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1.
Physiol Plant ; 176(3): e14375, 2024.
Article in English | MEDLINE | ID: mdl-38837224

ABSTRACT

MicroRNA(miRNA) is a class of non-coding small RNA that plays an important role in plant growth, development, and response to environmental stresses. Unlike most miRNAs, which usually target homologous genes across a variety of species, miR827 targets different types of genes in different species. Research on miR827 mainly focuses on its role in regulating phosphate (Pi) homeostasis of plants, however, little is known about its function in plant response to virus infection. In the present study, miR827 was significantly upregulated in the recovery tissue of virus-infected Nicotiana tabacum. Overexpression of miR827 could improve plants resistance to the infection of chilli veinal mottle virus (ChiVMV) in Nicotiana benthamiana, whereas interference of miR827 increased the susceptibility of the virus-infected plants. Further experiments indicated that the antiviral defence regulated by miR827 was associated with the reactive oxygen species and salicylic acid signalling pathways. Then, fructose-1,6-bisphosphatase (FBPase) was identified to be a target of miR827, and virus infection could affect the expression of FBPase. Finally, transient expression of FBPase increased the susceptibility to ChiVMV-GFP infection in N. benthamiana. By contrast, silencing of FBPase increased plant resistance. Taken together, our results demonstrate that miR827 plays a positive role in tobacco response to virus infection, thus providing new insights into understanding the role of miR827 in plant-virus interaction.


Subject(s)
Disease Resistance , Gene Expression Regulation, Plant , MicroRNAs , Nicotiana , Plant Diseases , Nicotiana/virology , Nicotiana/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Plant Diseases/virology , Plant Diseases/genetics , Plant Diseases/immunology , Disease Resistance/genetics , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Salicylic Acid/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Reactive Oxygen Species/metabolism , Tobamovirus/physiology , Tobamovirus/genetics , Plants, Genetically Modified
2.
Cell Death Dis ; 15(6): 392, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38834617

ABSTRACT

Keratinocyte proliferation and differentiation in epidermis are well-controlled and essential for reacting to stimuli such as ultraviolet light. Imbalance between proliferation and differentiation is a characteristic feature of major human skin diseases such as psoriasis and squamous cell carcinoma. However, the effect of keratinocyte metabolism on proliferation and differentiation remains largely elusive. We show here that the gluconeogenic enzyme fructose-1,6-bisphosphatase 1 (FBP1) promotes differentiation while inhibits proliferation of keratinocyte and suppresses psoriasis development. FBP1 is identified among the most upregulated genes induced by UVB using transcriptome sequencing and is elevated especially in upper epidermis. Fbp1 heterozygous mice exhibit aberrant epidermis phenotypes with local hyperplasia and dedifferentiation. Loss of FBP1 promotes proliferation and inhibits differentiation of keratinocytes in vitro. Mechanistically, FBP1 loss facilitates glycolysis-mediated acetyl-CoA production, which increases histone H3 acetylation at lysine 9, resulting in enhanced transcription of proliferation genes. We further find that the expression of FBP1 is dramatically reduced in human psoriatic lesions and in skin of mouse imiquimod psoriasis model. Fbp1 deficiency in mice facilitates psoriasis-like skin lesions development through glycolysis and acetyl-CoA production. Collectively, our findings reveal a previously unrecognized role of FBP1 in epidermal homeostasis and provide evidence for FBP1 as a metabolic psoriasis suppressor.


