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1.
Cell Death Dis ; 15(5): 338, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38744809

ABSTRACT

Epitranscriptomic RNA modifications are crucial for the maintenance of glioma stem cells (GSCs), the most malignant cells in glioblastoma (GBM). 3-methylcytosine (m3C) is a new epitranscriptomic mark on RNAs and METTL8 represents an m3C writer that is dysregulated in cancer. Although METTL8 has an established function in mitochondrial tRNA (mt-tRNA) m3C modification, alternative splicing of METTL8 can also generate isoforms that localize to the nucleolus where they may regulate R-loop formation. The molecular basis for METTL8 dysregulation in GBM, and which METTL8 isoform(s) may influence GBM cell fate and malignancy remain elusive. Here, we investigated the role of METTL8 in regulating GBM stemness and tumorigenicity. In GSC, METTL8 is exclusively localized to the mitochondrial matrix where it installs m3C on mt-tRNAThr/Ser(UCN) for mitochondrial translation and respiration. High expression of METTL8 in GBM is attributed to histone variant H2AZ-mediated chromatin accessibility of HIF1α and portends inferior glioma patient outcome. METTL8 depletion impairs the ability of GSC to self-renew and differentiate, thus retarding tumor growth in an intracranial GBM xenograft model. Interestingly, METTL8 depletion decreases protein levels of HIF1α, which serves as a transcription factor for several receptor tyrosine kinase (RTK) genes, in GSC. Accordingly, METTL8 loss inactivates the RTK/Akt axis leading to heightened sensitivity to Akt inhibitor treatment. These mechanistic findings, along with the intimate link between METTL8 levels and the HIF1α/RTK/Akt axis in glioma patients, guided us to propose a HIF1α/Akt inhibitor combination which potently compromises GSC proliferation/self-renewal in vitro. Thus, METTL8 represents a new GBM dependency that is therapeutically targetable.


Subject(s)
Glioblastoma , Hypoxia-Inducible Factor 1, alpha Subunit , Methyltransferases , Neoplastic Stem Cells , Proto-Oncogene Proteins c-akt , Humans , Glioblastoma/metabolism , Glioblastoma/pathology , Glioblastoma/genetics , Hypoxia-Inducible Factor 1, alpha Subunit/metabolism , Hypoxia-Inducible Factor 1, alpha Subunit/genetics , Proto-Oncogene Proteins c-akt/metabolism , Neoplastic Stem Cells/metabolism , Neoplastic Stem Cells/pathology , Animals , Methyltransferases/metabolism , Methyltransferases/genetics , Mice , Brain Neoplasms/pathology , Brain Neoplasms/metabolism , Brain Neoplasms/genetics , Cell Line, Tumor , Carcinogenesis/genetics , Carcinogenesis/pathology , Carcinogenesis/metabolism , Signal Transduction , RNA, Transfer/metabolism , RNA, Transfer/genetics , Mitochondria/metabolism , Gene Expression Regulation, Neoplastic , Mice, Nude , Cell Proliferation
2.
Nucleic Acids Res ; 2024 May 29.
Article in English | MEDLINE | ID: mdl-38808662

ABSTRACT

Cohesin plays a crucial role in the organization of topologically-associated domains (TADs), which influence gene expression and DNA replication timing. Whether epigenetic regulators may affect TADs via cohesin to mediate DNA replication remains elusive. Here, we discover that the histone demethylase PHF2 associates with RAD21, a core subunit of cohesin, to regulate DNA replication in mouse neural stem cells (NSC). PHF2 loss impairs DNA replication due to the activation of dormant replication origins in NSC. Notably, the PHF2/RAD21 co-bound genomic regions are characterized by CTCF enrichment and epigenomic features that resemble efficient, active replication origins, and can act as boundaries to separate adjacent domains. Accordingly, PHF2 loss weakens TADs and chromatin loops at the co-bound loci due to reduced RAD21 occupancy. The observed topological and DNA replication defects in PHF2 KO NSC support a cohesin-dependent mechanism. Furthermore, we demonstrate that the PHF2/RAD21 complex exerts little effect on gene regulation, and that PHF2's histone-demethylase activity is dispensable for normal DNA replication and proliferation of NSC. We propose that PHF2 may serve as a topological accessory to cohesin for cohesin localization to TADs and chromatin loops, where cohesin represses dormant replication origins directly or indirectly, to sustain DNA replication in NSC.

