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HDAC6-dependent deacetylation of SAE2 enhances SUMO1 conjugation for mitotic integrity.

Mammalian cells express three conjugatable SUMO variants: SUMO1 and the closely related SUMO2 and SUMO3 (together referred to as SUMO2/3). While some substrates are modified by both, others show a clear preference, though the basis for this selectivity remains unclear. Here, we examine a modification of the catalytic component of the human SUMO activation enzyme, SAE2. We find that lysine 164 of SAE2 undergoes HDAC6-dependent deacetylation during mitosis. A non-deacetylatable acetyl-mimetic mutant, SAE2-K164Q, selectively enhances SUMO2 over SUMO1 activation and conjugation, and distinguishes between SUMO1 and SUMO2/3 based on differences in their C-terminal tails. Complementation of SAE2-deficient or inhibited cells with SAE2-K164Q suppresses mitotic SUMO1 conjugation and promotes multipolar spindle formation. We identify NuMA as a SUMO E1-dependent substrate and demonstrate that mitotic defects caused by SAE2-K164Q or HDAC6 inhibition are rescued by SUMO1 overexpression or expression of a GFP-SUMO1-NuMA-K1766R fusion. These results support a model in which SAE1:SAE2 deacetylation during early mitosis promotes SUMO1 conjugation to ensure mitotic fidelity, highlighting a regulatory role for the SUMO-activating enzyme in the selection of SUMO proteins.

Humans

Therapeutic Targeting of Decr1 Ameliorates Cardiomyopathy by Suppressing Mitochondrial Fatty Acid Oxidation in Diabetic Mice.

BACKGROUND: A significant increase in mitochondrial fatty acid oxidation (FAO) is now increasingly recognized as one of the metabolic alterations in diabetic cardiomyopathy (DCM). However, the molecular mechanisms underlying mitochondrial FAO impairment in DCM remain to be fully elucidated. METHODS: A type 2 diabetes (T2D) mouse model was established by a combination of high-fat diet (HFD) and streptozotocin (STZ) injection. Neonatal rat cardiomyocytes were treated with high glucose (HG) and palmitic acid (HP) to simulate diabetic cardiac injury. Gain- and loss-of-function approaches and RNA sequencing were utilized to investigate the role and mechanism of 2,4-dienoyl-CoA reductase 1 (Decr1) in DCM. RESULTS: By integrating the genomic data available in the Gene Expression Omnibus (GEO) with DCM rodents, we found that the transcriptional level of Decr1 was consistently upregulated in DCM (+255% for diabetic heart, p&#x2009;<&#x2009;0.0001; +281% for diabetic cells, p&#x2009;<&#x2009;0.0001). Cardiomyocytes-specific knockdown of Decr1 preserved cardiac function (+41% for EF, p&#x2009;<&#x2009;0.0001; +24% for FS, p&#x2009;=&#x2009;0.0052), inhibited cardiac hypertrophy (-34%, p&#x2009;<&#x2009;0.0001), fibrosis (-69%, p&#x2009;<&#x2009;0.0001), apoptosis (-56%, p&#x2009;<&#x2009;0.0001) and oxidative damage (-59%, p&#x2009;<&#x2009;0.0001) in DCM mice, while cardiomyocytes-specific overexpression of Decr1 aggravated DCM (-28% for EF, p&#x2009;=&#x2009;0.0347; -17% for FS, p&#x2009;=&#x2009;0.0014). Deletion of Decr1 prevented high glucose/palmitate (HG/HP)-induced hypertrophy (-22%, p&#x2009;=&#x2009;0.0006), mitochondrial dysfunction and apoptosis (-74%, p&#x2009;<&#x2009;0.0001) in cultured cardiomyocytes. Furthermore, RNA sequencing and functional analysis showed that Decr1 interacted with and upregulated pyruvate dehydrogenase kinase 4 (PDK4) in injured cardiomyocytes, and overexpression of PDK4 eliminated the benefits of Decr1 downregulation in DCM (-20% for EF, p&#x2009;=&#x2009;0.0071; -28% for FS, p&#x2009;=&#x2009;0.0022). Mechanistically, PDK4 acted as a kinase that induced phosphorylation and mitochondrial translocation of HDAC3. In the mitochondria, HDAC3 mediated the deacetylation of dehydrogenase trifunctional multienzyme complex &#x3b1; subunit (HADHA), contributing to excessive mitochondrial FAO and subsequent cardiac injury. From a screening of 256 natural products, we identified Atranorin and Kurarinone as potential inhibitors of Decr1, both demonstrating protective effects against DCM (Atranorin, +21% for EF, p&#x2009;=&#x2009;0.0134; +24% for FS, p&#x2009;=&#x2009;0.0006; Kurarinone, +20% for EF, p&#x2009;=&#x2009;0.0183; +27% for FS, p&#x2009;=&#x2009;0.0001). CONCLUSIONS: Our study delineates a molecular mechanism by which Decr1 potentiated higher mitochondrial lipid oxidation and cardiac damage by enhancing HADHA deacetylation through the PDK4/HDAC3 signalling pathway.