Subject(s)
Cell Differentiation , Cell Proliferation , Fructose-Bisphosphatase , Histones , Keratinocytes , Psoriasis , Animals , Humans , Mice , Acetyl Coenzyme A/metabolism , Acetylation , Disease Models, Animal , Fructose-Bisphosphatase/metabolism , Fructose-Bisphosphatase/genetics , Glycolysis , Histones/metabolism , Keratinocytes/metabolism , Keratinocytes/pathology , Mice, Inbred C57BL , Psoriasis/pathology , Psoriasis/metabolism , Psoriasis/genetics
4.
Sheng Wu Gong Cheng Xue Bao ; 40(5): 1559-1570, 2024 May 25.
Article in Chinese | MEDLINE | ID: mdl-38783816

ABSTRACT

To develop an accurate and efficient protocol for multi-fragment assembly and multi-site mutagenesis, we integrated and optimized the common multi-fragment assembly methods and validated the established method by using fructose-1,6-diphosphatase 1 (FBP1) with 4 mutant sites. The fragments containing mutations were assembled by introducing mutant sites and Bsa I recognition sequences. After digestion/ligation, the ligated fragment was amplified with the primers containing overlap region to the linearized vector. The amplified fragment was ligated to the linearized vector and the ligation product was transformed into Escherichia coli. After screening and sequencing, the recombinant plasmid with 4 mutant sites was obtained. This protocol overcame the major defects of Gibson assembly and Golden Gate assembly, serving as an efficient solution for multi-fragment assembly and multi-site mutagenesis.


Subject(s)
Escherichia coli , Fructose-Bisphosphatase , Homologous Recombination , Escherichia coli/genetics , Escherichia coli/metabolism , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Plasmids/genetics , Genetic Vectors/metabolism , DNA/genetics , Mutation , Mutagenesis, Site-Directed , Cloning, Molecular
5.
J Med Case Rep ; 18(1): 166, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38589931

ABSTRACT

BACKGROUND: Fructose-1,6-bisphosphatase deficiency is a rare autosomal recessive disorder characterized by impaired gluconeogenesis. Fructose-1,6-bisphosphatase 1 (FBP1) mutations demonstrate ethnic patterns. For instance, Turkish populations commonly harbor exon 2 deletions. We present a case report of whole exon 2 deletion in a Syrian Arabian child as the first recording of this mutation among Arabian ethnicity and the first report of FBP1 gene mutation in Syria. CASE PRESENTATION: We present the case of a 2.5-year-old Syrian Arab child with recurrent hypoglycemic episodes, accompanied by nausea and lethargy. The patient's history, physical examination, and laboratory findings raised suspicion of fructose-1,6-bisphosphatase deficiency. Whole exome sequencing was performed, revealing a homozygous deletion of exon 2 in the FBP1 gene, confirming the diagnosis. CONCLUSION: This case highlights a potential novel mutation in the Arab population; this mutation is well described in the Turkish population, which suggests potential shared mutations due to ancestral relationships between the two ethnicities. Further studies are needed to confirm this finding.


Subject(s)
Fructose-1,6-Diphosphatase Deficiency , Child, Preschool , Humans , Documentation , Ethnicity , Fructose , Fructose-1,6-Diphosphatase Deficiency/complications , Fructose-1,6-Diphosphatase Deficiency/diagnosis , Fructose-1,6-Diphosphatase Deficiency/genetics , Fructose-Bisphosphatase/genetics , Homozygote , Mutation , Sequence Deletion
6.
Funct Plant Biol ; 51: FP24034, 2024 04.
Article in English | MEDLINE | ID: mdl-38640358

ABSTRACT

Transgenic Arabidopsis thaliana (ecotype Columbia) was successfully transformed with the gene fructose-1,6-bisphosphatase (FBPas e) and named as AtFBPase plants. Transgenic plants exhibited stable transformation, integration and significantly higher expressions for the transformed gene. Morphological evaluation of transgenic plants showed increased plant height (35cm), number of leaves (25), chlorophyll contents (28%), water use efficiency (increased from 1.5 to 2.6µmol CO2 µmol-1 H2 O) and stomatal conductance (20%), which all resulted in an enhanced photosynthetic rate (2.7µmolm-2 s-1 ) compared to wild type plants. This study suggests the vital role of FBPase gene in the modification of regulatory pathways to enhance the photosynthetic rate, which can also be utilised for economic crops in future.