3.
Biogerontology ; 25(2): 341-360, 2024 Apr.
Article in English | MEDLINE | ID: mdl-37987889

ABSTRACT

Telomere shortening is a well-established hallmark of cellular aging. Telomerase reverse transcriptase (TERT) plays a crucial role in maintaining the length of telomeres, which are specialised protective caps at the end of chromosomes. The lack of in vitro aging models, particularly for the central nervous system (CNS), has impeded progress in understanding aging and age-associated neurodegenerative diseases. In this study, we aimed to explore the possibility of inducing aging-associated features in cell types of the CNS using hiPSC (human induced pluripotent stem cell) technology. To achieve this, we utilised CRISPR/Cas9 to generate hiPSCs with a loss of telomerase function and shortened telomeres. Through directed differentiation, we generated motor neurons and astrocytes to investigate whether telomere shortening could lead to age-associated phenotypes. Our findings revealed that shortened telomeres induced age-associated characteristics in both motor neurons and astrocytes including increased cellular senescence, heightened inflammation, and elevated DNA damage. We also observed cell-type specific age-related morphology changes. Additionally, our study highlighted the fundamental role of TERT and telomere shortening in neural progenitor cell (NPC) proliferation and neuronal differentiation. This study serves as a proof of concept that telomere shortening can effectively induce aging-associated phenotypes, thereby providing a valuable tool to investigate age-related decline and neurodegenerative diseases.


Subject(s)
Induced Pluripotent Stem Cells , Neurodegenerative Diseases , Telomerase , Humans , Telomere Shortening , Induced Pluripotent Stem Cells/metabolism , Astrocytes/metabolism , Telomerase/genetics , Telomere , Motor Neurons/metabolism , Phenotype
4.
Cell Death Differ ; 30(8): 1973-1987, 2023 08.
Article in English | MEDLINE | ID: mdl-37468549

ABSTRACT

MAD2 is a spindle assembly checkpoint protein that participates in the formation of mitotic checkpoint complex, which blocks mitotic progression. RNF8, an established DNA damage response protein, has been implicated in mitotic checkpoint regulation but its exact role remains poorly understood. Here, RNF8 proximity proteomics uncovered a role of RNF8-MAD2 in generating the mitotic checkpoint signal. Specifically, RNF8 competes with a small pool of p31comet for binding to the closed conformer of MAD2 via its RING domain, while CAMK2D serves as a molecular scaffold to concentrate the RNF8-MAD2 complex via transient/weak interactions between its p-Thr287 and RNF8's FHA domain. Accordingly, RNF8 overexpression impairs glioma stem cell (GSC) mitotic progression in a FHA- and RING-dependent manner. Importantly, low RNF8 expression correlates with inferior glioma outcome and RNF8 overexpression impedes GSC tumorigenicity. Last, we identify PLK1 inhibitor that mimics RNF8 overexpression using a chemical biology approach, and demonstrate a PLK1/HSP90 inhibitor combination that synergistically reduces GSC proliferation and stemness. Thus, our study has unveiled a previously unrecognized CAMK2D-RNF8-MAD2 complex in regulating mitotic checkpoint with relevance to gliomas, which is therapeutically targetable.


Subject(s)
Cell Cycle Proteins , Glioma , Mad2 Proteins , Humans , Adaptor Proteins, Signal Transducing/metabolism , Calcium-Calmodulin-Dependent Protein Kinase Type 2/metabolism , Cell Cycle Proteins/metabolism , DNA-Binding Proteins/metabolism , Glioma/genetics , Glioma/metabolism , M Phase Cell Cycle Checkpoints , Mad2 Proteins/genetics , Mad2 Proteins/metabolism , Mitosis , Nuclear Proteins/metabolism , Spindle Apparatus/metabolism , Ubiquitin-Protein Ligases/metabolism
5.
J Pathol ; 259(3): 342-356, 2023 03.
Article in English | MEDLINE | ID: mdl-36573560

