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  3. Clinical Epigenetics
  4. 2016
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  2. Journals
  3. Clinical Epigenetics
  4. 2016
Showing papers in "Clinical Epigenetics in 2016"
Journal Article•10.1186/S13148-016-0228-Z•
Epigenetic age acceleration predicts cancer, cardiovascular, and all-cause mortality in a German case cohort

[...]

Laura Perna1, Yan Zhang1, Ute Mons1, Bernd Holleczek, Kai Uwe Saum1, Hermann Brenner1 •
German Cancer Research Center1
03 Jun 2016-Clinical Epigenetics
TL;DR: Results show that age acceleration in terms of the difference between age predicted by DNA methylation and chronological age is an independent predictor of all-cause and cause-specific mortality and may be useful as a general marker of healthy aging.
Abstract: Background Previous studies have developed models predicting methylation age from DNA methylation in blood and other tissues (epigenetic clock) and suggested the difference between DNA methylation and chronological ages as a marker of healthy aging. The goal of this study was to confirm and expand such observations by investigating whether different concepts of the epigenetic clocks in a population-based cohort are associated with cancer, cardiovascular, and all-cause mortality.

573 citations

Journal Article•10.1186/S13148-016-0223-4•
Targeting histone methyltransferases and demethylases in clinical trials for cancer therapy

[...]

Ludovica Morera1, Michael Lübbert1, Manfred Jung1•
University of Freiburg1
24 May 2016-Clinical Epigenetics
TL;DR: This review describes those enzymes and their inhibitors that have already reached the first stages of clinical trials in cancer therapy, namely the histone methyltransferases DOT1L and EZH2 as well as the demethylase LSD1.
Abstract: The term epigenetics is defined as heritable changes in gene expression that are not due to alterations of the DNA sequence. In the last years, it has become more and more evident that dysregulated epigenetic regulatory processes have a central role in cancer onset and progression. In contrast to DNA mutations, epigenetic modifications are reversible and, hence, suitable for pharmacological interventions. Reversible histone methylation is an important process within epigenetic regulation, and the investigation of its role in cancer has led to the identification of lysine methyltransferases and demethylases as promising targets for new anticancer drugs. In this review, we describe those enzymes and their inhibitors that have already reached the first stages of clinical trials in cancer therapy, namely the histone methyltransferases DOT1L and EZH2 as well as the demethylase LSD1.

385 citations

Journal Article•10.1186/S13148-016-0224-3•
Sirtuin functions and modulation: from chemistry to the clinic.

[...]

Vincenzo Carafa1, Dante Rotili2, Mariantonietta Forgione3, Mariantonietta Forgione2, Francesca Cuomo1, Enrica Serretiello1, Gebremedhin Solomon Hailu2, Elina M. Jarho4, Maija Lahtela-Kakkonen4, Antonello Mai2, Lucia Altucci1 •
Seconda Università degli Studi di Napoli1, Sapienza University of Rome2, Istituto Italiano di Tecnologia3, University of Eastern Finland4
25 May 2016-Clinical Epigenetics
TL;DR: The role, mechanism of action, and biological function of the seven sirtuins, as well as their inhibitors and activators are reviewed.
Abstract: Sirtuins are NAD+-dependent histone deacetylases regulating important metabolic pathways in prokaryotes and eukaryotes and are involved in many biological processes such as cell survival, senescence, proliferation, apoptosis, DNA repair, cell metabolism, and caloric restriction. The seven members of this family of enzymes are considered potential targets for the treatment of human pathologies including neurodegenerative diseases, cardiovascular diseases, and cancer. Furthermore, recent interest focusing on sirtuin modulators as epigenetic players in the regulation of fundamental biological pathways has prompted increased efforts to discover new small molecules able to modify sirtuin activity. Here, we review the role, mechanism of action, and biological function of the seven sirtuins, as well as their inhibitors and activators.

348 citations

Journal Article•10.1186/S13148-016-0225-2•
Histone acetyltransferases: challenges in targeting bi-substrate enzymes

[...]

Hannah Wapenaar1, Frank J. Dekker1•
University of Groningen1
26 May 2016-Clinical Epigenetics
TL;DR: A careful characterization of molecular aspects of HATs and HAT inhibitors, such as the HAT catalytic mechanism and the enzyme kinetics of small molecule HAT inhibitor, will greatly improve the development of potent and selective HAT inhibition and provide validated starting points for further development towards therapeutic agents.
Abstract: Histone acetyltransferases (HATs) are epigenetic enzymes that install acetyl groups onto lysine residues of cellular proteins such as histones, transcription factors, nuclear receptors, and enzymes. HATs have been shown to play a role in diseases ranging from cancer and inflammatory diseases to neurological disorders, both through acetylations of histone proteins and non-histone proteins. Several HAT inhibitors, like bi-substrate inhibitors, natural product derivatives, small molecules, and protein–protein interaction inhibitors, have been developed. Despite their potential, a large gap remains between the biological activity of inhibitors in in vitro studies and their potential use as therapeutic agents. To bridge this gap, new potent HAT inhibitors with improved properties need to be developed. However, several challenges have been encountered in the investigation of HATs and HAT inhibitors that hinder the development of new HAT inhibitors. HATs have been shown to function in complexes consisting of many proteins. These complexes play a role in the activity and target specificity of HATs, which limits the translation of in vitro to in vivo experiments. The current HAT inhibitors suffer from undesired properties like anti-oxidant activity, reactivity, instability, low potency, or lack of selectivity between HAT subtypes and other enzymes. A characteristic feature of HATs is that they are bi-substrate enzymes that catalyze reactions between two substrates: the cofactor acetyl coenzyme A (Ac-CoA) and a lysine-containing substrate. This has important—but frequently overlooked—consequences for the determination of the inhibitory potency of small molecule HAT inhibitors and the reproducibility of enzyme inhibition experiments. We envision that a careful characterization of molecular aspects of HATs and HAT inhibitors, such as the HAT catalytic mechanism and the enzyme kinetics of small molecule HAT inhibitors, will greatly improve the development of potent and selective HAT inhibitors and provide validated starting points for further development towards therapeutic agents.

223 citations

Journal Article•10.1186/S13148-016-0256-8•
DNA methylation: conducting the orchestra from exposure to phenotype?

[...]

Fleur A. D. Leenen1, Claude P. Muller1, Jonathan D. Turner•
University of Trier1
06 Sep 2016-Clinical Epigenetics
TL;DR: This review addresses the current pathophysiological and clinical associations of such characteristically smallDNA methylation changes, the ever-growing roles of DNA methylation and the evidence available, particularly from the glucocorticoid receptor, as well as addressing the underlying question as to what represents a genuine biologically significant difference in methylation.
Abstract: DNA methylation, through 5-methyl- and 5-hydroxymethylcytosine (5mC and 5hmC), is considered to be one of the principal interfaces between the genome and our environment, and it helps explain phenotypic variations in human populations. Initial reports of large differences in methylation level in genomic regulatory regions, coupled with clear gene expression data in both imprinted genes and malignant diseases, provided easily dissected molecular mechanisms for switching genes on or off. However, a more subtle process is becoming evident, where small (<10 %) changes to intermediate methylation levels are associated with complex disease phenotypes. This has resulted in two clear methylation paradigms. The latter “subtle change” paradigm is rapidly becoming the epigenetic hallmark of complex disease phenotypes, although we are currently hampered by a lack of data addressing the true biological significance and meaning of these small differences. Our initial expectation of rapidly identifying mechanisms linking environmental exposure to a disease phenotype led to numerous observational/association studies being performed. Although this expectation remains unmet, there is now a growing body of literature on specific genes, suggesting wide ranging transcriptional and translational consequences of such subtle methylation changes. Data from the glucocorticoid receptor (NR3C1) has shown that a complex interplay between DNA methylation, extensive 5′UTR splicing, and microvariability gives rise to the overall level and relative distribution of total and N-terminal protein isoforms generated. Additionally, the presence of multiple AUG translation initiation codons throughout the complete, processed mRNA enables translation variability, hereby enhancing the translational isoforms and the resulting protein isoform diversity, providing a clear link between small changes in DNA methylation and significant changes in protein isoforms and cellular locations. Methylation changes in the NR3C1 CpG island alters the NR3C1 transcription and eventually protein isoforms in the tissues, resulting in subtle but visible physiological variability. This review addresses the current pathophysiological and clinical associations of such characteristically small DNA methylation changes, the ever-growing roles of DNA methylation and the evidence available, particularly from the glucocorticoid receptor of the cascade of events initiated by such subtle methylation changes, as well as addressing the underlying question as to what represents a genuine biologically significant difference in methylation.

