Polyamines are polycationic alkyl-amines abundant in proliferating stem and cancer cells. How these metabolites influence numerous cellular processes remains unclear. Here we show that polyamine levels decrease during differentiation and that inhibiting polyamine synthesis leads to a differentiated-like cell state. Polyamines are enriched in the nucleus, where their loss drives changes in chromatin accessibility and histone post-translational modifications. Polyamines interact electrostatically with DNA on the nucleosome core, freeing histone tails to conformations accessible to chromatin-modifying enzymes. Consistent with their role in increasing histone-tail accessibility, polyamines are able to replace MYC's role in reprogramming to pluripotency. These data reveal a mechanism by which an abundant metabolite influences chromatin structure and function in a direct but sequence independent manner, facilitating chromatin remodeling during reprogramming and limiting it during fate commitment.
Histone post-translational modifications (PTMs) play a critical role in chromatin regulation. It has been proposed that these PTMs form localized 'codes' that are read by specialized regions (reader domains) in chromatin-associated proteins (CAPs) to regulate downstream function. Substantial effort has been made to define [CAP: histone PTM] specificities, and thus decipher the histone code and guide epigenetic therapies. However, this has largely been done using the reductive approach of isolated reader domains and histone peptides, which cannot account for any higher-order factors. Here, we show that the [BPTF PHD finger and bromodomain: histone PTM] interaction is dependent on nucleosome context. The tandem reader selectively associates with nucleosomal H3K4me3 and H3K14ac or H3K18ac, a combinatorial engagement that despite being in cis is not predicted by peptides. This in vitro specificity of the BPTF tandem reader for PTM-defined nucleosomes is recapitulated in a cellular context. We propose that regulatable histone tail accessibility and its impact on the binding potential of reader domains necessitates we refine the 'histone code' concept and interrogate it at the nucleosome level.
The core histone tails are critical in chromatin structure and signaling. Studies over the past several decades have provided a wealth of information on the histone tails and their interaction with chromatin factors. However, the conformation of the histone tails in a chromatin relevant context has remained elusive. Only recently has enough evidence emerged to start to build a structural model of the tails in the context of nucleosomes and nucleosome arrays. Here, we review these studies and propose that the histone tails adopt a high-affinity fuzzy complex with DNA, characterized by robust but dynamic association. Furthermore, we discuss how these DNA-bound conformational ensembles promote distinct chromatin structure and signaling, and that their fuzzy nature is important in transitioning between functional states.
Chromatin is the form in which the eukaryotic genome is packaged into the cell nucleus, which regulates accessibility for all DNA templated processes. The nucleosome, which is the repeating subunit of chromatin, is composed of DNA wrapped around a histone octameric protein complex. It is at the level of the nucleosome that chromatin structure is modulated by chromatin regulators. Interactions between these regulators and the nucleosome are mediated by reader domains found in the chromatin regulatory complexes. Reader domain association is driven by a variety of covalent post-translational modifications (PTMs) found on histone proteins. The unstructured histone tails are known to be enriched in these PTMs. Histone tail/reader domain interactions have been widely investigated. However, studies have largely been conducted using peptide fragments to represent the histone tails, leaving a large gap in our knowledge of how reader domains recognize their substrate in the proper context of the nucleosome. Previously, our lab demonstrated that the association of the PHD finger of BPTF is inhibited by histone tail accessibility in the context of the nucleosome. Here, utilizing a novel nucleosome screen approach and NMR spectroscopy, we investigate further with the BPTF tandem domains, consisting of the PHD finger and a bromodomain. We find that, in addition to regulating the affinity of reader domains, the nucleosomal context also dictates the specificity of the reader domains. These studies provide a fundamental insight into the importance of investigating histone reader domains in the context of the nucleosome. Further, this will help us understand mechanisms of chromatin signaling and genome regulation, while providing us insight into a variety of epigenetic disease mechanisms.
The large genome of human cytomegalovirus (HCMV) is transcribed by RNA polymerase II (Pol II). However, it is not known how closely this betaherpesvirus follows host transcriptional paradigms. We applied PRO-Seq and PRO-Cap methods to profile and quantify transcription initiation and productive elongation across the host and virus genomes in late infection. A major similarity between host transcription and viral transcription is that treatment of cells with the P-TEFb inhibitor flavopiridol preempts virtually all productive elongation, which otherwise covers most of the HCMV genome. The deep, nucleotide resolution identification of transcription start sites (TSSs) enabled an extensive analysis of core promoter elements. An important difference between host and viral transcription is that initiation is much more pervasive on the HCMV genome. The sequence preferences in the initiator region around the TSS and the utilization of upstream T/A-rich elements are different. Upstream TATA positions the TSS and boosts initiation in both the host and the virus, but upstream TATT has a significant stimulatory impact only on the viral template. The major immediate early (MIE) promoter remained active during late infection and was accompanied by transcription of both strands of the MIE enhancer from promoters within the enhancer. Surprisingly, we found that the long noncoding RNA4.9 is intimately associated with the viral origin of replication (oriLyt) and was transcribed to a higher level than any other viral or host promoter. Finally, our results significantly contribute to the idea that late in infection, transcription takes place on viral genomes that are not highly chromatinized. IMPORTANCE Human cytomegalovirus infects more than half of humans, persists silently in virtually all tissues, and produces life-threatening disease in immunocom-promised individuals. HCMV is also the most common infectious cause of birth defects and the leading nongenetic cause of sensorineural hearing loss in the United States. Because there is no vaccine and current drugs have problems with potency, toxicity, and antiviral drug resistance, alternative treatment strategies that target different points of viral control are needed. Our current study contributes to this goal by applying newly developed methods to examine transcription of the HCMV and host genomes at nucleotide resolution in an attempt to find targetable differences between the two. After a thorough analysis of productive elongation and of core promoter element usage, we found that some mechanisms of regulating transcription are shared between the host and HCMV but that others are distinctly different. This suggests that HCMV transcription may be a legitimate target for future antiviral therapies and this might translate to other herpesviruses.