Animals

Multi-omics analyses provide insights into the molecular basis for salt tolerance of Phyla nodiflora.

The perennial herbaceous plant, Phyla nodiflora (Verbenaceae), which possesses natural resistance to multiple abiotic stresses, is widely used as a pioneer species in island ecological restoration. Due to the lack of information about its genome, the mechanism underlying its tolerance to environmental stresses, such as salinity, is almost entirely unknown. Here, we report on the high-quality genome of P. nodiflora that is 403.07&#x2009;Mb in size, and which was assembled and anchored onto 18 pseudo-chromosomes. Genomic synteny revealed that P. nodiflora underwent two whole genome duplication events, which promoted the expansion of genes related to environmental adaptation and the biosynthesis of secondary metabolites. An integrated genomic and transcriptomic analysis suggested that salt stress tolerance in P. nodiflora is associated with the expansion and activated expression of genes related to abscisic acid (ABA) homeostasis and signaling. The expansion of ZEP family genes may contribute to the consistent increase in ABA levels under salt stress. Lysine acetylomic analysis revealed that exposure to salt led to widespread protein deacetylation, with these proteins primarily involved in signal transduction, carbohydrate transport and metabolism, and transcription regulation. Deacetylation of glutathione S-transferase increased enzymatic activities in response to salt-induced oxidative stress. Collectively, the genomic, transcriptomic, and lysine acetylomic analyses provide profound insight into the molecular basis of the adaptation of P. nodiflora to salt stress, and will be helpful to engineer salt-tolerant plants for ecological restoration.

Salt Tolerance

Heterochromatin-based silencing of a foreign tandem repeat in Drosophila melanogaster shows unusual biochemistry and temperature sensitivity.

Eukaryotic genomes are packaged into chromatin, a regulatory nucleoprotein assembly. Establishment, maintenance, and interconversion of chromatin states is required for correct patterns of gene expression, genome integrity, and survival. Transcriptionally repressive heterochromatin minimizes mobilization of transposable elements and limits expansion of other repetitive DNA, but mechanisms for recognition of the latter sequences are not well established. We previously demonstrated in Drosophila melanogaster that transcripts derived from 1360 and Invader4 transposon insertions can trigger local conversion of transcriptionally permissive euchromatin to heterochromatin through the piRNA system, but only in a subset of genomic locations near existing blocks of heterochromatin. Here we show that a ~9 kb tandem array of the 36-nucleotide lac operator (lacO) sequence of Escherichia coli can form ectopic heterochromatin at a similar subset of sites, resulting in variegating expression of an adjacent reporter gene. Heterochromatin Protein 1a (HP1a) and histone deacetylation are required for lacO repeat-induced silencing, but, contrasting with previously described Position Effect Variegation (PEV), we do not observe increased histone H3 lysine 9 methylation. Silencing is effective at 25&#xb0;C and suppressed at 18&#xb0;C (in contrast to canonical PEV, which is enhanced at 18&#xb0;C), indicating involvement of a temperature-sensitive component. Temperature switching experiments show that lacO repeat-induced heterochromatin formation is reversible throughout larval development following an HP1a-dependent initiation step in the early embryo. We conclude that the Drosophila nucleus can recognize a completely foreign tandem repeat as a target for heterochromatin formation, and that the heterochromatin structure established is distinct from that of endogenous tandem arrays.