190 citations

Journal Article•10.1186/S13148-016-0282-6•
Blood-based DNA methylation as biomarker for breast cancer: a systematic review

[...]

Qiuqiong Tang1, Qiuqiong Tang2, Jie Cheng1, Jie Cheng2, Xue Cao2, Xue Cao1, Harald Surowy2, Harald Surowy1, Barbara Burwinkel1, Barbara Burwinkel2 •
Heidelberg University1, German Cancer Research Center2
14 Nov 2016-Clinical Epigenetics
TL;DR: The possibility of using blood-based DNA methylation marker as promising marker for BC risk stratification is suggested, as several studies found associations between certain methylation level in blood and BC risk.
Abstract: Multiple studies have investigated global DNA methylation profiles and gene-specific DNA methylation in blood-based DNA to develop powerful screening markers for cancer. This systematic review summarizes the current evidence on methylation studies that investigated methylation level of blood-derived DNA of breast cancer (BC) patients in comparison to healthy controls by conducting a systematic literature review in PubMed and Web of Science. Essential results, such as methylation levels of BC cases and healthy controls, p values, and odds ratios, were extracted from these studies by two investigators independently. Overall, 45 publications met the inclusion criteria for this review. DNA from whole blood, as well as cell-free DNA (cfDNA) from serum or plasma, was used in these studies. The most common method used for measuring global DNA methylation was the investigation of repetitive elements as surrogates and the application of array-based genome-wide methylation analysis. For measuring gene-specific methylation level, methylation-specific PCR and pyrosequencing were the most frequently used methods. Epigenome-wide blood DNA hypomethylation in BC patients were reported in several studies; however, the evidence is still not conclusive. The most frequently investigated gene in whole blood was BRCA1, which was found more frequently methylated in patients compared to controls. RASSF1A was the most widely investigated gene in cfDNA of serum or plasma, which was also found more frequently methylated in patients compared to controls. Several of the eligible studies reported the associations of global hypomethylation and increased BC risk. Studies investigated associations between gene-specific methylation and BC risk, while got heterogeneous results. But two studies reported that hypermethylation of ATM gene was associated with increased BC risk, which suggest the potential use of this gene for BC risk stratification. Overall, our review suggests the possibility of using blood-based DNA methylation marker as promising marker for BC risk stratification, as several studies found associations between certain methylation level in blood and BC risk. However, so far, the evidence is still quite limited. Optimal markers are yet to be developed and promising results needed to be validated in prospective study cohorts and tested in large screening populations.

170 citations

Journal Article•10.1186/S13148-016-0287-1•
cPAS-based sequencing on the BGISEQ-500 to explore small non-coding RNAs

[...]

Tobias Fehlmann1, Stefanie Reinheimer1, Geng Chunyu, Su Xiaoshan, Snezana Drmanac, Andrei Alexeev, Zhang Chunyan, Christina Backes1, Nicole Ludwig1, Martin Hart1, Dan An, Zhenzhen Zhu, Chongjun Xu, Ao Chen, Ming Ni, Jian Liu, Yuxiang Li, Matthew Poulter, Yongping Li, Cord F. Stähler1, Radoje Drmanac, Xun Xu, Eckart Meese1, Andreas Keller1 •
Saarland University1
21 Nov 2016-Clinical Epigenetics
TL;DR: While there is apparently no ideal platform for all challenges of miRNome analyses, cPAS shows high technical reproducibility and supplements the hitherto available platforms.
Abstract: We present the first sequencing data using the combinatorial probe-anchor synthesis (cPAS)-based BGISEQ-500 sequencer. Applying cPAS, we investigated the repertoire of human small non-coding RNAs and compared it to other techniques. Starting with repeated measurements of different specimens including solid tissues (brain and heart) and blood, we generated a median of 30.1 million reads per sample. 24.1 million mapped to the human genome and 23.3 million to the miRBase. Among six technical replicates of brain samples, we observed a median correlation of 0.98. Comparing BGISEQ-500 to HiSeq, we calculated a correlation of 0.75. The comparability to microarrays was similar for both BGISEQ-500 and HiSeq with the first one showing a correlation of 0.58 and the latter one correlation of 0.6. As for a potential bias in the detected expression distribution in blood cells, 98.6% of HiSeq reads versus 93.1% of BGISEQ-500 reads match to the 10 miRNAs with highest read count. After using miRDeep2 and employing stringent selection criteria for predicting new miRNAs, we detected 74 high-likely candidates in the cPAS sequencing reads prevalent in solid tissues and 36 candidates prevalent in blood. While there is apparently no ideal platform for all challenges of miRNome analyses, cPAS shows high technical reproducibility and supplements the hitherto available platforms.

145 citations

Journal Article•10.1186/S13148-016-0271-9•
Epigenetic polypharmacology: from combination therapy to multitargeted drugs

[...]

Angel R. de Lera1, A. Ganesan2•
University of Vigo1, University of East Anglia2
12 Oct 2016-Clinical Epigenetics
TL;DR: This new generation of epigenetic drugs may rival the so-called magic bullets in the treatment of diseases that arise as a consequence of the deregulation of multiple signaling pathways provided the challenge of optimization of the activities shown by the pharmacophores with the different targets is addressed.
Abstract: The modern drug discovery process has largely focused its attention in the so-called magic bullets, single chemical entities that exhibit high selectivity and potency for a particular target. This approach was based on the assumption that the deregulation of a protein was causally linked to a disease state, and the pharmacological intervention through inhibition of the deregulated target was able to restore normal cell function. However, the use of cocktails or multicomponent drugs to address several targets simultaneously is also popular to treat multifactorial diseases such as cancer and neurological disorders. We review the state of the art with such combinations that have an epigenetic target as one of their mechanisms of action. Epigenetic drug discovery is a rapidly advancing field, and drugs targeting epigenetic enzymes are in the clinic for the treatment of hematological cancers. Approved and experimental epigenetic drugs are undergoing clinical trials in combination with other therapeutic agents via fused or linked pharmacophores in order to benefit from synergistic effects of polypharmacology. In addition, ligands are being discovered which, as single chemical entities, are able to modulate multiple epigenetic targets simultaneously (multitarget epigenetic drugs). These multiple ligands should in principle have a lower risk of drug-drug interactions and drug resistance compared to cocktails or multicomponent drugs. This new generation may rival the so-called magic bullets in the treatment of diseases that arise as a consequence of the deregulation of multiple signaling pathways provided the challenge of optimization of the activities shown by the pharmacophores with the different targets is addressed.

136 citations

Journal Article•10.1186/S13148-016-0247-9•
Increased global placental DNA methylation levels are associated with gestational diabetes.

[...]

