenetic readers. We also highlight the imperative role of structural insights in understanding PTM-reader interactions and discuss future directions to enhance the knowledge of PTM readout.
Genes & Development | 2015
Erin K. Shanle; Forest H. Andrews; Hashem Meriesh; Stephen L. McDaniel; Raghuvar Dronamraju; Julia V. DiFiore; Deepak Kumar Jha; Glenn G. Wozniak; Joseph B. Bridgers; Jenny L. Kerschner; Krzysztof Krajewski; Glòria Mas Martín; Ashby J. Morrison; Tatiana G. Kutateladze
The YEATS domain, found in a number of chromatin-associated proteins, has recently been shown to have the capacity to bind histone lysine acetylation. Here, we show that the YEATS domain of Taf14, a member of key transcriptional and chromatin-modifying complexes in yeast, is a selective reader of histone H3 Lys9 acetylation (H3K9ac). Structural analysis reveals that acetylated Lys9 is sandwiched in an aromatic cage formed by F62 and W81. Disruption of this binding in cells impairs gene transcription and the DNA damage response. Our findings establish a highly conserved acetyllysine reader function for the YEATS domain protein family and highlight the significance of this interaction for Taf14.
Nucleic Acids Research | 2016
Brianna J. Klein; Uma M. Muthurajan; Marie Eve Lalonde; Matthew D. Gibson; Forest H. Andrews; Maggie R. D. Hepler; Shinichi Machida; Kezhi Yan; Hitoshi Kurumizaka; Michael G. Poirier; Jacques Côté; Karolin Luger; Tatiana G. Kutateladze
BRPF1 (bromodomain PHD finger 1) is a core subunit of the MOZ histone acetyltransferase (HAT) complex, critical for normal developmental programs and implicated in acute leukemias. BRPF1 contains a unique assembly of zinc fingers, termed a PZP domain, the physiological role of which remains unclear. Here, we elucidate the structure-function relationship of this novel epigenetic reader and detail the biological and mechanistic consequences of its interaction with nucleosomes. PZP has a globular architecture and forms a 2:1 stoichiometry complex with the nucleosome, bivalently interacting with histone H3 and DNA. This binding impacts the nucleosome dynamics, shifting the DNA unwrapping/rewrapping equilibrium toward the unwrapped state and increasing DNA accessibility. We demonstrate that the DNA-binding function of the BRPF1 PZP domain is required for the MOZ-BRPF1-ING5-hEaf6 HAT complex to be recruited to chromatin and to acetylate nucleosomal histones. Our findings reveal a novel link between chromatin dynamics and MOZ-mediated acetylation.
Proceedings of the National Academy of Sciences of the United States of America | 2017
Forest H. Andrews; Alok Singh; Shweta Joshi; Cassandra A. Smith; Guillermo A. Morales; Joseph R. Garlich; Donald L. Durden; Tatiana G. Kutateladze
Significance In this work, we describe a dual-action inhibitor that simultaneously disrupts functions of two key MYC-mediating factors—PI3K and BRD4. We show that the concomitant inhibition of PI3K and BRD4 blocks MYC expression and activation, promotes MYC degradation, and markedly inhibits cancer cell growth and metastasis. Our findings suggest that the dual-activity inhibitor represents a highly promising lead compound for the development of novel anticancer therapeutics. MYC is a major cancer driver but is documented to be a difficult therapeutic target itself. Here, we report on the biological activity, the structural basis, and therapeutic effects of the family of multitargeted compounds that simultaneously disrupt functions of two critical MYC-mediating factors through inhibiting the acetyllysine binding of BRD4 and the kinase activity of PI3K. We show that the dual-action inhibitor impairs PI3K/BRD4 signaling in vitro and in vivo and affords maximal MYC down-regulation. The concomitant inhibition of PI3K and BRD4 blocks MYC expression and activation, promotes MYC degradation, and markedly inhibits cancer cell growth and metastasis. Collectively, our findings suggest that the dual-activity inhibitor represents a highly promising lead compound for the development of novel anticancer therapeutics.
Cell Reports | 2016
Forest H. Andrews; Qiong Tong; Kelly D. Sullivan; Evan M. Cornett; Yi Zhang; Muzaffar Ali; Jae Woo Ahn; Ahway Pandey; Angela H. Guo; James C. Costello; Joaquín M. Espinosa; Scott B. Rothbart; Tatiana G. Kutateladze
MORC3 is linked to inflammatory myopathies and cancer; however, the precise role of MORC3 in normal cell physiology and disease remains poorly understood. Here, we present detailed genetic, biochemical, and structural analyses of MORC3. We demonstrate that MORC3 is significantly upregulated in Down syndrome and that genetic abnormalities in MORC3 are associated with cancer. The CW domain of MORC3 binds to the methylated histone H3K4 tail, and this interaction is essential for recruitment of MORC3 to chromatin and accumulation in nuclear bodies. We show that MORC3 possesses intrinsic ATPase activity that requires DNA, but it is negatively regulated by the CW domain, which interacts with the ATPase domain. Natively linked CW impedes binding of the ATPase domain to DNA, resulting in a decrease in the DNA-stimulated enzymatic activity. Collectively, our studies provide a molecular framework detailing MORC3 functions and suggest that its modulation may contribute to human disease.