ABSTRACT

The relatively quiet mutational landscape of rhabdomyosarcoma (RMS) suggests that epigenetic deregulation could be central to oncogenesis and tumour aggressiveness. Histone variants have long been recognised as important epigenetic regulators of gene expression. However, the role of histone variants in RMS has not been studied hitherto. In this study, we show that histone variant H3.3 is overexpressed in alveolar RMS (ARMS), an aggressive subtype of RMS. Functionally, knockdown of H3F3A, which encodes for H3.3, significantly impairs the ability of ARMS cells to undertake migration and invasion and reduces Rho activation. In addition, a striking reduction in metastatic tumour burden and improved survival is apparent in vivo. Using RNA-sequencing and ChIP-sequencing analyses, we identified melanoma cell adhesion molecule (MCAM/CD146) as a direct downstream target of H3.3. Loss of H3.3 resulted in a reduction in the presence of active marks and an increase in the occupancy of H1 at the MCAM promoter. Cell migration and invasion were rescued in H3F3A-depleted cells through MCAM overexpression. Moreover, we identified G9a, a lysine methyltransferase encoded by EHMT2, as an upstream regulator of H3F3A. Therefore, this study identifies a novel H3.3 dependent axis involved in ARMS metastasis. These findings establish the potential of MCAM as a therapeutic target for high-risk ARMS patients. © 2022 The Pathological Society of Great Britain and Ireland.


Subject(s)
Histones , Rhabdomyosarcoma, Alveolar , Humans , Cell Line, Tumor , Histocompatibility Antigens/genetics , Histocompatibility Antigens/metabolism , Histone-Lysine N-Methyltransferase/genetics , Histones/genetics , Histones/metabolism , Promoter Regions, Genetic , Rhabdomyosarcoma, Alveolar/genetics , Rhabdomyosarcoma, Alveolar/pathology
6.
Nucleic Acids Res ; 50(13): 7326-7349, 2022 07 22.
Article in English | MEDLINE | ID: mdl-35776115

ABSTRACT

SETDB1 is a key regulator of lineage-specific genes and endogenous retroviral elements (ERVs) through its deposition of repressive H3K9me3 mark. Apart from its H3K9me3 regulatory role, SETDB1 has seldom been studied in terms of its other potential regulatory roles. To investigate this, a genomic survey of SETDB1 binding in mouse embryonic stem cells across multiple libraries was conducted, leading to the unexpected discovery of regions bereft of common repressive histone marks (H3K9me3, H3K27me3). These regions were enriched with the CTCF motif that is often associated with the topological regulator Cohesin. Further profiling of these non-H3K9me3 regions led to the discovery of a cluster of non-repeat loci that were co-bound by SETDB1 and Cohesin. These regions, which we named DiSCs (domains involving SETDB1 and Cohesin) were seen to be proximal to the gene promoters involved in embryonic stem cell pluripotency and lineage development. Importantly, it was found that SETDB1-Cohesin co-regulate target gene expression and genome topology at these DiSCs. Depletion of SETDB1 led to localized dysregulation of Cohesin binding thereby locally disrupting topological structures. Dysregulated gene expression trends revealed the importance of this cluster in ES cell maintenance as well as at gene 'islands' that drive differentiation to other lineages. The 'unearthing' of the DiSCs thus unravels a unique topological and transcriptional axis of control regulated chiefly by SETDB1.


Subject(s)
Endogenous Retroviruses , Histone-Lysine N-Methyltransferase/metabolism , Histones , Animals , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , Chromosomal Proteins, Non-Histone/genetics , Chromosomal Proteins, Non-Histone/metabolism , Endogenous Retroviruses/metabolism , Genomics , Histone-Lysine N-Methyltransferase/genetics , Histones/metabolism , Mice , Cohesins
7.
Cell Discov ; 8(1): 52, 2022 May 31.
Article in English | MEDLINE | ID: mdl-35641476

ABSTRACT

Cancer cells adopt metabolic reprogramming to promote cell survival under metabolic stress. A key regulator of cell metabolism is AMP-activated protein kinase (AMPK) which promotes catabolism while suppresses anabolism. However, the underlying mechanism of AMPK in handling metabolic stress in cancer remains to be fully understood. In this study, by performing a proteomics screening of AMPK-interacting proteins in non-small-cell lung cancer (NSCLC) cells, we discovered the platelet isoform of phosphofructokinase 1 (PFKP), a rate-limiting enzyme in glycolysis. Moreover, PFKP was found to be highly expressed in NSCLC patients associated with poor survival. We demonstrated that the interaction of PFKP and AMPK was greatly enhanced upon glucose starvation, a process regulated by PFKP-associated metabolites. Notably, the PFKP-AMPK interaction promoted mitochondrial recruitment of AMPK which subsequently phosphorylated acetyl-CoA carboxylase 2 (ACC2) to enhance long-chain fatty acid oxidation, a process helping maintenance of the energy and redox homeostasis and eventually promoting cancer cell survival under glucose starvation. Collectively, we revealed a critical non-glycolysis-related function of PFKP in regulating long-chain fatty acid oxidation via AMPK to alleviate glucose starvation-induced metabolic stress in NSCLC cells.