Christoph Reichetzeder1, Christoph Reichetzeder2, S. E. Dwi Putra2, S. E. Dwi Putra3, Thiemo Pfab1, Torsten Slowinski1, Corinna Neuber2, Burkhard Kleuser2, Berthold Hocher2, Berthold Hocher4 •
Charité1, University of Potsdam2, University of Surabaya3, Hunan Normal University4
26 Jul 2016-Clinical Epigenetics
TL;DR: This first study that employed a robust quantitative assessment of placental global DNA methylation in over a thousand placental samples provides large scale evidence that placentalglobal DNA hypermethylation is associated with GDM, independent of established risk factors.
Abstract: Gestational diabetes mellitus (GDM) is associated with adverse pregnancy outcomes. It is known that GDM is associated with an altered placental function and changes in placental gene regulation. More recent studies demonstrated an involvement of epigenetic mechanisms. So far, the focus regarding placental epigenetic changes in GDM was set on gene-specific DNA methylation analyses. Studies that robustly investigated placental global DNA methylation are lacking. However, several studies showed that tissue-specific alterations in global DNA methylation are independently associated with type 2 diabetes. Thus, the aim of this study was to characterize global placental DNA methylation by robustly measuring placental DNA 5-methylcytosine (5mC) content and to examine whether differences in placental global DNA methylation are associated with GDM. Global DNA methylation was quantified by the current gold standard method, LC-MS/MS. In total, 1030 placental samples were analyzed in this single-center birth cohort study. Mothers with GDM displayed a significantly increased global placental DNA methylation (3.22 ± 0.63 vs. 3.00 ± 0.46 %; p = 0.013; ±SD). Bivariate logistic regression showed a highly significant positive correlation between global placental DNA methylation and the presence of GDM (p = 0.0009). Quintile stratification according to placental DNA 5mC levels revealed that the frequency of GDM was evenly distributed in quintiles 1–4 (2.9–5.3 %), whereas the frequency in the fifth quintile was significantly higher (10.7 %; p = 0.003). Bivariate logistic models adjusted for maternal age, BMI, ethnicity, recurrent miscarriages, and familiar diabetes predisposition clearly demonstrated an independent association between global placental DNA hypermethylation and GDM. Furthermore, an ANCOVA model considering known predictors of DNA methylation substantiated an independent association between GDM and placental DNA methylation. This is the first study that employed a robust quantitative assessment of placental global DNA methylation in over a thousand placental samples. The study provides large scale evidence that placental global DNA hypermethylation is associated with GDM, independent of established risk factors.

129 citations

Journal Article•10.1186/S13148-016-0249-7•
Tobacco smoking differently influences cell types of the innate and adaptive immune system-indications from CpG site methylation.

[...]

Mario Bauer1, Beate Fink1, Loreen Thürmann1, Markus Eszlinger2, Gunda Herberth1, Irina Lehmann1 •
Helmholtz Centre for Environmental Research - UFZ1, Leipzig University2
03 Aug 2016-Clinical Epigenetics
TL;DR: It is shown that smoking differently affects both cells of the innate and adaptive immune systems, and cell type-specific methylation changes provides helpful information regarding the biological relevance of epigenetic modifications.
Abstract: Tobacco smoke is worldwide one of the main preventable lifestyle inhalative pollutants causing severe adverse health effects. Epidemiological studies revealed association of tobacco smoking with epigenetic changes at single CpGs in blood. However, the biological relevance of the often only marginal methylation changes remains unclear. Comparing genome-wide changes in CpG methylation of three recently reported epidemiological datasets, two obtained on whole blood and one on peripheral blood mononuclear cells (PBMCs), it becomes evident that the majority of methylation changes (86.7 and 93.3 %) in whole blood account for changes in granulocytes. Analyzing, in more detail, seven highly significant reported smoking-induced methylation changes at single CpGs in different blood cell types of healthy volunteers (n = 32), we confirmatively found a strong cell-type specificity. Two CpGs in GFI1 and F2RL3 were significantly hypomethylated in granulocytes (−11.3 %, p = 0.001; −8.7 %, p = 0.001, respectively) but not in PBMCs of smokers while two CpGs in CPOX and GPR15 were found to be hypomethylated in PBMC (−4.3 %, p = 0.003; −4.2 %, P = 0.009, respectively) and their subtypes of GPR15 non-expressing (−3.2 %, p = 0.027; −2.5 %, p = 0.032, respectively) and smoking-evoked GPR15 expressing T cells (−15.8 %, p < 0.001; −13.8 %, p = 0.018, respectively) but not in granulocytes. In contrast, cg05575921 within AHRR was hypomethylated in every analyzed cell type of smokers, but with a different degree. Both, hypomethylation at cg05575921 in granulocytes (−55.2 % methylation change in smokers, p < 0.001) and the frequency of GPR15+ T cells (9.8–37.1 % in smokers), possessing a specific hypomethylation at cg19859270, were strongly associated with smoking behavior at individual level and could therefore serve as valuable biomarkers indicating a disturbed homeostasis in smokers. In contrast to the reported long-term persistent methylation changes in adult smokers after cessation, the hypomethylation at cg05575921 in prenatally tobacco smoke-exposed children (n = 13) from our LINA cohort was less stable and disappeared already within 2 years after birth. Studying cell type-specific methylation changes provides helpful information regarding the biological relevance of epigenetic modifications. Here, we could show that smoking differently affects both cells of the innate and adaptive immune systems.

100 citations

Journal Article•10.1186/S13148-016-0239-9•
PPARGC1α gene DNA methylation variations in human placenta mediate the link between maternal hyperglycemia and leptin levels in newborns

[...]

Sandra C. Côté1, Valérie Gagné-Ouellet1, Simon-Pierre Guay1, Catherine Allard1, Andrée-Anne Houde1, Patrice Perron1, Jean-Patrice Baillargeon1, Daniel Gaudet2, Renée Guérin, Diane Brisson2, Marie-France Hivert3, Marie-France Hivert1, Luigi Bouchard1 •
Université de Sherbrooke1, Université de Montréal2, Harvard University3
22 Jun 2016-Clinical Epigenetics
TL;DR: In this article, the authors found that maternal glucose exposure to maternal hyperglycemia is associated with DNA methylation variations in genes involved in brown adipose tissue (BAT) genesis and activation.
Abstract: Children exposed to gestational diabetes mellitus (GDM) are at a higher risk of developing obesity and type 2 diabetes. This susceptibility might involve brown adipose tissue (BAT), which is suspected to protect against obesity. The objective of this study is to assess whether fetal exposure to maternal hyperglycemia is associated with DNA methylation variations in genes involved in BAT genesis and activation. DNA methylation levels at the PRDM16, BMP7, CTBP2, and PPARGC1α gene loci were measured in placenta samples using bisulfite pyrosequencing in E-21 (n = 133; 33 cases of GDM) and the HumanMethylation450 array in Gen3G (n = 172, all from non-diabetic women) birth cohorts. Glucose tolerance was assessed in all women using an oral glucose tolerance test at the second trimester of pregnancy. Participating women were extensively phenotyped throughout pregnancy, and placenta and cord blood samples were collected at birth. We report that maternal glycemia at the second and third trimester of pregnancy are correlated with variations in DNA methylation levels at PRDM16, BMP7, and PPARGC1α and with cord blood leptin levels. Variations in PRDM16 and PPARGC1α DNA methylation levels were also correlated with cord blood leptin levels. Mediation analyses support that DNA methylation variations at the PPARGC1α gene locus explain 0.8 % of the cord blood leptin levels variance independently of maternal fasting glucose levels (p = 0.05). These results suggest that maternal glucose in pregnancy could produce variations in DNA methylation in BAT-related genes and that some of these DNA methylation marks seem to mediate the impact of maternal glycemia on cord blood leptin levels, an adipokine regulating body weight.
Journal Article•10.1186/S13148-016-0281-7•
Effect of prenatal DHA supplementation on the infant epigenome: results from a randomized controlled trial.

[...]