HP1a

High temperature-responsive DEAR4 condensation confers thermotolerance through recruiting TOPLESS in Arabidopsis nucleus.

Global warming is harmful to plants and threatens crop yields in the world. In contrast to other abiotic stresses, the molecular mechanisms for plant high temperature perception and signaling are still not fully understood. Here, we report that transcription factor DREB AND EAR MOTIF PROTEIN 4 (DEAR4) positively regulates heat tolerance in Arabidopsis thaliana. We further reveal that DEAR4 proteins undergo liquid-liquid phase separation (LLPS) and high temperature could induce DEAR4 condensate formation in the nucleus. Moreover, DEAR4 recruits the transcriptional co-repressor TOPLESS (TPL) into the nuclear speckles under high temperature. The high temperature triggered DEAR4-TPL co-condensates enhance their transcriptional repression activity through modulating histone deacetylation levels of GASA5, which is a reported negative regulator of HEAT SHOCK PROTEINs (HSPs). A genome-wide transcriptional landscape study confirms that DEAR4 induces the expression of multiple HSPs. Taken together, we illustrate a transcriptional repression mechanism mediated by DEAR4 through LLPS to confer plants thermotolerance and open a new avenue for translating this knowledge into crops for improving their heat resistance.

Arabidopsis

Histone deacetylases: From acetylation homeostasis to oncogenic and neurodegenerative disorders.

Histone deacetylases (HDACs) are central regulators of acetylation homeostasis, governing chromatin architecture, transcriptional dynamics, and diverse cellular processes through reversible lysine deacetylation. Dysregulation of HDAC activity disrupts epigenetic balance and is strongly implicated in oncogenic transformation and the progression of neurodegenerative disorders. This chapter provides a comprehensive overview of HDAC biology with a particular emphasis on experimental and analytical methodologies used to investigate their function. We describe the structural and functional diversity of HDAC classes and their roles in multiprotein complexes that regulate gene expression and cellular signaling. A major focus is placed on screening-compatible and mechanistic assays, including fluorometric, colorimetric, radiometric, fluorescence polarization, TR-FRET, AlphaScreen/AlphaLISA, and differential scanning fluorimetry approaches for quantitative measurement of enzymatic activity and inhibitor profiling. In addition, advanced methodologies such as mass spectrometry-based acetylome analysis, chromatin immunoprecipitation sequencing (ChIP-seq), recombinant enzyme assays, and cell-based reporter systems are discussed in the context of functional genomics and drug discovery. The integration of high-throughput screening, structural biology, and multi-omics strategies is highlighted as essential for dissecting HDAC-mediated regulatory networks. Collectively, this chapter serves as a methodological framework for studying HDAC function and developing targeted epigenetic therapies in cancer and neurodegenerative diseases.

Histone Deacetylases

Dual Mechanisms Underlie the Repression of Repressor Element 1-Silencing Transcription Factor Expression in Lung Neuroendocrine Carcinoma Cells.

Recent advances in genetic analysis have led to further subtyping of small-cell lung carcinoma (SCLC). The major subtypes of SCLC are the achaete-scute family bHLH transcription factor 1 (ASCL1)-predominant (SCLC-A), neuronal differentiation 1 (NEUROD1)-predominant (SCLC-N), and POU class 2 homeobox 3 (POU2F3) (SCLC-P) subtypes. SCLC-A and SCLC-N tumors express chromogranin A (CHGA) and synaptophysin (SYP), but SCLC-P tumors do not. Large-cell neuroendocrine carcinoma, another type of neuroendocrine carcinoma (NEC), also frequently expresses CHGA and SYP. Because CHGA and SYP expression is controlled by a transrepressor, repressor element 1-silencing transcription factor (REST), the mechanisms underlying REST suppression in NEC were investigated, with a focus on miRNAs and epigenetics, to determine the causes of the differences in the expression of CHGA and SYP between SCLC-A/N and SCLC-P cells. The results showed that miR-375-3p, which was induced by ASCL1 and NEUROD1, repressed REST expression by binding to the 3'-untranslated region of REST mRNA. Bisulfite sequencing and experiments using a DNA methyltransferase inhibitor, a histone deacetylase inhibitor, and chromatin immunoprecipitation-based quantitative PCR revealed that promoter/enhancer hypermethylation and histone deacetylation causes REST gene inactivation in SCLC-A/N. These phenomena were also observed in a large-cell neuroendocrine carcinoma cell line that expressed high levels of ASCL1 and NEUROD1. Taken together, these findings suggest that NEC has dual repressive effects on REST expression, resulting in strict regulation of the expression of CHGA, SYP, and other REST-controlled neuronal/neuroendocrine-specific genes.