8.
Cell Death Differ ; 29(7): 1379-1394, 2022 07.
Article in English | MEDLINE | ID: mdl-35058574

ABSTRACT

The histone variant H2AZ is overexpressed in diverse cancer types where it facilitates the accessibility of transcriptional regulators to the promoters of cell cycle genes. However, the molecular basis for its dysregulation in cancer remains unknown. Here, we report that glioblastomas (GBM) and glioma stem cells (GSCs) preferentially overexpress H2AZ for their proliferation, stemness and tumorigenicity. Chromatin accessibility analysis of H2AZ2 depleted GSC revealed that E2F1 occupies the enhancer region within H2AZ2 gene promoter, thereby activating H2AZ2 transcription. Exploration of other H2AZ2 transcriptional activators using a customized "anti-H2AZ2" query signature for connectivity map analysis identified STAT3. Co-targeting E2F and STAT3 synergistically reduced the levels of H2AZ, histone 3 lysine 27 acetylation (H3K27ac) and cell cycle gene transcription, indicating that E2F1 and STAT3 synergize to activate H2AZ gene transcription in GSCs. Remarkably, an E2F/STAT3 inhibitor combination durably suppresses GSC tumorigenicity in an orthotopic GBM xenograft model. In glioma patients, high STAT3 signaling is associated with high E2F1 and H2AZ2 expression. Thus, GBM has uniquely opted the use of E2F1- and STAT3-containing "enhanceosomes" that integrate multiple signaling pathways to achieve H2AZ gene activation, supporting a translational path for the E2F/STAT3 inhibitor combination to be applied in GBM treatment.


Subject(s)
Brain Neoplasms , E2F1 Transcription Factor , Glioblastoma , Glioma , Histones , STAT3 Transcription Factor , Acetylation , Brain Neoplasms/genetics , Brain Neoplasms/metabolism , Cell Line, Tumor , Cell Proliferation , Chromatin/genetics , Chromatin/metabolism , E2F1 Transcription Factor/genetics , E2F1 Transcription Factor/metabolism , Glioblastoma/genetics , Glioblastoma/metabolism , Glioma/genetics , Glioma/metabolism , Histones/metabolism , Humans , Neoplastic Stem Cells/metabolism , STAT3 Transcription Factor/genetics , STAT3 Transcription Factor/metabolism
9.
Adv Mater ; 34(3): e2106194, 2022 Jan.
Article in English | MEDLINE | ID: mdl-34726310

ABSTRACT

Nanoparticles have been explored in glioblastomas as they can traverse the blood-brain barrier and target glioblastoma selectively. However, direct observation of nanoparticle trafficking into glioblastoma cells and their underlying intracellular fate after systemic administration remains uncharacterized. Here, based on high-resolution transmission electron microscopy experiments of an intracranial glioblastoma model, it is shown that ligand-modified nanoparticles can traverse the blood-brain barrier, endocytose into the lysosomes of glioblastoma cells, and undergo endolysosomal escape upon photochemical ionization. Moreover, an optimal dose of metronomic chemotherapy using dual-drug-loaded nanocarriers can induce an augmented antitumor effect directly on tumors, which has not been recognized in previous studies. Metronomic chemotherapy enhances antitumor effects 3.5-fold compared with the standard chemotherapy regimen using the same accumulative dose in vivo. This study provides a conceptual framework that can be used to develop metronomic nanoparticle regimens as a safe and viable therapeutic strategy for treating glioblastomas and other advanced-stage solid tumors.