Susan J. van Dijk1, Jing Zhou2, Timothy J. Peters1, Michael Buckley1, Brodie Sutcliffe1, Yalchin Oytam1, Robert A. Gibson2, Andrew J McPhee3, Lisa N Yelland2, Maria Makrides, Peter L. Molloy1, Beverly S. Muhlhausler2 •
Commonwealth Scientific and Industrial Research Organisation1, University of Adelaide2, Boston Children's Hospital3
04 Nov 2016-Clinical Epigenetics
TL;DR: Maternal DHA supplementation during the second half of pregnancy had small effects on DNA methylation of infants, supporting the role of epigenetic modifications in developmental programming in humans and point the way for future studies.
Abstract: Evidence is accumulating that nutritional exposures in utero can influence health outcomes in later life. Animal studies and human epidemiological studies have implicated epigenetic modifications as playing a key role in this process, but there are limited data from large well-controlled human intervention trials. This study utilized a large double-blind randomized placebo-controlled trial to test whether a defined nutritional exposure in utero, in this case docosahexaenoic acid (DHA), could alter the infant epigenome. Pregnant mothers consumed DHA-rich fish oil (800 mg DHA/day) or placebo supplements from 20 weeks’ gestation to delivery. Blood spots were collected from the children at birth (n = 991) and blood leukocytes at 5 years (n = 667). Global DNA methylation was measured in all samples, and Illumina HumanMethylation450K BeadChip arrays were used for genome-wide methylation profiling in a subset of 369 children at birth and 65 children at 5 years. There were no differences in global DNA methylation levels between the DHA and control group either at birth or at 5 years, but we identified 21 differentially methylated regions (DMRs) at birth, showing small DNA methylation differences (<5%) between the treatment groups, some of which seemed to persist until 5 years. The number of DMRs at birth was greater in males (127 DMRs) and in females (72 DMRs) separately, indicating a gender-specific effect. Maternal DHA supplementation during the second half of pregnancy had small effects on DNA methylation of infants. While the potential functional significance of these changes remains to be determined, these findings further support the role of epigenetic modifications in developmental programming in humans and point the way for future studies. Australian New Zealand Clinical Trials Registry (ANZCTR), ACTRN12605000569606 and ACTRN12611001127998
Journal Article•10.1186/S13148-016-0284-4•
Genome-wide epigenomic profiling for biomarker discovery.

[...]

René A.M. Dirks1, Hendrik G. Stunnenberg1, Hendrik Marks1•
Radboud University Nijmegen1
21 Nov 2016-Clinical Epigenetics
TL;DR: An overview of current genome-wide epigenomic profiling technologies and main technological advances that allowed miniaturization of these assays down to single-cell level are provided and their application for future biomarker discovery is evaluated.
Abstract: A myriad of diseases is caused or characterized by alteration of epigenetic patterns, including changes in DNA methylation, post-translational histone modifications, or chromatin structure. These changes of the epigenome represent a highly interesting layer of information for disease stratification and for personalized medicine. Traditionally, epigenomic profiling required large amounts of cells, which are rarely available with clinical samples. Also, the cellular heterogeneity complicates analysis when profiling clinical samples for unbiased genome-wide biomarker discovery. Recent years saw great progress in miniaturization of genome-wide epigenomic profiling, enabling large-scale epigenetic biomarker screens for disease diagnosis, prognosis, and stratification on patient-derived samples. All main genome-wide profiling technologies have now been scaled down and/or are compatible with single-cell readout, including: (i) Bisulfite sequencing to determine DNA methylation at base-pair resolution, (ii) ChIP-Seq to identify protein binding sites on the genome, (iii) DNaseI-Seq/ATAC-Seq to profile open chromatin, and (iv) 4C-Seq and HiC-Seq to determine the spatial organization of chromosomes. In this review we provide an overview of current genome-wide epigenomic profiling technologies and main technological advances that allowed miniaturization of these assays down to single-cell level. For each of these technologies we evaluate their application for future biomarker discovery. We will focus on (i) compatibility of these technologies with methods used for clinical sample preservation, including methods used by biobanks that store large numbers of patient samples, and (ii) automation of these technologies for robust sample preparation and increased throughput.
Journal Article•10.1186/S13148-016-0202-9•
TREM2 upregulation correlates with 5-hydroxymethycytosine enrichment in Alzheimer’s disease hippocampus

[...]

Naiara Celarain, Javier Sánchez-Ruiz de Gordoa, María Victoria Zelaya, Miren Roldán, Rosa Larumbe, Laura Pulido, Carmen Echavarri, Maite Mendioroz 
05 Apr 2016-Clinical Epigenetics
TL;DR: DNA methylation, and particularly 5hmC, may be involved in regulating TREM2 mRNA expression in the AD brain and further studies are guaranteed to investigate in depth the role of5hmC in AD and other neurodegenerative disorders.
Abstract: Recent genome-wide association studies revealed TREM2 rs75932628-T variant to be associated with Alzheimer’s disease (AD) and other neurodegenerative diseases. However, the role that TREM2 plays in sporadic AD is largely unknown. Our aim was to assess messenger RNA (mRNA) expression levels and DNA methylation profiling of TREM2 in human hippocampus in AD brain. We measured TREM2 mRNA levels in the hippocampus in a cohort of neuropathologically confirmed controls and pure AD cases showing no other protein deposits than β-amyloid and phosphorylated tau. We also examined DNA methylation levels in the TREM2 transcription start site (TSS)-associated region by bisulfite cloning sequencing and further extended the study by measuring 5-hydroxymethycytosine (5hmC) enrichment at different regions of TREM2 by 5hmC DNA immunoprecipitation combined with real-time qPCR. A 3.4-fold increase in TREM2 mRNA levels was observed in the hippocampus of AD cases compared to controls (p = 1.1E-05). Interestingly, TREM2 methylation was higher in AD cases compared to controls (76.2 % ± 15.5 versus 57.9 % ± 17.1; p = 0.0016). Moreover, TREM2 mRNA levels in the AD hippocampus correlated with enrichment in 5hmC at the TREM2 gene body (r = 0.771; p = 0.005). TREM2 mRNA levels are increased in the human hippocampus in AD cases compared to controls. DNA methylation, and particularly 5hmC, may be involved in regulating TREM2 mRNA expression in the AD brain. Further studies are guaranteed to investigate in depth the role of 5hmC in AD and other neurodegenerative disorders.
Journal Article•10.1186/S13148-016-0276-4•
Maternal vitamin D depletion alters DNA methylation at imprinted loci in multiple generations

[...]

Jing Xue1, Sarah A. Schoenrock1, William Valdar1, Lisa M. Tarantino1, Folami Y. Ideraabdullah1 •
University of North Carolina at Chapel Hill1
12 Oct 2016-Clinical Epigenetics
TL;DR: It is demonstrated that maternal vitamin D status plays a role in determining DNA methylation state in the germline and soma, and perturbation of the epigenetic landscape rather than a targeted, locus-specific effect.
Abstract: Environmental perturbation of epigenetic mechanisms is linked to a growing number of diseases. Characterizing the role environmental factors play in modifying the epigenome is important for disease etiology. Vitamin D is an essential nutrient affecting brain, bone, heart, immune and reproductive health. Vitamin D insufficiency is a global issue, and the role in maternal and child health remains under investigation. We used Collaborative Cross (CC) inbred mice to characterize the effect of maternal vitamin D depletion on offspring phenotypic and epigenetic outcomes at imprinted domains (H19/Igf2, Snrpn, Dlk1/Gtl2, and Grb10) in the soma (liver) and germline (sperm). We assessed outcomes in two generations of offspring to determine heritability. We used reciprocal crosses between lines CC001/Unc and CC011/Unc to investigate parent of origin effects. Maternal vitamin D deficiency led to altered body weight and DNA methylation in two generations of offspring. Loci assayed in adult liver and sperm were mostly hypomethylated, but changes were few and small in effect size (<7 % difference on average). There was no change in total expression of genes adjacent to methylation changes in neonatal liver. Methylation changes were cell type specific such that changes at IG-DMR were present in sperm but not in liver. Some methylation changes were distinct between generations such that methylation changes at the H19ICR in second-generation liver were not present in first-generation sperm or liver. Interestingly, some diet-dependent changes in body weight and methylation were seemingly influenced by parent of origin such that reciprocal crosses exhibited inverse effects. These findings demonstrate that maternal vitamin D status plays a role in determining DNA methylation state in the germline and soma. Detection of methylation changes in the unexposed second-generation demonstrates that maternal vitamin D depletion can have long-term effects on the epigenome of subsequent generations. Differences in vitamin D-dependent epigenetic state between cell types and generations indicate perturbation of the epigenetic landscape rather than a targeted, locus-specific effect. While the biological importance of these subtle changes remains unclear, they warrant an investigation of epigenome-wide effects of maternal vitamin D depletion.
Journal Article•10.1186/S13148-016-0201-X•
Global histone modification profiling reveals the epigenomic dynamics during malignant transformation in a four-stage breast cancer model

[...]

