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Mechanism of histone demethylase KDM5A in osteoporotic fracture healing through epigenetic regulation of the miR-495/SKP2/Runx2 axis.

BACKGROUND: Osteoporosis represents a salient metabolic bone disorder. Histone demethylase plays a vital role in bone development and homeostasis. This study explored the mechanism of histone demethylase KDM5A affecting osteoporotic fracture healing via the miR-495/SKP2/Runx2 axis. METHODS: The murine model of osteoporotic fracture was established. The bone mineral density, maximum elastic stress, and maximum load were tested. The relative trabecular bone volume, bone trabecular thickness, and trabecular number at the proximal end of tibia were detected. The histopathological changes of femur tissues and bone microstructure were observed. Expressions of KDM5A and osteogenic factors were detected. The cell proliferation, alkaline phosphatase activity, and calcified nodules were measured. The binding relationships between KDM5A and miR-495 promoter, and miR-495 and SKP2 were verified. The interaction between SKP2 and Runx2 was detected. The ubiquitination level of Runx2 and the stability of Runx2 protein were detected. RESULTS: KDM5A was highly expressed in the murine model of osteoporotic fracture. Interference of KDM5A expression facilitated fracture healing in osteoporotic mice. KDM5A downregulated miR-495 expression by promoting the H3K4me3 methylation of the miR-495 promoter. Inhibition of miR-495 reversed the effect of KDM5A silencing on osteoblast proliferation, differentiation, and mineralization. miR-495 facilitated osteoblast proliferation, differentiation, and mineralization by targeting SKP2. SKP2 suppressed Runx2 expression through ubiquitination degradation. Inhibition of Runx2 reversed the promoting effect of SKP2 silencing on osteogenic differentiation. CONCLUSION: KDM5A attenuated the inhibition of miR-495 on SKP2 and promoted the ubiquitination degradation of Runx2 protein by SKP2, thereby repressing osteoblast differentiation and retarding osteoporotic fracture healing.

Animals

Targeting the transcription factor YY1 is synthetic lethal with loss of the histone demethylase KDM5C.

An understanding of the enzymatic and scaffolding functions of epigenetic modifiers is important for the development of epigenetic therapies for cancer. The H3K4me2/3 histone demethylase KDM5C has been shown to regulate transcription. The diverse roles of KDM5C are likely determined by its interacting partners, which are still largely unknown. In this study, we screen for KDM5C-binding proteins and show that YY1 interacts with KDM5C. A synergistic antitumor effect is exerted when both KDM5C and YY1 are depleted, and targeting YY1 appears to be a vulnerability in KDM5C-deficient cancer cells. Mechanistically, KDM5C promotes global YY1 chromatin recruitment, especially at promoters. Moreover, an intact KDM5C JmjC domain but not KDM5C histone demethylase activity is required for KDM5C-mediated YY1 chromatin binding. Transcriptional profiling reveals that dual inhibition of KDM5C and YY1 increases transcriptional repression of cell cycle- and apoptosis-related genes. In summary, our work demonstrates a synthetic lethal interaction between YY1 and KDM5C and suggests combination therapies for cancer treatments.

YY1 Transcription Factor

Histone demethylase PHF2 drives olanzapine-induced dyslipidemia via epigenomic rewiring of hepatic lipogenic genes.