Subject(s)
Glioblastoma , Nanoparticles , Blood-Brain Barrier , Endocytosis , Glioblastoma/drug therapy , Humans , Nanoparticles/chemistry
10.
Sci Adv ; 7(36): eabf6033, 2021 Sep 03.
Article in English | MEDLINE | ID: mdl-34516894

ABSTRACT

Glioblastoma (GBM) is a uniformly lethal disease driven by glioma stem cells (GSCs). Here, we use a chemical biology approach to unveil previously unknown GBM dependencies. By studying sulconazole (SN) with anti-GSC properties, we find that SN disrupts biotin distribution to the carboxylases and histones. Transcriptomic and metabolomic analyses of SN-treated GSCs reveal metabolic alterations that are characteristic of biotin-deficient cells, including intracellular cholesterol depletion, impairment of oxidative phosphorylation, and energetic crisis. Furthermore, SN treatment reduces histone biotinylation, histone acetylation, and expression of superenhancer-associated GSC critical genes, which are also observed when biotin distribution is genetically disrupted by holocarboxylase synthetase (HLCS) depletion. HLCS silencing impaired GSC tumorigenicity in an orthotopic xenograft brain tumor model. In GBM, high HLCS expression robustly indicates a poor prognosis. Thus, the dependency of GBM on biotin distribution suggests that the rational cotargeting of biotin-dependent metabolism and epigenetic pathways may be explored for GSC eradication.

11.
Free Radic Biol Med ; 170: 116-130, 2021 07.
Article in English | MEDLINE | ID: mdl-33684459

ABSTRACT

The neural stem cells (NSCs) are essential for normal brain development and homeostasis. The cell state (i.e. quiescent versus activated) and fate (i.e. the cell lineage of choice upon differentiation) of NSCs are tightly controlled by various redox and epigenetic regulatory mechanisms. There is an increasing appreciation that redox and epigenetic regulations are intimately linked, but how this redox-epigenetics crosstalk affects NSC activity remains poorly understood. Another unresolved topic is whether the NSCs actually contribute to brain ageing and neurodegenerative diseases. In this review, we aim to 1) distill concepts that underlie redox and epigenetic regulation of NSC state and fate; 2) provide examples of the redox-epigenetics crosstalk in NSC biology; and 3) highlight potential redox- and epigenetic-based therapeutic opportunities to rescue NSC dysfunctions in ageing and neurodegenerative diseases.


Subject(s)
Epigenesis, Genetic , Neural Stem Cells , Cell Differentiation , Cell Lineage , Oxidation-Reduction
12.
Antioxid Redox Signal ; 32(5): 309-330, 2020 02 10.
Article in English | MEDLINE | ID: mdl-31578870

ABSTRACT

Significance: Mitochondria undergo constant morphological changes through fusion, fission, and mitophagy. As the key organelle in cells, mitochondria are responsible for numerous essential cellular functions such as metabolism, regulation of calcium (Ca2+), generation of reactive oxygen species, and initiation of apoptosis. Unsurprisingly, mitochondrial dysfunctions underlie many pathologies including cancer. Recent Advances: Currently, the gold standard for cancer treatment is chemotherapy, radiation, and surgery. However, the efficacy of these treatments varies across different cancer cells. It has been suggested that mitochondria may be at the center of these diverse responses. In the past decade, significant advances have been made in understanding distinct types of mitochondrial dysfunctions in cancer. Through investigations of underlying mechanisms, more effective treatment options are developed. Critical Issues: We summarize various mitochondria dysfunctions in cancer progression that have led to the development of therapeutic options. Current mitochondrial-targeted therapies and challenges are discussed. Future Directions: To address the "root" of cancer, utilization of mitochondrial-targeted therapy to target cancer stem cells may be valuable. Investigation of other areas such as mitochondrial trafficking may offer new insights into cancer therapy. Moreover, common antibiotics could be explored as mitocans, and synthetic lethality screens can be utilized to overcome the plasticity of cancer cells.


Subject(s)
Antineoplastic Agents/pharmacology , Mitochondria/drug effects , Mitochondria/pathology , Mitochondrial Dynamics/drug effects , Neoplasms/drug therapy , Neoplasms/pathology , Humans , Mitochondria/metabolism , Neoplasms/metabolism
13.
Antioxid Redox Signal ; 33(13): 946-965, 2020 11 01.
Article in English | MEDLINE | ID: mdl-31841357