Quanyi Zhao1, Pin-Ji Lei1, Xiaoran Zhang2, Jun-Yi Zheng1, Hui-Yi Wang1, Jiao Zhao1, Yi-Ming Li1, Mei Ye1, Lian-Yun Li1, Gang Wei2, Min Wu1 •
Wuhan University1, CAS-MPG Partner Institute for Computational Biology2
31 Mar 2016-Clinical Epigenetics
TL;DR: This study demonstrates reduction of histones H3K9 me2 and me3, and elevation of KDM3A/JMJD1A as important events for breast cancer, and illustrates the dynamic epigenomic mechanisms during breast cancer transformation.
Abstract: Background Epigenetic regulation has emerged to be the critical steps for tumorigenesis and metastasis. Multiple histone methyltransferase and demethylase have been implicated as tumor suppressors or oncogenes recently. But the key epigenomic events in cancer cell transformation still remain poorly understood.
Journal Article•10.1186/S13148-016-0264-8•
Epigenetic modulators as therapeutic targets in prostate cancer

[...]

Inês Graça, Eva Pereira-Silva, Rui Henrique1, Graham Packham2, Simon J. Crabb2, Carmen Jerónimo1 •
University of Porto1, Southampton General Hospital2
15 Sep 2016-Clinical Epigenetics
TL;DR: The role of epigenetic modulating compounds in pre-clinical and clinical trials as potential therapeutic agents for prostate cancer management are highlighted, highlighting the most important epigenetic alterations in prostate cancer.
Abstract: Prostate cancer is one of the most common non-cutaneous malignancies among men worldwide. Epigenetic aberrations, including changes in DNA methylation patterns and/or histone modifications, are key drivers of prostate carcinogenesis. These epigenetic defects might be due to deregulated function and/or expression of the epigenetic machinery, affecting the expression of several important genes. Remarkably, epigenetic modifications are reversible and numerous compounds that target the epigenetic enzymes and regulatory proteins were reported to be effective in cancer growth control. In fact, some of these drugs are already being tested in clinical trials. This review discusses the most important epigenetic alterations in prostate cancer, highlighting the role of epigenetic modulating compounds in pre-clinical and clinical trials as potential therapeutic agents for prostate cancer management.
Journal Article•10.1186/S13148-016-0293-3•
Augmentation of histone deacetylase 3 (HDAC3) epigenetic signature at the interface of proinflammation and insulin resistance in patients with type 2 diabetes.

[...]

Chandrakumar Sathishkumar, Paramasivam Prabu, Mahalingam Balakumar, Raji Rajesh Lenin, D. Prabhu, R M Anjana, Viswanathan Mohan, Muthuswamy Balasubramanyam 
24 Nov 2016-Clinical Epigenetics
TL;DR: Striking message from this study is that while looking for anti-inflammatory strategies and drugs with novel mode of action for T2DM, discovering and designing specific inhibitors targeted to HDAC3 appears promising.
Abstract: A role of proinflammation has been implicated in the pathogenesis of diabetes, but the up-stream regulatory signals and molecular signatures are poorly understood. While histone modifications such as changes in histone deacetylase (HDAC) are emerging as novel epigenetic biomarkers, there is lack of studies to demonstrate their clinical relevance in diabetes. Therefore, we investigated the extent of HDAC machinery and inflammatory signals in peripheral blood mononuclear cells (PBMCs) from patients with type 2 diabetes mellitus (T2DM) compared to control subjects. HDAC3 activity was significantly (p < 0.05) increased in patients with T2DM compared to control subjects. While subtypes of HDACs were differentially expressed at their transcriptional levels in patients with type 2 diabetes, the most prominent observation is the significantly (p < 0.05) elevated messenger RNA (mRNA) levels of HDAC3. Expression levels of Sirt1 which represents the class III HDAC were decreased significantly in T2DM (p < 0.05). Plasma levels of both TNF-α and IL-6 were significantly higher (p < 0.05) in patients with type 2 diabetes compared to control subjects. Among the proinflammatory mediators, the mRNA expression of MCP-1, IL1-β, NFκB, TLR2, and TLR4 were also significantly (p < 0.05) increased in T2DM. Transcriptional levels of DBC1 (deleted in breast cancer 1, which is a negative regulator of HDAC3) were seen significantly reduced in PBMCs from T2DM. Interestingly, HDAC3 activity/HDAC3 mRNA levels positively correlated to proinflammation, poor glycemic control, and insulin resistance. Striking message from this study is that while looking for anti-inflammatory strategies and drugs with novel mode of action for T2DM, discovering and designing specific inhibitors targeted to HDAC3 appears promising.
Journal Article•10.1186/S13148-016-0178-5•
Insulin-like growth factor axis in pregnancies affected by fetal growth disorders

[...]

Aamod R. Nawathe1, Mark Christian2, Sung Hye Kim, Mark H. Johnson1, Makrina D. Savvidou1, Vasso Terzidou1 •
Imperial College London1, University of Warwick2
27 Jan 2016-Clinical Epigenetics
TL;DR: The results suggest that changes in CpG methylation contribute to the changes in gene expression of components of the IGF axis in fetal growth disorders.
Abstract: Insulin-like growth factors 1 and 2 (IGF1 and IGF2) and their binding proteins (IGFBPs) are expressed in the placenta and known to regulate fetal growth. DNA methylation is an epigenetic mechanism which involves addition of methyl group to a cytosine base in the DNA forming a methylated cytosine-phosphate-guanine (CpG) dinucleotide which is known to silence gene expression. This silences gene expression, potentially altering the expression of IGFs and their binding proteins. This study investigates the relationship between DNA methylation of components of the IGF axis in the placenta and disorders in fetal growth. Placental samples were obtained from cord insertions immediately after delivery from appropriate, small (defined as birthweight the 90th percentile for the gestation [LGA]) neonates. Placental DNA methylation, mRNA expression and protein levels of components of the IGF axis were determined by pyrosequencing, rtPCR and Western blotting. In the placenta from small for gestational age (SGA) neonates (n = 16), mRNA and protein levels of IGF1 were lower and of IGFBPs (1, 2, 3, 4 and 7) were higher (p < 0.05) compared to appropriately grown neonates (n = 37). In contrast, in the placenta from large for gestational age (LGA) neonates (n = 20), mRNA and protein levels of IGF1 was not different and those of IGFBPs (1, 2, 3 and 4) were lower (p < 0.05) compared to appropriately grown neonates. Compared to appropriately grown neonates, CpG methylation of the promoter regions of IGF1 was higher in SGA neonates. The CpG methylation of the promoter regions of IGFBP1, IGFBP2, IGFBP3, IGFBP4 and IGFBP7 was lower in the placenta from SGA neonates as compared to appropriately grown neonates, but was unchanged in the placenta from LGA neonates. Our results suggest that changes in CpG methylation contribute to the changes in gene expression of components of the IGF axis in fetal growth disorders. Differential methylation of the IGF1 gene and its binding proteins is likely to play a role in the pathogenesis of SGA neonates.
Journal Article•10.1186/S13148-016-0188-3•
Expression of epigenetic machinery genes is sensitive to maternal obesity and weight loss in relation to fetal growth in mice

[...]