Olanzapine, an atypical antipsychotic agent, is widely used in treating psychotic disorders, yet its metabolic side effects remain a clinical concern. Emerging evidence suggests that dynamic alterations in histone methylation are implicated in olanzapine-induced hepatic lipid metabolic disorders. PHF2, a JmjC family histone demethylase mediating H3K9me2 demethylation, functions as a transcriptional repressor by regulating downstream targets. To elucidate PHF2's role in this process, we utilized an olanzapine-induced dyslipidemia rat model. ChIP-qPCR analysis demonstrated a significant reduction in dimethylated histone H3 lysine 9 (H3K9me2) on the promoters of lipogenic genes (Fasn, Acc1, Scd1) in the liver, accompanied by elevated nuclear expression of PHF2 in olanzapine-treated rats. Co-immunoprecipitation (Co-IP) assays revealed a physical interaction between PHF2 and ChREBP, a glucose-responsive lipogenic transcription factor. Olanzapine was found to enhance the formation of this complex. Overexpression of PHF2 led to upregulated protein levels of FASN/ACC1 and intracellular lipid accumulation, whereas knockdown of PHF2 using siRNA attenuated these effects. Notably, the upregulation of FASN/ACC1 expression induced by olanzapine was markedly diminished in PHF2-deficient AML12 cells via ChREBP-PHF2-mediated H3K9me2 demethylation. Additionally, olanzapine inhibited the nuclear translocation of FOXA2, a PHF2 transcriptional regulator, thereby augmenting PHF2 expression. These findings uncover a novel epigenetic mechanism underlying olanzapine-induced dyslipidemia, positioning the FOXA2-PHF2-ChREBP axis as a potential therapeutic target through modulation of hepatic histone methylation.

Animals

SLC25A11 Is Associated with KDM2A-Dependent Reduction in rRNA Transcription Induced by Aminooxyacetic Acid.

The malate-aspartate shuttle (MAS) is an NADH shuttle that transports cytoplasmic reducing equivalents to the mitochondria for producing energy. We previously demonstrated that K-demethylase 2A (KDM2A), a jmjC-type histone demethylase, decreases ribosomal RNA (rRNA) transcription via demethylation of H3K36me2 in the rRNA gene promoter region in response to energy reduction in MCF-7 cells. However, whether MAS inhibition is involved in KDM2A activity has not been investigated. In this study, we demonstrate that aminooxyacetic acid (AOA), which inhibits aspartate transaminase (AST/GOT) in MAS, decreased intracellular ATP levels and reduced rRNA transcription via KDM2A-dependent reduction in H3K36me2 levels in the rRNA gene promoter in MCF-7 cells. On the other hand, N-phenylmaleimide (NPM), which inhibits the mitochondrial αKG/malate carrier SLC25A11 in MAS, also decreased intracellular ATP levels but did not induce KDM2A activity. Additionally, NPM pretreatment or knockdown of SLC25A11 inhibited AOA-induced KDM2A activity. Dimethyl αKG, a cell-permeable αKG, restored KDM2A activity inhibited by NPM-pretreatment in AOA-treated cells. These results demonstrate that AOA and NPM have different abilities to induce a decrease in rRNA transcription via KDM2A. Furthermore, the αKG/malate carrier SLC25A11 is associated with KDM2A-dependent reduction in rRNA transcription via demethylation under MAS inhibition.

Humans

A cooperative regulatory module between TAGL2 and JMJC1 activates specific defense genes against root-knot nematodes in tomato.

Plant-parasitic nematodes (PPNs) threaten global food security. Although epigenetic modifications are crucial for plant immunity, how histone modifiers contribute to root-knot nematodes (RKNs, Meloidogyne incognita) resistance remains unclear. Here, using genetic, molecular and biochemical approaches, we investigated the epigenetic and transcriptional mechanisms underlying RKN resistance mediated by the histone demethylase (HDM) JMJC1 and the MADS-box transcription factor TAGL2 in tomato (Solanum lycopersicum). We identified JMJC1 as an RKN-induced positive defense regulator targeting H3K9me3 and H3K27me3 histone marks. JMJC1 physically interacts with TAGL2, which also positively regulates RKN resistance. Transcriptomic analysis indicated that TAGL2 regulates multiple layers of the plant defense network, transcriptionally activating representative genes from distinct pathways (including PUB10, bHLH98, CCaMK, and SAUR3), which we validated as positive regulators of RKN resistance via virus-induced gene silencing (VIGS). At the chromatin level, TAGL2 and JMJC1 co-regulate these loci, associating with localized H3K9me3 and H3K27me3 reduction. Furthermore, TAGL2 directly activates JMJC1 transcription, establishing a positive feedback loop that amplifies immune signaling. Our findings reveal a cooperative model wherein a HDM and a transcription factor coordinate at specific loci to fine-tune multiple defense layers at both epigenetic and transcriptional levels, providing insights for breeding durable nematode-resistant plants.