ABSTRACT

Significance: The epigenomic/metabolic landscape in cancer has been studied extensively in the past decade and forms the basis of various drug targets. Yet, cancer treatment remains a challenge, with clinical trials exhibiting limited efficacy and high relapse rates. Patients respond differently to therapy, which is fundamentally attributed to tumor heterogeneity, both across and within tumors. This review focuses on the interactions between the heterogeneous tumor microenvironment (TME) and the epigenomic/metabolic axis in cancer, as well as the emerging technologies under development to aid heterogeneity studies. Recent Advances: Interlinks between epigenetics and metabolism in cancer have been reported. Emerging studies have unveiled interactions between the TME and cancer cells that play a critical role in regulating epigenetics and reprogramming cancer metabolism, suggesting a three-way cross talk. Critical Issues: This cross talk accentuates the multiplex nature of cancer, and the importance of considering tumor heterogeneity in various epigenomic/metabolic cancer studies. Future Directions: With the advancement in single-cell profiling, it may be possible to identify cancer subclones and their unique vulnerabilities to develop a multimodal therapy. Drugs targeting the TME are currently being studied, and a better understanding of the TME in regulating cancer epigenetics and metabolism may hold the key to identifying novel therapeutic targets.


Subject(s)
Energy Metabolism , Epigenesis, Genetic , Gene Expression Regulation, Neoplastic , Neoplasms/genetics , Neoplasms/metabolism , Biological Variation, Population , Combined Modality Therapy , Disease Management , Disease Susceptibility , Humans , Neoplasms/pathology , Neoplasms/therapy , Treatment Outcome
14.
Redox Biol ; 25: 101056, 2019 07.
Article in English | MEDLINE | ID: mdl-30509603

ABSTRACT

The failure in effective cancer treatment is thought to be attributed to a subpopulation of tumor cells with stem cell-like properties. These cancer stem cells (CSCs) are intimately linked to tumor initiation, heterogeneity, maintenance, recurrence and metastasis. Increasing evidence supports the view that a tight redox regulation is crucial for CSC proliferation, tumorigenicity, therapy resistance and metastasis in many cancer types. Since the distinct metabolic and epigenetic states of CSCs may influence ROS levels, and hence their malignancy, ROS modulating agents hold promise in their utility as anti-CSC agents that may improve the durability of current cancer treatments. This review will focus on (i) how ROS levels are regulated for CSCs to elicit their hallmark features; (ii) the link between ROS and metabolic plasticity of CSCs; and (iii) how ROS may interface with epigenetics that would enable CSCs to thrive in a stressful tumor microenvironment and survive therapeutic insults.


Subject(s)
Cell Lineage , Carcinogenesis/metabolism , Carcinogenesis/pathology , Epigenesis, Genetic , Humans , Neoplastic Stem Cells/metabolism , Neoplastic Stem Cells/pathology , Oxidation-Reduction , Reactive Oxygen Species/metabolism
15.
Proc Natl Acad Sci U S A ; 114(43): E9086-E9095, 2017 10 24.
Article in English | MEDLINE | ID: mdl-29073105

ABSTRACT

An integrated genomic and functional analysis to elucidate DNA damage signaling factors promoting self-renewal of glioma stem cells (GSCs) identified proliferating cell nuclear antigen (PCNA)-associated factor (PAF) up-regulation in glioblastoma. PAF is preferentially overexpressed in GSCs. Its depletion impairs maintenance of self-renewal without promoting differentiation and reduces tumor-initiating cell frequency. Combined transcriptomic and metabolomic analyses revealed that PAF supports GSC maintenance, in part, by influencing DNA replication and pyrimidine metabolism pathways. PAF interacts with PCNA and regulates PCNA-associated DNA translesion synthesis (TLS); consequently, PAF depletion in combination with radiation generated fewer tumorspheres compared with radiation alone. Correspondingly, pharmacological impairment of DNA replication and TLS phenocopied the effect of PAF depletion in compromising GSC self-renewal and radioresistance, providing preclinical proof of principle that combined TLS inhibition and radiation therapy may be a viable therapeutic option in the treatment of glioblastoma multiforme (GBM).