Polina Panchenko1, Sarah Voisin1, Mélanie Jouin2, Luc Jouneau2, Audrey Prézelin2, Simon Lecoutre3, Christophe Breton3, Hélène Jammes2, Claudine Junien2, Anne Gabory2 •
Pierre-and-Marie-Curie University1, Université Paris-Saclay2, university of lille3
27 Feb 2016-Clinical Epigenetics
TL;DR: This study highlights the high sensitivity of the epigenetic machinery gene expression, and particularly the histone acetylation pathway, to maternal obesity, which could alter the placental and the hepatic epigenome, leading to FGR.
Abstract: Maternal obesity impacts fetal growth and pregnancy outcomes. To counteract the deleterious effects of obesity on fertility and pregnancy issue, preconceptional weight loss is recommended to obese women. Whether this weight loss is beneficial/detrimental for offspring remains poorly explored. Epigenetic mechanisms could be affected by maternal weight changes, perturbing expression of key developmental genes in the placenta or fetus. Our aim was to investigate the effects of chronic maternal obesity on feto-placental growth along with the underlying epigenetic mechanisms. We also tested whether preconceptional weight loss could alleviate these effects. Female mice were fed either a control diet (CTRL group), a high-fat diet (obese (OB) group), or a high-fat diet switched to a control diet 2 months before conception (weight loss (WL) group). At mating, OB females presented an obese phenotype while WL females normalized metabolic parameters. At embryonic day 18.5 (E18.5), fetuses from OB females presented fetal growth restriction (FGR; −13 %) and 28 % of the fetuses were small for gestational age (SGA). Fetuses from WL females normalized this phenotype. The expression of 60 epigenetic machinery genes and 32 metabolic genes was measured in the fetal liver, placental labyrinth, and junctional zone. We revealed 23 genes altered by maternal weight trajectories in at least one of three tissues. The fetal liver and placental labyrinth were more responsive to maternal obesity than junctional zone. One third (18/60) of the epigenetic machinery genes were differentially expressed between at least two maternal groups. Interestingly, genes involved in the histone acetylation pathway were particularly altered (13/18). In OB group, lysine acetyltransferases and Bromodomain-containing protein 2 were upregulated, while most histone deacetylases were downregulated. In WL group, the expression of only a subset of these genes was normalized. This study highlights the high sensitivity of the epigenetic machinery gene expression, and particularly the histone acetylation pathway, to maternal obesity. These obesity-induced transcriptional changes could alter the placental and the hepatic epigenome, leading to FGR. Preconceptional weight loss appears beneficial to fetal growth, but some effects of previous obesity were retained in offspring phenotype.
Journal Article•10.1186/S13148-016-0291-5•
Aberrant DNA hypermethylation-silenced SOX21-AS1 gene expression and its clinical importance in oral cancer.

[...]

Cheng-Mei Yang, Tsung-Han Wang1, Hung-Chih Chen, Sung-Chou Li2, Ming-Chien Lee, Huei-Han Liou, Pei-Feng Liu3, Yu-Kai Tseng4, Yow-Ling Shiue1, Luo-Ping Ger1, Kuo-Wang Tsai5 •
National Sun Yat-sen University1, Chang Gung University2, Fooyin University3, National Cheng Kung University4, National Pingtung University of Education5
26 Nov 2016-Clinical Epigenetics
TL;DR: The data showed that SOX21-AS1 could significantly suppress oral cancer cell growth and invasion and may be an adverse prognostic biomarker for OSCC.
Abstract: Long noncoding RNAs (lncRNAs) are more than 200 nucleotides in length and lack transcriptional ability. The biological function of lncRNAs in oral squamous cell carcinoma (OSCC) remains unclear. The aim of this study was to identify the dysfunction of lncRNA in OSCC. We analyzed the transcriptome profiles of human OSCC tissues and paired adjacent normal tissues from two patients through a next-generation sequencing approach. A total of 14 lncRNAs were upregulated (fold change ≥3) and 13 were downregulated (fold change ≤−3) in OSCC tissues compared with the adjacent normal tissues. SOX21-AS1 was subjected to further analysis, revealing that the expression levels of SOX21-AS1 significantly decreased in OSCC compared with the adjacent normal tissue. The promoter activity of SOX21-AS1 was obviously suppressed by in vitro methylation. The DNA methylation status of the SOX21-AS1 promoter was analyzed using combined bisulfite restriction analysis, revealing that the aberrant promoter hypermethylation of SOX21-AS1 was observed frequently in OSCC tissues. The effects of SOX21-AS1 on cell proliferation and invasion were examined through transient transfection. Our data showed that SOX21-AS1 could significantly suppress oral cancer cell growth and invasion. Furthermore, the low expression level of SOX21-AS1 was significantly correlated with an advanced stage (P = 0.047), large tumor size (P = 0.033), and poor disease-specific survival in OSCC patients (P = 0.002). SOX21-AS1 was identified as susceptible dysfunction correlated with promoter hypermethylation in OSCC. Low SOX21-AS1 expression may be an adverse prognostic biomarker for OSCC.
Journal Article•10.1186/S13148-016-0219-0•
DNA methylation mediates the effect of exposure to prenatal maternal stress on cytokine production in children at age 13½ years: Project Ice Storm

[...]

Lei Cao-Lei1, Franz Veru, Guillaume Elgbeili, Moshe Szyf1, David P. Laplante, Suzanne King1 •
McGill University1
12 May 2016-Clinical Epigenetics
TL;DR: Preliminary evidence is provided supporting the mediating role of DNA methylation in the association between objective aspects of PNMS and child immune states, favoring a Th2 shift.
Abstract: Prenatal maternal stress (PNMS) is an important programming factor of postnatal immunity. We tested here the hypothesis that DNA methylation of genes in the NF-κB signaling pathway in T cells mediates the effect of objective PNMS on Th1 and Th2 cytokine production in blood from 13½ year olds who were exposed in utero to the 1998 Quebec ice storm. Bootstrapping analyses were performed with 47 CpGs across a selection of 20 genes for Th1-type cytokines (IFN-γ and IL-2) and Th2-type cytokines (IL-4 and IL-13). Six CpGs in six different NF-κB signaling genes (PIK3CD, PIK3R2, NFKBIA, TRAF5, TNFRSF1B, and LTBR) remained as significant negative mediators of objective PNMS on IFN-γ secretion after correcting for multiple comparisons. However, no mediation effects on IL-2, IL-4 and IL-13 survived Bonferroni correction. The present study provides preliminary evidence supporting the mediating role of DNA methylation in the association between objective aspects of PNMS and child immune states, favoring a Th2 shift.
Journal Article•10.1186/S13148-016-0275-5•
Integrating DNA methylation and microRNA biomarkers in sputum for lung cancer detection

[...]

Yun Su1, Hong-Bin Fang2, Feng Jiang2•
Nanjing University of Chinese Medicine1, University of Maryland, Baltimore2
19 Oct 2016-Clinical Epigenetics
TL;DR: The integration of two different classes of biomarkers synergistically improves both the sensitivity and the specificity for the early detection of NSCLC.
Abstract: Background Abnormal microRNA (miRNA) expressions and promoter methylation of genes detected in sputum may provide biomarkers for non-small lung cancer (NSCLC). Here, we evaluate the individual and combined analysis of the two classes of sputum molecular biomarkers for NSCLC detection.
Journal Article•10.1186/S13148-016-0254-X•
Identification of a methylation profile for DNMT1-associated autosomal dominant cerebellar ataxia, deafness, and narcolepsy.

[...]