Solanum lycopersicum

CtBP1-LSD1 complex drives ErbB2 activation via H3K9me2 demethylation in DRGs during paclitaxel-induced neuropathic pain.

Paclitaxel (PTX), a commonly utilized chemotherapy drug, is linked to peripheral neuropathy, which limits dosing and significantly affects patients' quality of life. C-terminal binding protein 1 (CtBP1) is a transcriptional coregulator that participates in epigenetic gene regulation, but its role in PTX-induced neuropathic pain remains unclear. In this study, the role of CtBP1 in PTX-induced neuropathic pain is examined, with a focus on its epigenetic regulation in the dorsal root ganglia (DRGs). PTX administration markedly increased CtBP1 protein levels in DRG neurons, which coincided with the development and continuation of mechanical allodynia and thermal hyperalgesia in rat models. Our findings also revealed that CtBP1 interacts with the histone demethylase LSD1-a regulator of H3K9me2-at ErbB2 promoter sites in DRG neurons. PTX treatment increased CtBP1 protein levels, which subsequently induced LSD1 expression and decreased H3K9me2 protein levels at the ErbB2 promoter, indicating epigenetic activation of ErbB2 signaling in DRG neurons implicated in neuropathic pain. Reducing either CtBP1 or LSD1 expression reversed ErbB2 upregulation and attenuated PTX-induced pain sensitivity. These results suggest that the CtBP1-LSD1 complex epigenetically increases ErbB2 expression in DRG neurons, contributing to PTX-induced neuropathy. Targeting the CtBP1-LSD1 pathway could represent a promising therapeutic strategy for the treatment of chemotherapy-induced neuropathic pain.

Animals

Engineering chromatin loops to control cell fate: LoopID reveals catalytic-independent functions of epigenetic regulators.

Enhancer-promoter (E-P) interactions are central to cell-type-specific transcriptional programs, yet the molecular machinery that establishes and maintains these loops has remained poorly defined. A recent study by Jiang et al, published in Nature Genetics, presents a series of transformative discoveries that redefine our understanding of E-P interactions and their role in gene regulation and cell fate determination. The research introduces LoopID, a chromatin-interaction-based proteomic platform that, for the first time, enables systematic identification of protein components, termed the "looposome," localized specifically at chromatin looping anchors. Using LoopID, they profile the "looposome" in mouse embryonic stem cells (ESCs) and uncover an unexpected, catalytic-independent role for the histone demethylase JMJD2 (KDM4) in organizing chromatin architecture through phase-separated condensates. Beyond mechanism, the study demonstrates that targeted assembly of JMJD2 condensates at defined genomic loci can engineer E-P interactions driving cellular reprogramming toward pluripotent and two-cell-like states. Together, these findings represent not only a major technical advance but also a conceptual leap-establish LoopID as a foundational technology for dissecting chromatin structure, introduce a new conceptual framework for epigenetic regulators as structural organizers, and provide a powerful strategy to manipulate cell fate by rewiring three-dimensional (3D) genome architecture.

Animals

The Znf711-Phf8 complex functions as a transcriptional rheostat essential for neutrophil development.

Neutrophil differentiation is governed by a precise transcriptional and epigenetic program. Here, we identify the zinc finger protein 711 (Znf711) and its partner, the histone demethylase PHD finger protein 8 (Phf8), as essential regulators of terminal granulopoiesis. Contrary to their established role as a transcriptional activator-co-activator pair, we found that the Znf711- Phf8 complex operates through a repressive mechanism. Znf711 promotes neutrophil maturation in a DNA-binding-independent manner by sequestering Phf8. Upon loss of Znf711, Phf8 is recruited by the growth factor independent 1 transcription repressor (Gfi1aa) to the promoter of the master regulator c/ebpα, where SUMOylated Phf8 acts as a corepressor to inhibit its transcription. Furthermore, we delineate a positive feedback loop wherein C/ebpα directly activates znf711 expression, ensuring a high level of c/ebpα at the onset of differentiation. Our findings define the Znf711-Phf8 complex as a critical transcriptional rheostat in neutrophil development.