Subject(s)
Brain Neoplasms/radiotherapy , Carrier Proteins/genetics , Glioblastoma/radiotherapy , Neoplastic Stem Cells/radiation effects , Animals , Brain Neoplasms/genetics , Brain Neoplasms/mortality , Brain Neoplasms/pathology , Carrier Proteins/metabolism , DNA Damage/genetics , DNA Damage/radiation effects , DNA Repair/genetics , DNA Repair/radiation effects , DNA Replication/drug effects , DNA-Binding Proteins , Female , Gene Expression Regulation, Neoplastic/radiation effects , Glioblastoma/genetics , Glioblastoma/mortality , Glioblastoma/pathology , Green Fluorescent Proteins/genetics , Humans , Mice, SCID , Neoplastic Stem Cells/drug effects , Neoplastic Stem Cells/pathology , Pyrimidines/biosynthesis , Radiation Tolerance , Xenograft Model Antitumor Assays
16.
Cancer Cell ; 27(5): 644-57, 2015 May 11.
Article in English | MEDLINE | ID: mdl-25965571

ABSTRACT

Myelodysplastic syndrome (MDS) risk correlates with advancing age, therapy-induced DNA damage, and/or shorter telomeres, but whether telomere erosion directly induces MDS is unknown. Here, we provide the genetic evidence that telomere dysfunction-induced DNA damage drives classical MDS phenotypes and alters common myeloid progenitor (CMP) differentiation by repressing the expression of mRNA splicing/processing genes, including SRSF2. RNA-seq analyses of telomere dysfunctional CMP identified aberrantly spliced transcripts linked to pathways relevant to MDS pathogenesis such as genome stability, DNA repair, chromatin remodeling, and histone modification, which are also enriched in mouse CMP haploinsufficient for SRSF2 and in CD34(+) CMML patient cells harboring SRSF2 mutation. Together, our studies establish an intimate link across telomere biology, aberrant RNA splicing, and myeloid progenitor differentiation.


Subject(s)
Cell Differentiation/genetics , Hematopoiesis/genetics , Myelodysplastic Syndromes/genetics , Telomere , Animals , Haploinsufficiency , Humans , Mice , Myelodysplastic Syndromes/pathology , Nuclear Proteins/genetics , RNA Splicing , Ribonucleoproteins/genetics , Serine-Arginine Splicing Factors
17.
Chem Biol ; 20(3): 403-15, 2013 Mar 21.
Article in English | MEDLINE | ID: mdl-23434032

ABSTRACT

Lysosomal storage diseases (LSDs) are often caused by mutations compromising lysosomal enzyme folding in the endoplasmic reticulum (ER), leading to degradation and loss of function. Mass spectrometry analysis of Gaucher fibroblasts treated with mechanistically distinct molecules that increase LSD enzyme folding, trafficking, and function resulted in the identification of nine commonly downregulated and two jointly upregulated proteins, which we hypothesized would be critical proteostasis network components for ameliorating loss-of-function diseases. LIMP-2 and FK506 binding protein 10 (FKBP10) were validated as such herein. Increased FKBP10 levels accelerated mutant glucocerebrosidase degradation over folding and trafficking, whereas decreased ER FKBP10 concentration led to more LSD enzyme partitioning into the calnexin profolding pathway, enhancing folding and activity to levels thought to ameliorate LSDs. Thus, targeting FKBP10 appears to be a heretofore unrecognized therapeutic strategy to ameliorate LSDs.


Subject(s)
Fibroblasts/metabolism , Gaucher Disease/pathology , Glucosylceramidase/metabolism , Homeostasis , Tacrolimus Binding Proteins/deficiency , Amino Acid Sequence , Cell Line , Endoplasmic Reticulum/metabolism , Fibroblasts/enzymology , Fibroblasts/pathology , Glucosylceramidase/chemistry , Humans , Lectins/metabolism , Molecular Sequence Data , Muramidase/metabolism , Neoplasm Proteins/metabolism , Protein Folding , Protein Transport , Proteolysis , Proteomics , Reproducibility of Results , Tacrolimus Binding Proteins/chemistry , Tacrolimus Binding Proteins/metabolism , alpha-Mannosidase/metabolism
18.
Curr Opin Cell Biol ; 23(2): 231-8, 2011 Apr.
Article in English | MEDLINE | ID: mdl-21146391

ABSTRACT

Inheriting a mutant misfolding-prone protein that cannot be efficiently folded in a given cell type(s) results in a spectrum of human loss-of-function misfolding diseases. The inability of the biological protein maturation pathways to adapt to a specific misfolding-prone protein also contributes to pathology. Chemical and biological therapeutic strategies are presented that restore protein homeostasis, or proteostasis, either by enhancing the biological capacity of the proteostasis network or through small molecule stabilization of a specific misfolding-prone protein. Herein, we review the recent literature on therapeutic strategies to ameliorate protein misfolding diseases that function through either of these mechanisms, or a combination thereof, and provide our perspective on the promise of alleviating protein misfolding diseases by taking advantage of proteostasis adaptation.