Kristin D. Kernohan1, Laila C. Schenkel2, Lijia Huang1, Amanda Smith1, Guillaume Paré3, Peter Ainsworth2, Kym M. Boycott1, Jodi Warman-Chardon4, Jodi Warman-Chardon5, Jodi Warman-Chardon6, Bekim Sadikovic3, Bekim Sadikovic2, Bekim Sadikovic7 •
Children's Hospital of Eastern Ontario1, University of Western Ontario2, McMaster University3, Ottawa Hospital4, University of Ottawa5, Ottawa Hospital Research Institute6, London Health Sciences Centre7
05 Sep 2016-Clinical Epigenetics
TL;DR: This report identifies robust changes in the DNA methylation patterns in ADCA-DN patients, which is an important step towards elucidating disease pathogenesis.
Abstract: DNA methylation is an essential epigenetic mark, controlled by DNA methyltransferase (DNMT) proteins, which regulates chromatin structure and gene expression throughout the genome. In this study, we describe a family with adult-onset autosomal dominant cerebellar ataxia with deafness and narcolepsy (ADCA-DN) caused by mutations in the maintenance methyltransferase DNMT1 and assess the DNA methylation profile of these individuals. We report a family with six individuals affected with ADCA-DN; specifically, patients first developed hearing loss and ataxia, followed by narcolepsy, and cognitive decline. We identified a heterozygous DNMT1 variant, c.1709C>T [p.Ala570Val] by Sanger sequencing, which had been previously reported as pathogenic for ADCA-DN and segregated with disease in the family. DNA methylation analysis by high-resolution genome-wide DNA methylation array identified a decrease in CpGs with 0–10 % methylation and 80–95 % methylation and a concomitant increase in sites with 10–30 % methylation and >95 % methylation. This pattern suggests an increase in methylation of normally unmethylated regions, such as promoters and CpG islands, as well as further methylation of highly methylated gene bodies and intergenic regions. Furthermore, a regional analysis identified 82 hypermethylated loci with consistent robust differences across ≥5 consecutive probes compared to our large reference cohort. This report identifies robust changes in the DNA methylation patterns in ADCA-DN patients, which is an important step towards elucidating disease pathogenesis.
Journal Article•10.1186/S13148-016-0290-6•
In epithelial cancers, aberrant COL17A1 promoter methylation predicts its misexpression and increased invasion

[...]

Pulari U. Thangavelu1, Tibor Krenács2, Eloise Dray3, Pascal H.G. Duijf1•
University of Queensland1, Semmelweis University2, Queensland University of Technology3
18 Nov 2016-Clinical Epigenetics
TL;DR: In this article, the expression of all 44 collagen genes in breast cancer and assess whether their misexpression provides clinical prognostic significance was performed using immunohistochemistry on 150 ductal breast cancers and 361 cervical cancers and study DNA methylation in various epithelial cancers.
Abstract: Metastasis is a leading cause of death among cancer patients. In the tumor microenvironment, altered levels of extracellular matrix proteins, such as collagens, can facilitate the first steps of cancer cell metastasis, including invasion into surrounding tissue and intravasation into the blood stream. However, the degree of misexpression of collagen genes in tumors remains understudied, even though this knowledge could greatly facilitate the development of cancer treatment options aimed at preventing metastasis. We systematically evaluate the expression of all 44 collagen genes in breast cancer and assess whether their misexpression provides clinical prognostic significance. We use immunohistochemistry on 150 ductal breast cancers and 361 cervical cancers and study DNA methylation in various epithelial cancers. In breast cancer, various tests show that COL4A1 and COL4A2 overexpression and COL17A1 (BP180, BPAG2) underexpression provide independent prognostic strength (HR = 1.25, 95% CI = 1.17–1.34, p = 3.03 × 10−10; HR = 1.18, 95% CI = 1.11–1.25, p = 8.11 × 10−10; HR = 0.86, 95% CI = 0.81–0.92, p = 4.57 × 10−6; respectively). Immunohistochemistry on ductal breast cancers confirmed that the COL17A1 protein product, collagen XVII, is underexpressed. This strongly correlates with advanced stage, increased invasion, and postmenopausal status. In contrast, immunohistochemistry on cervical tumors showed that collagen XVII is overexpressed in cervical cancer and this is associated with increased local dissemination. Interestingly, consistent with the opposed direction of misexpression in these cancers, the COL17A1 promoter is hypermethylated in breast cancer and hypomethylated in cervical cancer. We also find that the COL17A1 promoter is hypomethylated in head and neck squamous cell carcinoma, lung squamous cell carcinoma, and lung adenocarcinoma, in all of which collagen XVII overexpression has previously been shown. Paradoxically, collagen XVII is underexpressed in breast cancer and overexpressed in cervical and other epithelial cancers. However, the COL17A1 promoter methylation status accurately predicts both the direction of misexpression and the increased invasive nature for five out of five epithelial cancers. This implies that aberrant epigenetic control is a key driver of COL17A1 gene misexpression and tumor cell invasion. These findings have significant clinical implications, suggesting that the COL17A1 promoter methylation status can be used to predict patient outcome. Moreover, epigenetic targeting of COL17A1 could represent a novel strategy to prevent metastasis in patients.
Journal Article•10.1186/S13148-016-0233-2•
Targeting epigenetic pathways in acute myeloid leukemia and myelodysplastic syndrome: a systematic review of hypomethylating agents trials.

[...]

Seongseok Yun1, Nicole D. Vincelette2, Ivo Abraham1, Keith D. Robertson2, Martin E. Fernandez-Zapico2, Mrinal M. Patnaik2 •
University of Arizona1, Mayo Clinic2
14 Jun 2016-Clinical Epigenetics
TL;DR: It is demonstrated that HMA have superior outcomes compared to CCR and suggest that azacitidine in comparison to decitabine, may be more effective.
Abstract: Background Aberrant DNA methylation has been identified as a key molecular event regulating the pathogenesis of myelodysplastic syndromes (MDS); myeloid neoplasms with an inherent risk of transformation to acute myeloid leukemia (AML). Based on the above findings, DNA hypomethylating agents (HMA) have been widely used to treat AML and MDS, especially in elderly patients and in those who are not eligible for allogeneic stem cell transplantation (SCT). Our goal was to determine if there is any therapeutic advantage of HMA vs. conventional care regimens (CCR) and indirectly compare the efficacy of azacitidine and decitabine in this patient population.
Journal Article•10.1186/S13148-016-0182-9•
Identification of the epigenetic reader CBX2 as a potential drug target in advanced prostate cancer

[...]

Pier-Luc Clermont1, Pier-Luc Clermont2, Francesco Crea3, Francesco Crea2, Francesco Crea4, Yan Ting Chiang2, Yan Ting Chiang3, Dong Lin3, Dong Lin2, Amy Zhang2, James Z. L. Wang2, Abhijit Parolia2, Rebecca Wu2, Hui Xue2, Yuwei Wang2, Jiarui Ding2, Jiarui Ding5, Kelsie L. Thu2, Wan L. Lam2, Sohrab P. Shah5, Sohrab P. Shah2, Colin Collins5, Colin Collins3, Yuzhuo Wang3, Yuzhuo Wang2, Yuzhuo Wang5, Cheryl D. Helgason2, Cheryl D. Helgason5 •
Laval University1, BC Cancer Research Centre2, Vancouver Prostate Centre3, Open University4, University of British Columbia5
12 Feb 2016-Clinical Epigenetics
TL;DR: This study provides the first evidence thatCBX2 inhibition induces cancer cell death, positioning CBX2 as an attractive drug target in lethal CRPC.
Abstract: While localized prostate cancer (PCa) can be effectively cured, metastatic disease inevitably progresses to a lethal state called castration-resistant prostate cancer (CRPC). Emerging evidence suggests that aberrant epigenetic repression by the polycomb group (PcG) complexes fuels PCa progression, providing novel therapeutic opportunities. In the search for potential epigenetic drivers of CRPC, we analyzed the molecular profile of PcG members in patient-derived xenografts and clinical samples. Overall, our results identify the PcG protein and methyl-lysine reader CBX2 as a potential therapeutic target in advanced PCa. We report that CBX2 was recurrently up-regulated in metastatic CRPC and that elevated CBX2 expression was correlated with poor clinical outcome in PCa cohorts. Furthermore, CBX2 depletion abrogated cell viability and induced caspase 3-mediated apoptosis in metastatic PCa cell lines. Mechanistically explaining this phenotype, microarray analysis in CBX2-depleted cells revealed that CBX2 controls the expression of many key regulators of cell proliferation and metastasis. Taken together, this study provides the first evidence that CBX2 inhibition induces cancer cell death, positioning CBX2 as an attractive drug target in lethal CRPC.
Journal Article•10.1186/S13148-016-0173-X•
Genome- and epigenome-wide association study of hypertriglyceridemic waist in Mexican American families

[...]