Humans

Unraveling the c-Myc-CASC19/HDAC1-NPM1 epigenetic axis: A novel regulatory circuitry and therapeutic target in gastric carcinogenesis.

Mounting evidence implicates long non-coding RNA cancer susceptibility candidate 19 (CASC19) in the pathogenesis of diverse malignancies. However, its functional role and molecular mechanisms in gastric cancer (GC) remain elusive. Herein, we identified a novel 717-bp transcript isoform of CASC19 in GC cells. This study aimed to delineate the biological functions and underlying mechanisms of this novel CASC19 transcript in GC pathogenesis. CASC19 was significantly upregulated in GC tissues and cell lines, correlating with adverse clinicopathological features and poor prognosis in GC patients. Functional investigations demonstrated that CASC19 overexpression potentiated GC cell proliferation, metastasis, and epithelial-mesenchymal transition, whereas CASC19 knockdown attenuated these malignant phenotypes and suppressed tumorigenesis in xenograft models. Mechanistically, CASC19 functioned as a molecular scaffold by recruiting histone deacetylase 1 (HDAC1) to the nucleophosmin 1 (NPM1) promoter. This recruitment sustained H3K27 deacetylation, thereby transcriptionally repressing NPM1 promoter activity and accelerating gastric carcinogenesis. Crucially, Depletion of HDAC1 or NPM1 partial rescued CASC19-mediated oncogenic effects. Intriguingly, the transcription factor c-Myc was found to transcriptionally activate CASC19 through direct binding to its promoter region. Collectively, our findings indicate that the c-Myc-CASC19/HDAC1-NPM1 axis acts as a potential prognostic biomarker candidate for GC and may represent a therapeutic vulnerability worthy of future investigation.

Humans

Mechanistic insights into CAR-mediated repression of the HNF4&#x3b1;-FABP1 axis and inhibition of HepG2 cell proliferation.

The constitutive androstane receptor (CAR) modulates the transcription of numerous genes involving drug metabolism, energy homeostasis, and cell proliferation. While rodent studies suggest an oncogenic role for murine CAR in liver cancer development, emerging evidence indicates that human CAR (hCAR) may exhibit a tumor-suppressive role in hepatocellular carcinoma; notably, overexpressing hCAR suppresses human hepatoma cell proliferation. Yet, the molecular mechanisms whereby hCAR suppresses hepatoma cell proliferation are poorly understood. Our recent RNA-seq analysis of human hepatoma cells revealed that fatty acid binding protein 1 (FABP1), a pleiotropic modulator of lipid metabolism and cancer progression, was a top gene downregulated by hCAR. Here, we report a molecular mechanism whereby hCAR downregulates FABP1 expression by modulating HNF4&#x3b1; signaling. Knocking down hCAR expression in a HepG2-hCAR stable cell line restores the suppressed expression of FABP1 and HNF4&#x3b1;, while knocking down HNF4&#x3b1; alone is sufficient to suppress FABP1 expression. Luciferase reporter assays revealed concentration-dependent hCAR suppression of HNF4&#x3b1;-mediated FABP1 transactivation. This inhibitory crosstalk between hCAR and HNF4&#x3b1; was further confirmed by chromatin immunoprecipitation assays, where hCAR decreased HNF4&#x3b1; occupancy of the FABP1 promoter. Mechanistically, hCAR inhibits HNF4&#x3b1; expression by prompting deacetylation of histone H3 in the HNF4&#x3b1; P1 enhancer region, resulting in a repressive chromatin configuration and reduced HNF4&#x3b1; transcription. Furthermore, overexpressing FABP1 partially rescued hCAR-suppressed cell growth. Collectively, these results uncover the hCAR-HNF4&#x3b1;-FABP1 axis as a novel mechanism underlying hCAR-mediated gene repression.