Humans

Biomolecular Condensates Integrate Transcriptional and Epigenetic Responses to Hypoxia.

Hypoxia is a defining feature of physiological stress and the core of solid tumors, where aberrant vascularization limits oxygen delivery; cells respond through mechanisms that extend beyond the canonical stabilization of hypoxia-inducible factors (HIFs). Recent studies suggest that hypoxia can promote the formation of specific biomolecular conden-sates, membraneless compartments generated through liquid-liquid phase separation in which regulatory proteins and RNAs become locally enriched at genomic regions, while chromatin mainly serves as an organizational scaffold. Transcription factors, the coacti-vators p300/CBP, Mediator, and BRD4, chromatin-modifying enzymes, and architectural RNAs such as NEAT1 and MALAT1 partition into these compartments, and their con-densation can help reorganize local chromatin structure and enhancer-promoter interac-tions. Because molecular oxygen is a shared co-substrate for the Jumonji-C histone demethylases and the ten-eleven translocation (TET) DNA dioxygenases, hypoxia reshapes histone methylation and DNA methylation in parallel, and readers that bridge these marks, including UHRF1, may participate in condensate-associated chromatin regulation. Hypoxia-driven condensation of ZHX2 rewires enhancer-promoter contacts and higher-order genome architecture, influencing cell identity, stemness, and metastatic potential, and Polycomb condensates represent another candidate epigenetic compartment that may be influenced by hypoxic signaling. These processes may be particularly important in cancer, where chronic hypoxia provides a sustained stimulus for condensate formation and epigenetic remodeling. Together, these findings support a model in which phase separation and epigenetic reprogramming are not separate layers but one integrated response to low oxygen, offering opportunities to target maladaptive condensates in disease.

Epigenesis, Genetic

Epigenetic reduction OF H3K9me3 and H3K27me3 by RK-701 and GSK 126 improves the developmental competence of bovine SCNT embryos.

Somatic cell nuclear transfer (SCNT) failure has largely been attributed to incomplete epigenetic reprogramming, particularly the dysregulation of repressive histone modifications such as H3K9me3 and H3K27me3. Reducing these repressive marks has been shown to improve reprogramming efficiency in SCNT embryos. Although histone demethylase mRNA injection has been used for this purpose, it is labor-intensive, technically demanding, and time-consuming. In this study, we investigated a simplified approach that combined RK-701 and GSK-126 to reduce H3K9me3 and H3K27me3 levels, respectively, in bovine SCNT embryos. Three experimental groups were established: IVF embryos (control), SCNT-control (SCNT-C) embryos, and inhibitor-treated SCNT embryos (SCNT-T). The IVF group was used as a reference standard. Fused one-cell SCNT embryos were treated with 2&#x202f;&#x3bc;M RK-701 and 0.2&#x202f;&#x3bc;M GSK-126 from the one-cell stage to the 16-cell stage. Gene expression analysis at the 16-cell stage revealed a significant reduction in histone methyltransferase (HMT) expression (p&#x202f;<&#x202f;0.05), and immunofluorescence analysis confirmed marked decreases in H3K9me3 and H3K27me3 levels. In addition, the expression of genes associated with zygotic genome activation (ZGA) and pluripotency was significantly higher in SCNT-T embryos than in SCNT-C embryos. Assessment of blastocyst quality revealed reduced reactive oxygen species (ROS) levels, decreased expression of apoptosis-related genes, and improved mitochondrial membrane potential in the treated group, as indicated by JC1 staining. Overall, this approach effectively reduced repressive histone marks, enhanced epigenetic reprogramming, and improved ZGA, thereby increasing the developmental rate and adhesion potential of bovine SCNT embryos. These findings suggest that combined treatment with RK-701 and GSK-126 may provide a simple and practical strategy for improving the efficiency of bovine cloning.

Bovine embryos

ChIP-seq profiling identifies diapause-regulated H3K27me3 targets in the fat body of Culex pipiens.