Subject(s)
Proteostasis Deficiencies/therapy , Animals , Endoplasmic Reticulum/metabolism , Humans , Protein Folding , Protein Transport , Proteins/chemistry , Proteins/metabolism , Stress, Physiological
19.
J Am Chem Soc ; 132(45): 16043-51, 2010 Nov 17.
Article in English | MEDLINE | ID: mdl-20964336

ABSTRACT

We describe a non-fluorescent, second generation stilbene that very selectively binds to transthyretin in complex biological environments and remains dark until it chemoselectively reacts with the pK(a)-perturbed Lys-15 ε-amino group of transthyretin to form a bright blue fluorescent conjugate. Stilbene A2 is mechanistically unusual in that it remains non-fluorescent in cell lysates lacking transthyretin, even though there is likely some proteome binding. Thus, it is especially useful for cellular imaging, as background fluorescence is undetectable until A2 reacts with transthyretin. The mechanistic basis for the effective lack of environment-sensitive fluorescence of A2 when bound to, but before reacting with, transthyretin is reported. Stilbene A2 exhibits sufficiently rapid transthyretin conjugation kinetics at 37 °C to enable pulse-chase experiments to be performed, in this case demonstrating that transthyretin is secreted from HeLa cells. As the chase compound, we employed C1, a cell-permeable, highly selective, non-covalent, transthyretin-binding dihydrostilbene that cannot become fluorescent. The progress reported is viewed as a first and necessary step toward our long-term goal of creating a one-chain, one-binding-site transthyretin tag, whose fluorescence can be regulated by adding A2 or an analogous molecule. Fusing proteins of interest to a one-chain, one-binding-site transthyretin tag regulated by A2 should be useful for studying folding, trafficking, and degradation in the cellular secretory pathway, utilizing pulse-chase experiments. Immediate applications of A2 include utilizing its conjugate fluorescence to quantify transthyretin concentration in human plasma, reflecting nutritional status, and determining the binding stoichiometry of kinetic stabilizer drugs to transthyretin in plasma.


Subject(s)
Prealbumin/metabolism , Stilbenes/chemistry , Stilbenes/metabolism , Fibroblasts/metabolism , Fluorescence , HeLa Cells , Humans , Prealbumin/analysis , Prealbumin/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
20.
Nat Chem Biol ; 6(6): 424-32, 2010 Jun.
Article in English | MEDLINE | ID: mdl-20453863

ABSTRACT

Altering intracellular calcium levels is known to partially restore mutant enzyme homeostasis in several lysosomal storage diseases, but why? We hypothesized that endoplasmic reticulum (ER) calcium increases enhance the folding, trafficking and function of these mutant misfolding- and degradation-prone lysosomal enzymes by increasing chaperone function. Here we report that increasing ER calcium levels by reducing ER calcium efflux through the ryanodine receptor, using antagonists or RNAi, or by promoting ER calcium influx by SERCA2b overexpression enhances mutant glucocerebrosidase (GC) homeostasis in cells derived from individuals with Gaucher's disease. Post-translational regulation of the calnexin folding pathway by an elevated ER calcium concentration seems to enhance the capacity of this chaperone system to fold mutant misfolding-prone enzymes, increasing the folded mutant GC population that can engage the trafficking receptor at the expense of ER-associated degradation, increasing the lysosomal GC concentration and activity.


Subject(s)
Calcium/metabolism , Endoplasmic Reticulum/metabolism , Glucosylceramidase/genetics , Amino Acid Substitution , Calcium Channel Blockers/pharmacology , Diltiazem/pharmacology , Endoplasmic Reticulum/drug effects , Endoplasmic Reticulum/enzymology , Gaucher Disease/enzymology , Gaucher Disease/genetics , Gaucher Disease/metabolism , Glucosylceramidase/antagonists & inhibitors , Glucosylceramidase/metabolism , Humans , Lysosomes/enzymology , Protein Folding/drug effects , Protein Processing, Post-Translational , Ryanodine Receptor Calcium Release Channel/drug effects , Ryanodine Receptor Calcium Release Channel/physiology , Sarcoplasmic Reticulum Calcium-Transporting ATPases/genetics , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism , Vasodilator Agents/pharmacology , Verapamil/pharmacology
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