Humans

Acetylation of lysine 49 on Ctnnb1 drives na&#xef;ve pluripotency in murine stem cells by modulating Nanog function.

Na&#xef;ve pluripotency represents the ground state of mammalian development. A comprehensive understanding of the molecular mechanisms governing its establishment is crucial for elucidating the unique properties of embryonic cells and the regulatory mechanisms controlling cell fate determination. However, the key molecule to robustly achieve na&#xef;ve pluripotency with minimal manipulation remains unclear. We found that the acetylation status of lysine 49 (K49) of Catenin beta-1 (Ctnnb1) plays a critical role in na&#xef;ve pluripotency of murine stem cells. Deacetylated Ctnnb1 at K49 binds to transcription factor Nanog, impeding its repressor function and thereby promoting differentiation. Remarkably, treatment with IQ1, an inhibitor of interaction between acetyltransferase Ep300 and Ctnnb1, enhances acetylation at K49 of Ctnnb1, enabling the establishment and long-term maintenance of embryonic stem cells independently of the leukemia inhibitory factor, and also driving complete conversion of epiblast stem cells to the na&#xef;ve state. This study reveals the critical role of Ctnnb1 in na&#xef;ve pluripotency and introduces an effective strategy for its induction and maintenance.

Crebbp/Ep300

CRISPR-mediated proximity labeling unveils ABHD14B as a host factor to regulate HBV cccDNA transcriptional activity.

BACKGROUND: The long-term goal of chronic hepatitis B research is a functional cure (HBsAg seroclearance). Although currently used nucleos(t)ide analogs can efficiently inhibit viral replication, they do not reduce viral RNAs or proteins produced from covalently closed circular DNA (cccDNA), and rarely achieve a functional cure. To overcome this situation, revealing the mode of the existence of cccDNA is required, including identifying the interreacting proteins with cccDNA. Here, we aimed to identify novel proteins that interact with cccDNA. METHODS: Using an in vitro HBV infection model and a sequence-specific proximity labelling method consisting of dead Cas9 and biotin identification (BioID2), we comprehensively determined proteins that possibly interact with cccDNA. After identifying the candidate proteins, the HBV RNA transcription levels were examined by knocking out the associated genes. RESULTS: We identified ABHD14B as a protein that interacts with cccDNA and inhibits HBV RNA transcription from cccDNA. ABHD14B decreases the acetylation levels of histone proteins that control the transcription levels of HBV RNA in cccDNA. Moreover, ABHD14B interacts with TFII-I, which binds directly to cccDNA in a sequence-dependent manner. These results suggest that the host protein, ABHD14B, is recruited to cccDNA via the TFII-I protein, inhibiting HBV RNA transcription from cccDNA by deacetylating cccDNA histones. CONCLUSIONS: ABHD14B was newly identified as a suppressor of HBV RNA transcription from cccDNA, which may improve our understanding of the mode of existence of cccDNA, providing a basis for development of a functional cure.

Humans

Identification of sporulation genes in Bacillus anthracis highlights similarities and significant differences with Bacillus subtilis.

The molecular basis of endospore formation in the model gram-positive bacterium Bacillus subtilis has been investigated for over half a century. Here, using high throughput and classical genetic approaches, we performed a comparative analysis of sporulation in the human pathogen Bacillus anthracis. A transposon-sequencing screen identified >150 genes required for B. anthracis sporulation. As anticipated, many of the genes that are critical for sporulation in B. subtilis were also required for B. anthracis sporulation. However, we identified >50 genes that are important for sporulation in B. anthracis but not in B. subtilis, and 22 B. anthracis sporulation genes that are absent from the B. subtilis genome. To validate the hits from our screen, we generated an ordered transposon-mutant library using Knockout Sudoku. Cytological analysis of a subset of the canonical sporulation-defective mutants revealed similar but not identical phenotypes in the pathogen compared to the model. We investigated several of the newly identified sporulation genes, with an in-depth analysis of one, ORF 04167, renamed ipdA. Sporulating cells lacking ipdA are blocked in the morphological process of engulfment, generating septal bulges. An AlphaFold-Multimer screen and a classical genetic enrichment revealed that IpdA is a secreted inhibitor of the polysaccharide deacetylase PdaN. Our data support a model in which induction of IpdA at the onset of sporulation inhibits deacetylation of the cell wall peptidoglycan (PG), enabling the sporulation-specific PG hydrolases to catalyze engulfment. Altogether, our studies reveal that B. subtilis is an excellent model for endospore formation in B. anthracis, while underscoring the importance of direct analysis in B. anthracis. The suite of tools that we have generated will catalyze the molecular dissection of sporulation and other cell biological processes in this important human pathogen.