Culex pipiens, a principal vector of significant arboviruses, survives winter through diapause, a hormonally controlled inactive phase that enhances endurance under severe cold circumstances. Recent data suggests that epigenetic processes, namely histone post-translational modifications (hPTMs), play a crucial role in regulating seasonal dormancy. Prior studies from our laboratory indicated a decrease in the methylation of Histone 3 (H3K27me3) in diapausing fat body tissue, associated with elevated expression of the histone demethylase UTX. Nonetheless, the precise genomic areas impacted by these chromatin alterations remained unidentified. We used chromatin immunoprecipitation coupled with high-throughput sequencing (ChIP-seq) to delineate the genome-wide distribution of H3K27me3 across fat body chromatin in diapausing (D) and non-diapausing (ND) female Cx. pipiens. Notably, the higher signal at transcription start sites (TSSs) reflects localized redistribution rather than a global decrease, as diapausing fat bodies retain less H3K27me3 overall but concentrate it at promoters. To investigate the functional significance of these chromatin alterations, we confirmed a number of target loci via ChIP-qPCR and assessed gene expression with qRT-PCR. We identified many critical genes that were markedly increased in diapausing mosquitoes, exhibiting an inverse relation to H3K27me3 enrichment. Our data demonstrates different H3K27me3 chromatin landscapes between diapausing and non-diapausing Cx. pipiens, corroborating a hypothesis of selective, locus-specific repression in the non-diapause state and its targeted removal during diapause to permit activation of dormancy-associated genes. These results suggest that chromatin remodeling is a core driver of the diapause switch.

Animals

The Jumonji C domain-containing proteins GmJMJ19 and GmJMJ20 link florigen signaling with epigenetic regulation of photoperiodic flowering and post-flowering plant height in soybean.

Soybean (Glycine max) is a photoperiod-sensitive legume whose latitudinal adaptation depends on the precise control of flowering time and plant height. Histone demethylases of the JmjC domain-containing (JMJ) protein family have been implicated in these processes across plant species, but their specific roles in soybean remain largely unexplored. Here, we identify soybean GmJMJ19 and GmJMJ20, two closely related JMJD5/KDM8 orthologs, as master epigenetic regulators that coordinately control both photoperiodic flowering and post-flowering plant height. Both genes exhibit intrinsic, rhythmic expression peaking at ZT12, and their encoded proteins physically interact with the florigen proteins FT2a and FT5a. Loss-of-function mutants display delayed flowering under long days (LDs) and increased plant height under both LDs and short days (SDs), whereas overexpression phenocopies the mutant flowering phenotype, indicating revealing a critical dosage requirement for proper function. Mechanistically, GmJMJ19 and GmJMJ20 are recruited by the FT/FD transcriptional complex to directly activate AP1a and AP1c expression through chromatin modulation. Population genomic analyses reveal distinct selection signatures: GmJMJ19 underwent sustained directional selection during cultivation, whereas GmJMJ20 experienced an early domestication sweep with limited subsequent change. Haplotype analysis identifies coordinated latitudinal clines, with the JMJ19H1/JMJ20H1 combination predominating at high latitudes to promote early flowering and limit height, while JMJ19H2/JMJ20H2 and wild JMJ19H3/JMJ20H3 alleles prevail at low latitudes, conferring later flowering and increased height. Collectively, our findings establish GmJMJ19 and GmJMJ20 as central chromatin regulators linking florigen signaling to downstream target expression and provide valuable allelic resources for breeding regionally adapted soybean varieties across a wide range of latitudinal environments.

Histone modulation

KDM6A loss enhances oxidative phosphorylation uncovering tissue-level convergent evolution.

The tumor suppressor KDM6A/UTX, a histone demethylase and a 2-oxoglutarate-dependent dioxygenase, is frequently lost in many cancer types. We show that KDM6A loss pervasively activates oxidative phosphorylation in several solid tumors, generating a pseudo-hyperoxic environment, opposite from the pseudo-hypoxia observed in VHL-mutated renal carcinomas. Mechanistically, KDM6A sustains the expression of the coil-coil domain gene CCDC3, which inhibits CREB1-driven transcription of the mitochondrial regulator PPARGC1A. In the hematological cancer multiple myeloma where KDM6A is frequently deleted, its loss similarly promotes oxidative phosphorylation, but via an alternative mechanism: the increased transfer of mitochondria from stromal to myeloma cells via tunneling nanotubes, triggered by the loss of the mTORC1 inhibitor TRAF3IP3. Beyond cancer, KDM6A regulates oxidative phosphorylation also during development and in adult tissues, engaging either the CCDC3-CREB1 or the TRAF3IP3-mTORC1 pathways. These mutually exclusive associations suggest a tissue-level convergent evolution, positioning KDM6A as a central modulator of mitochondrial activity through context-specific partners.