Manju Mamtani1, Hemant Kulkarni1, Thomas D. Dyer1, Harald H H Göring1, Jennifer L. Neary2, Shelley A. Cole2, Jack W. Kent2, Satish Kumar1, David C. Glahn3, David C. Glahn4, Michael C. Mahaney1, Anthony G. Comuzzie2, Laura Almasy1, Joanne E. Curran1, Ravindranath Duggirala1, John Blangero1, Melanie A. Carless2 •
University of Texas at Austin1, Texas Biomedical Research Institute2, Yale University3, Hartford Hospital4
20 Jan 2016-Clinical Epigenetics
TL;DR: This phenotype was significantly heritable and independently associated with T2D as well as fasting glucose levels and insulin resistance, and reemphasize the value of HTGW as a marker of T1D.
Abstract: There is growing interest in the hypertriglyceridemic waist (HTGW) phenotype, defined as high waist circumference (≥95 cm in males and ≥80 cm in females) combined with high serum triglyceride concentration (≥2.0 mmol/L in males and ≥1.5 mmol/L in females) as a marker of type 2 diabetes (T2D) and cardiovascular disease. However, the prevalence of this phenotype in high-risk populations, its association with T2D, and the genetic or epigenetic influences on HTGW are not well explored. Using data from large, extended families of Mexican Americans (a high-risk minority population in the USA) we aimed to: (1) estimate the prevalence of this phenotype, (2) test its association with T2D and related traits, and (3) dissect out the genetic and epigenetic associations with this phenotype using genome-wide and epigenome-wide studies, respectively. Data for this study was from 850 Mexican American participants (representing 39 families) recruited under the ongoing San Antonio Family Heart Study, 26 % of these individuals had HTGW. This phenotype was significantly heritable (h 2 r = 0.52, p = 1.1 × 10−5) and independently associated with T2D as well as fasting glucose levels and insulin resistance. We conducted genome-wide association analyses using 759,809 single nucleotide polymorphisms (SNPs) and epigenome-wide association analyses using 457,331 CpG sites. There was no evidence of any SNP associated with HTGW at the genome-wide level but two CpG sites (cg00574958 and cg17058475) in CPT1A and one CpG site (cg06500161) in ABCG1 were significantly associated with HTGW and remained significant after adjusting for the closely related components of metabolic syndrome. CPT1A holds a cardinal position in the metabolism of long-chain fatty acids while ABCG1 plays a role in triglyceride metabolism. Our results reemphasize the value of HTGW as a marker of T2D. This phenotype shows association with DNA methylation within CPT1A and ABCG1, genes involved in fatty acid and triglyceride metabolism. Our results underscore the importance of epigenetics in a clinically informative phenotype.
Journal Article•10.1186/S13148-016-0238-X•
Genome-wide placental DNA methylation analysis of severely growth-discordant monochorionic twins reveals novel epigenetic targets for intrauterine growth restriction

[...]

Maian Roifman1, Sanaa Choufani, Andrei L. Turinsky, Sascha Drewlo2, Sarah Keating1, Michael Brudno3, John Kingdom3, Rosanna Weksberg3 •
Mount Sinai Hospital, Toronto1, Wayne State University2, University of Toronto3
21 Jun 2016-Clinical Epigenetics
TL;DR: It is shown that monozygotic monochorionic twins discordant for growth provide a useful model to study one type of the epigenetic placental dysregulation that drives IUGR.
Abstract: Intrauterine growth restriction (IUGR), which refers to reduced fetal growth in the context of placental insufficiency, is etiologically heterogeneous. IUGR is associated not only with perinatal morbidity and mortality but also with adult-onset disorders, such as cardiovascular disease and diabetes, posing a major health burden. Placental epigenetic dysregulation has been proposed as one mechanism that causes IUGR; however, the spectrum of epigenetic pathophysiological mechanisms leading to IUGR remains to be elucidated. Monozygotic monochorionic twins are particularly affected by IUGR, in the setting of severe discordant growth. Because monozygotic twins have the same genotype at conception and a shared maternal environment, they provide an ideal model system for studying epigenetic dysregulation of the placenta. We compared genome-wide placental DNA methylation patterns of severely growth-discordant twins to identify novel candidate genes for IUGR. Snap-frozen placental samples for eight severely growth-discordant monozygotic monochorionic twin pairs were obtained at delivery from each twin. A high-resolution DNA methylation array platform was used to identify methylation differences between IUGR and normal twins. Our analysis revealed differentially methylated regions in the promoters of eight genes: DECR1, ZNF300, DNAJA4, CCL28, LEPR, HSPA1A/L, GSTO1, and GNE. The largest methylation differences between the two groups were in the promoters of DECR1 and ZNF300. The significance of these group differences was independently validated by bisulfite pyrosequencing, implicating aberrations in fatty acid beta oxidation and transcriptional regulation, respectively. Further analysis of the array data identified methylation changes most prominently affecting the Wnt and cadherin pathways in the IUGR cohort. Our results suggest that IUGR in monozygotic twins is associated with impairments in lipid metabolism and transcriptional regulation as well as cadherin and Wnt signaling. We show that monozygotic monochorionic twins discordant for growth provide a useful model to study one type of the epigenetic placental dysregulation that drives IUGR.
Journal Article•10.1186/S13148-016-0193-6•
Genome-wide analysis of DNA methylation and gene expression defines molecular characteristics of Crohn's disease-associated fibrosis.

[...]

Tammy Sadler1, Jeffrey M. Bhasin2, Jeffrey M. Bhasin1, Yaomin Xu3, Jill Barnholz-Sloan4, Yanwen Chen4, Angela H. Ting1, Angela H. Ting2, Eleni Stylianou1, Eleni Stylianou5 •
Cleveland Clinic Lerner Research Institute1, Cleveland Clinic Lerner College of Medicine2, Vanderbilt University3, Case Western Reserve University4, Cleveland Clinic5
12 Mar 2016-Clinical Epigenetics
TL;DR: The definition of a genome-wide fibrosis-specific DNA methylome provides new gene networks and epigenetic states by which to understand mechanisms of pathological gene expression that lead to fibrosis.
Abstract: Background Fibrosis of the intestine is a common and poorly understood complication of Crohn’s disease (CD) characterized by excessive deposition of extracellular matrix and accompanied by narrowing and obstruction of the gut lumen. Defining the molecular characteristics of this fibrotic disorder is a vital step in the development of specific prediction, prevention, and treatment strategies. Previous epigenetic studies indicate that alterations in DNA methylation could explain the mechanism by which mesenchymal cells adopt the requisite pro-fibrotic phenotype that promotes fibrosis progression. However, to date, genome-wide analysis of the DNA methylome of any type of human fibrosis is lacking. We employed an unbiased approach using deep sequencing to define the DNA methylome and transcriptome of purified fibrotic human intestinal fibroblasts (HIF) from the colons of patients with fibrostenotic CD.

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