Bacillus anthracis

Reversion from basal histone H4 hypoacetylation at the replication fork increases DNA damage in FANCA deficient cells.

The FA/BRCA pathway safeguards DNA replication by repairing interstrand crosslinks (ICL) and maintaining replication fork stability. Chromatin structure, which is in part regulated by histones posttranslational modifications (PTMs), has a role in maintaining genomic integrity through stabilization of the DNA replication fork and promotion of DNA repair. An appropriate balance of PTMs, especially acetylation of histones H4 in nascent chromatin, is required to preserve a stable DNA replication fork. To evaluate the acetylation status of histone H4 at the replication fork of FANCA deficient cells, we compared histone acetylation status at the DNA replication fork of isogenic FANCA deficient and FANCA proficient cell lines by using accelerated native immunoprecipitation of nascent DNA (aniPOND) and in situ protein interactions in the replication fork (SIRF) assays. We found basal hypoacetylation of multiple residues of histone H4 in FA replication forks, together with increased levels of Histone Deacetylase 1 (HDAC1). Interestingly, high-dose short-term treatment with mitomycin C (MMC) had no effect over H4 acetylation abundance at the replication fork. However, chemical inhibition of histone deacetylases (HDAC) with Suberoylanilide hydroxamic acid (SAHA) induced acetylation of the FANCA deficient DNA replication forks to levels comparable to their isogenic control counterparts. This forced permanence of acetylation impacted FA cells homeostasis by inducing DNA damage and promoting G2 cell cycle arrest. Altogether, this caused reduced RAD51 foci formation and increased markers of replication stress, including phospho-RPA-S33. Hypoacetylation of the FANCA deficient replication fork, is part of the cellular phenotype, the perturbation of this feature by agents that prevent deacetylation, such as SAHA, have a deleterious effect over the delicate equilibrium they have reached to perdure despite a defective FA/BRCA pathway.

Histones

Mechanistic insights into steroid hormone-mediated regulation of the androgen receptor gene.

Expression of the androgen receptor is key to the response of cells and tissues to androgenic steroids, such as testosterone or dihydrotestosterone, as well as impacting the benefit of hormone-dependent therapies for endocrine diseases and hormone-dependent cancers. However, the mechanisms controlling androgen receptor expression are not fully understood, limiting our ability to effectively promote or inhibit androgenic signalling therapeutically. An autoregulatory loop has been described in which androgen receptor may repress its own expression in the presence of hormone, although the molecular mechanisms are not fully understood. In this work, we elucidate the mechanisms of autoregulation and demonstrate, for the first time, that a similar repression of the AR gene is facilitated by the progesterone receptor. We show that the progesterone receptor, like the androgen receptor binds to response elements within the AR gene to effect transcriptional repression in response to hormone treatment. Mechanistically, this repression involves hormone-dependent histone deacetylation within the AR 5'UTR region and looping between sequences in intron 2 and the transcription start site (TSS). This novel pathway controlling AR expression in response to hormone stimulation may have important implications for understanding cell or tissue selective receptor signalling.

Receptors, Androgen

Differential expression and regulation of ADAD1, DMRTC2, PRSS54, SYCE1, SYCP1, TEX101, TEX48, and TMPRSS12 gene profiles in colon cancer tissues and their in vitro response to epigenetic drugs.