Nucleic Acids Research | 2016
Jovylyn Gatchalian; Carmen Mora Gallardo; Stephen A. Shinsky; Ruben Rosas Ospina; Andrea Mansilla Liendo; Krzysztof Krajewski; Brianna J. Klein; Forest H. Andrews; Karel H. M. van Wely; Tatiana G. Kutateladze
Histone post-translational modifications, and specific combinations they create, mediate a wide range of nuclear events. However, the mechanistic bases for recognition of these combinations have not been elucidated. Here, we characterize crosstalk between H3T3 and H3T6 phosphorylation, occurring in mitosis, and H3K4me3, a mark associated with active transcription. We detail the molecular mechanisms by which H3T3ph/K4me3/T6ph switches mediate activities of H3K4me3-binding proteins, including those containing plant homeodomain (PHD) and double Tudor reader domains. Our results derived from nuclear magnetic resonance chemical shift perturbation analysis, orthogonal binding assays and cell fluorescence microscopy studies reveal a strong anti-correlation between histone H3T3/T6 phosphorylation and retention of PHD finger proteins in chromatin during mitosis. Together, our findings uncover the mechanistic rules of chromatin engagement for H3K4me3-specific readers during cell division.
Transcription | 2016
Forest H. Andrews; Erin K. Shanle; Tatiana G. Kutateladze
ABSTRACT The YEATS domains of AF9 and Taf14 have recently been found to recognize the histone H3K9ac modification. In this commentary, we discuss the mechanistic and biological implications of this interaction. We compare structures of the YEATS-H3K9ac complexes, highlighting a novel mechanism for the acetyllysine recognition through the aromatic cage. We also summarize the latest findings underscoring a critical role of the acetyllysine binding function of AF9 and Taf14 in transcriptional regulation and DNA repair.
Nucleic Acids Research | 2018
Brianna J. Klein; Salar Ahmad; Kendra R. Vann; Forest H. Andrews; Zachary A Mayo; Gaelle Bourriquen; Joseph B. Bridgers; Jinyong Zhang; Jacques Côté; Tatiana G. Kutateladze
Abstract Yaf9 is an integral part of the NuA4 acetyltransferase and the SWR1 chromatin remodeling complexes. Here, we show that Yaf9 associates with acetylated histone H3 with high preference for H3K27ac. The crystal structure of the Yaf9 YEATS domain bound to the H3K27ac peptide reveals that the sequence C-terminal to K27ac stabilizes the complex. The side chain of K27ac inserts between two aromatic residues, mutation of which abrogates the interaction in vitro and leads in vivo to phenotypes similar to YAF9 deletion, including loss of SWR1-dependent incorporation of variant histone H2A.Z. Our findings reveal the molecular basis for the recognition of H3K27ac by a YEATS reader and underscore the importance of this interaction in mediating Yaf9 function within the NuA4 and SWR1 complexes.
Nature Communications | 2017
Wenyi Mi; Haipeng Guan; Jie Lyu; Dan Zhao; Yuanxin Xi; Shiming Jiang; Forest H. Andrews; Xiaolu Wang; Mihai Gagea; Hong Wen; Laszlo Tora; Sharon Y.R. Dent; Tatiana G. Kutateladze; Wei Li; Haitao Li; Xiaobing Shi
Recognition of modified histones by “reader” proteins constitutes a key mechanism regulating diverse chromatin-associated processes important for normal and neoplastic development. We recently identified the YEATS domain as a novel acetyllysine-binding module; however, the functional importance of YEATS domain-containing proteins in human cancer remains largely unknown. Here, we show that the YEATS2 gene is highly amplified in human non-small cell lung cancer (NSCLC) and is required for cancer cell growth and survival. YEATS2 binds to acetylated histone H3 via its YEATS domain. The YEATS2-containing ATAC complex co-localizes with H3K27 acetylation (H3K27ac) on the promoters of actively transcribed genes. Depletion of YEATS2 or disruption of the interaction between its YEATS domain and acetylated histones reduces the ATAC complex-dependent promoter H3K9ac levels and deactivates the expression of essential genes. Taken together, our study identifies YEATS2 as a histone H3K27ac reader that regulates a transcriptional program essential for NSCLC tumorigenesis.Histone modification recognition is an important mechanism for gene expression regulation in cancer. Here, the authors identify YEATS2 as a histone H3K27ac reader, regulating a transcriptional program essential for tumorigenesis in human non-small cell lung cancer.