Journal Article

Contrasting roles of histone 3 lysine 27 demethylases in acute lymphoblastic leukaemia.

T-cell acute lymphoblastic leukaemia (T-ALL) is a haematological malignancy with a dismal overall prognosis, including a relapse rate of up to 25%, mainly because of the lack of non-cytotoxic targeted therapy options. Drugs that target the function of key epigenetic factors have been approved in the context of haematopoietic disorders, and mutations that affect chromatin modulators in a variety of leukaemias have recently been identified; however, 'epigenetic' drugs are not currently used for T-ALL treatment. Recently, we described that the polycomb repressive complex 2 (PRC2) has a tumour-suppressor role in T-ALL. Here we delineated the role of the histone 3 lysine 27 (H3K27) demethylases JMJD3 and UTX in T-ALL. We show that JMJD3 is essential for the initiation and maintenance of T-ALL, as it controls important oncogenic gene targets by modulating H3K27 methylation. By contrast, we found that UTX functions as a tumour suppressor and is frequently genetically inactivated in T-ALL. Moreover, we demonstrated that the small molecule inhibitor GSKJ4 (ref. 5) affects T-ALL growth, by targeting JMJD3 activity. These findings show that two proteins with a similar enzymatic function can have opposing roles in the context of the same disease, paving the way for treating haematopoietic malignancies with a new category of epigenetic inhibitors.

Animals

Refractory testicular germ cell tumors are highly sensitive to the targeting of polycomb pathway demethylases KDM6A and KDM6B.

Testicular germ cell tumors (TGCTs) can be treated with cisplatin-based therapy. However, a clinically significant number of cisplatin-resistant patients die from progressive disease as no effective alternatives exist. Curative cisplatin therapy results in acute and life-long toxicities in the young TGCT patient population providing a rationale to decrease cisplatin exposure. In contrast to genetic alterations, recent evidence suggests that epigenetics is a major driving factor for TGCT formation, progression, and response to chemotherapy. Hence, targeting epigenetic pathways with "epidrugs" is one potential relatively unexplored strategy to advance TGCT treatment beyond cisplatin. In this report, we demonstrate for the first time that targeting polycomb demethylases KDM6A and KDM6B with epidrug GSK-J4 can treat both cisplatin-sensitive and -resistant TGCTs. While GSK-J4 had minimal effects alone on TGCT tumor growth in vivo, it dramatically sensitized cisplatin-sensitive and -resistant TGCTs to cisplatin. We validated KDM6A/KDM6B as the target of GSK-J4 since KDM6A/KDM6B genetic depletion had a similar effect to GSK-J4 on cisplatin-mediated anti-tumor activity and transcriptome alterations. Pharmacologic and genetic targeting of KDM6A/KDM6B potentiated or primed the p53-dominant transcriptional response to cisplatin, with also evidence for basal activation of p53. Further, several chromatin modifier genes, including BRD4, lysine demethylases, chromodomain helicase DNA binding proteins, and lysine methyltransferases, were repressed with cisplatin only in KDM6A/KDM6B-targeted cells, implying that KDM6A/KDM6B inhibition sets the stage for extensive chromatin remodeling of TGCT cells upon cisplatin treatment. Our findings demonstrate that targeting polycomb demethylases is a new potent pharmacologic strategy for treating cisplatin resistant TGCTs that warrants clinical development.

Testicular Neoplasms

Multiple Epigenetic Mechanisms Functionally Cooperate to Silence Expression of Somatostatin Receptor Type 2 in Pancreatic Neuroendocrine Tumors.