Colon cancer (CC) is a significant cause of death worldwide, particularly in Saudi Arabia. To increase the accuracy of diagnosis and treatment, it is important to discover new specific biomarkers for CC. The main objectives of this research are to identify potential specific biomarkers for the early diagnosis of CC by analyzing the expressions of eight cancer testis (CT) genes, as well as to analyze how epigenetic mechanisms control the expression of these genes in CC cell lines. Tissue samples were collected from 15 male patients with CC tissues and matched NC tissues for gene expression analysis. The expression levels of specific CT genes, including ADAD1, DMRTC2, PRSS54, SYCE1, SYCP1, TEX101, TEX48, and TMPRSS12, were assessed using quantitative techniques. To validate the gene expression patterns, we used publicly available CC statistics. To investigate the effect of inhibition of DNA methylation and histone deacetylation on CT gene expression, in vitro experiments were performed using HCT116 and Caco-2 cell lines. There was no detected expression of the genes neither in the patient samples nor in NC tissues, except for TEX48, which exhibited upregulation in CC samples compared to NC tissues in online datasets. Notably, CT genes showed expression in testis samples. In vitro, experiments demonstrated significant enhancement in mRNA expression levels of ADAD1, DMRTC2, PRSS54, SYCE1, SYCP1, TEX101, TEX48, and TMPRSS12 following treatment with 5-aza-2'-deoxycytidine and trichostatin A in HCT116 and Caco-2 cell lines. Epigenetic treatments modify the expression of CT genes, indicating that these genes can potentially be used as biomarkers for CC. The importance of conducting further research to understand and target epigenetic mechanisms to improve CC treatment cannot be overemphasized.

Humans

Post-translational modification of proteins in the human testis development pathway.

BACKGROUND: The foetal testes produce the androgens necessary to masculinise the developing embryo and support the maturation of germ cells, that will eventually develop into sperm, thus ensuring future reproductive capacity. The testes develop from the bi-potential gonads in a highly orchestrated process resulting in the differentiation of a complex tissue with multiple cellular lineages. While recent transcriptomic and chromatin-based analyses of human foetal testes have provided an unprecedented level of insight into signalling pathways activated during this process, proteomic studies of the human foetal gonads remain limited. Proteins are active molecules and post-translational modification (PTM) of proteins influences protein activity, stability and localisation. Studies have shown that PTMs regulate critical proteins in testis development, and their disruptions are implicated in congenital disorders including differences of sex development (DSD), in which sex development is atypical. Despite this, the role and regulation of protein PTM during human testis development remains poorly understood due to limited access to human foetal gonadal tissue, a paucity of large-scale proteomics studies, and a lack of robust of human gonad in vitro models. OBJECTIVE AND RATIONALE: This review aims to provide a comprehensive analysis of validated PTMs affecting proteins critical for testicular development. We discuss PTMs with evidence for a role in normal testis development, and highlight those disrupted in DSD. We review emerging techniques, including proteomic technologies and organ modelling systems that may advance our understanding of PTMs in foetal testis development. We discuss challenges that have restricted the application of these technologies and how overcoming these will significantly improve our understanding of testis development and disease, diagnostics and patient outcomes. SEARCH METHODS: We searched PubMed and the University of Melbourne library for peer-reviewed English-language studies using keywords such as phosphorylation, SUMOylation, acetylation, ubiquitination alongside each protein of interest. PTM sites in proteins involved in testis development were identified using the PhosphoSitePlus database focusing those confirmed in in vitro or animal model studies. ClinVar and the Human Gene Mutation Database were used to identify patient variants that may disrupt PTM sites. OUTCOMES: Our review finds that proteins required for human foetal testis development are subject to extensive PTM. Several PTM sites and PTM-mediated pathways [e.g. MAPK (mitogen-activated protein kinase) pathway] are disrupted in patients with DSD or related conditions. While recent advances in proteomics technologies hold considerable promise, their application to human foetal gonads has been constrained by technical, ethical, and logistical challenges. Encouragingly, emerging high-sensitivity and low-input technologies, alongside stem cell-based approaches, offer viable pathways to overcoming these barriers. WIDER IMPLICATIONS: The relationship between gene regulation, protein expression, and cellular outcome is inherently non-linear, shaped by additional regulatory layers-most notably PTMs. The contribution of PTMs to human testis development in both typical and atypical contexts is a major knowledge gap. Addressing this gap has broad clinical and biological relevance: it may help improve genetic diagnosis or shed light on how proteins or pathways critical for testis development respond to environmental signals-an increasingly pressing question as declining global fertility rates bring testicular function under greater scrutiny. REGISTRATION NUMBER: N/A.

Humans