Pancreatic neuroendocrine tumors (PNETs) are a rare and understudied set of cancers, with increasing incidence. Neuroendocrine tumors are unique in the fact that they express high levels of the somatostatin receptor type 2 (SSTR2), which represents a target for both tumor imaging and therapeutics. PNET grade inversely correlates with SSTR2 tumor staining and higher tumor grade is associated with poor patient prognosis. With no known mutations, SSTR2 expression is believed to be lost through aberrant epigenetic mechanisms. Enhanced knowledge of the epigenetic biology and players controlling SSTR2 expression may allow for identification of novel PNET imaging and treatment modalities. Through in-depth studies, we found that the specific de novo DNA methyltransferase (DNMT), DNMT3B, is responsible for SSTR2 gene CpG methylation and silencing. Using DNMT3B as a starting point, along with the concept of functional crosstalk between various epigenetic mechanisms, we further discovered that Polycomb Repressor Complexes 1 and 2 (PRC1 and PRC2) play important roles in silencing SSTR2. Moreover, we found several histone lysine demethylases, enzymes that remove activating histone H3K4 methylation marks, to be critical for silencing expression of SSTR2. We additionally identified several chromatin remodeling enzymes/complexes as cellular factors that negatively regulate SSTR2 expression. Finally, using the HiBiT luminescent reporter system, we exploited functional chemo-genomic screens to further expand our knowledge of SSTR2 epigenetic control. These screens both reinforced several of our initial findings and helped to identify additional silencing mechanism potentially regulating SSTR2 expression. A commonality in our findings point to the presence, or necessity, of Class I HDACs in nearly all the epigenetic silencing mechanisms characterized. Overall, our work demonstrates that SSTR2 gene expression is likely silenced through various dynamic and interconnected epigenetic events, resulting in a compacted, transcriptionally repressed chromatin environment. Our study offers novel potential therapeutic targets and combinations to best increase expression of SSTR2, which are currently being tested in pre-clinical studies from our group, with the goal of future clinical trials aimed at increasing SSTR2 expression in high-grade, SSTR2-low NET patients.

Journal Article

Androgen Effects on Alcohol-induced Liver Fibrosis Are Controlled by a Notch-dependent Epigenetic Switch.

BACKGROUND & AIMS: Alcohol-associated liver disease (ALD) is a major cause of alcohol-related mortality. Sex is an important variable; however, the mechanism behind sex differences is not yet established. METHODS: Kdm5b flox/flox Kdm5c flox male mice were subjected to gonadectomy or sham surgery. Mice were fed a Western diet and 20% alcohol in the drinking water for 18 weeks. To induce knockout, mice received 2&#xa0;&#xd7; 1011 genome copies of AAV8-CMV-Cre or AAV8-control. To test the role of Notch, mice were treated with 10 mg/kg of avagacestat for 4&#xa0;weeks. RESULTS: We found that Kdm5b/Kdm5c knockout promoted alcohol-induced liver disease, whereas gonadectomy abolished this effect, suggesting that male sex hormones promote liver disease in the absence of KDM5 demethylases. In contrast, in the thioacetamide-induced fibrosis model, male sex hormones showed a protective effect regardless of genotype. In human liver disease samples, we found that androgen receptor expression positively correlated with fibrosis levels when KDM5B levels were low and negatively when KDM5B was high, suggesting that a KDM5B-dependent epigenetic state defines the androgen receptor role in liver fibrosis. Using isolated cells, we found that this difference was due to the differential effect of testosterone on hepatic stellate cell activation in the absence or presence of KDM5B/KDM5C. Moreover, this effect was mediated by KDM5-dependent suppression of Notch signaling. In KDM5-deficient mice, Notch3 and Jag1 gene expression was induced, facilitating testosterone-mediated induction of Notch signaling and stellate cell activation. Inhibiting Notch with avagacestat greatly reduced liver fibrosis and abolished the effect of Kdm5b/Kdm5c loss. CONCLUSIONS: Male sex hormone signaling can promote or prevent alcohol-associated liver fibrosis depending on the KDM5-dependent epigenetic state.

Animals