Subject(s)
Arabidopsis , Arabidopsis/genetics , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Fructose/metabolism , Photosynthesis/genetics , Chlorophyll/genetics , Chlorophyll/metabolism , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism
7.
Plant Cell Physiol ; 65(5): 737-747, 2024 May 30.
Article in English | MEDLINE | ID: mdl-38305687

ABSTRACT

Various chloroplast proteins are activated/deactivated during the light/dark cycle via the redox regulation system. Although the photosynthetic electron transport chain provides reducing power to redox-sensitive proteins via the ferredoxin (Fd)/thioredoxin (Trx) pathway for their enzymatic activity control, how the redox states of individual proteins are linked to electron transport efficiency remains uncharacterized. Here we addressed this subject with a focus on the photosynthetic induction phase. We used Arabidopsis plants, in which the amount of Fd-Trx reductase (FTR), a core component in the Fd/Trx pathway, was genetically altered. Several chloroplast proteins showed different redox shift responses toward low- and high-light treatments. The light-dependent reduction of Calvin-Benson cycle enzymes fructose 1,6-bisphosphatase (FBPase) and sedoheptulose 1,7-bisphosphatase (SBPase) was partially impaired in the FTR-knockdown ftrb mutant. Simultaneous analyses of chlorophyll fluorescence and P700 absorbance change indicated that the induction of the electron transport reactions was delayed in the ftrb mutant. FTR overexpression also mildly affected the reduction patterns of FBPase and SBPase under high-light conditions, which were accompanied by the modification of electron transport properties. Accordingly, the redox states of FBPase and SBPase were linearly correlated with electron transport rates. In contrast, ATP synthase was highly reduced even when electron transport reactions were not fully induced. Furthermore, the redox response of proton gradient regulation 5-like photosynthetic phenotype1 (PGRL1; a protein involved in cyclic electron transport) did not correlate with electron transport rates. Our results provide insights into the working dynamics of the redox regulation system and their differential associations with photosynthetic electron transport efficiency.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Oxidation-Reduction , Photosynthesis , Electron Transport , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Fructose-Bisphosphatase/metabolism , Fructose-Bisphosphatase/genetics , Light , Chloroplasts/metabolism , Chlorophyll/metabolism , Chloroplast Proteins/metabolism , Chloroplast Proteins/genetics , Oxidoreductases/metabolism , Oxidoreductases/genetics , Iron-Sulfur Proteins , Phosphoric Monoester Hydrolases
8.
Mol Biol Rep ; 51(1): 78, 2024 Jan 06.
Article in English | MEDLINE | ID: mdl-38183507

ABSTRACT

BACKGROUND: Aberrant DNA methylation has been implicated in the development of gastric cancer (GC). In our previous study, we demonstrated that fructose-1,6-bisphosphatase-2 (FBP2), an enzyme that suppresses cell glycolysis and growth, is downregulated in GC due to promoter methylation. However, the precise mechanism underlying this process remains unknown. Thus, this study aimed to elucidate the mechanisms involved in FBP2 promoter hypermethylation. METHODS AND RESULTS: The methylation levels in GC and normal adjacent tissues were quantified using methylation-specific polymerase chain reaction. FBP2 promoter was frequently hypermethylated in primary GC tissues compared to adjacent normal tissues. To explore the functional consequences of this hypermethylation, we employed small interfering RNA-mediated knockdown of DNA methyltransferase 3a (DNMT3a) in GC cells. FBP2 expression increased following DNMT3a knockdown, suggesting that reduced methylation of the FBP2 promoter contributed to this upregulation. To further investigate this interaction, chromatin immunoprecipitation assays were conducted. The results confirmed an interaction between DNMT3a and the FBP2 promoter region, providing evidence that DNMT3a-mediated hypermethylation of the FBP2 promoter promotes GC progression. CONCLUSIONS: This study provides evidence that DNMT3a is involved in the hypermethylation of the FBP2 promoter and regulation of GC cell metabolism. Hypermethylation of the FBP2 promoter may be a promising prognostic biomarker in GC.


Subject(s)
DNA Methylation , Stomach Neoplasms , Humans , Carcinogenesis , DNA Methylation/genetics , DNA Methyltransferase 3A , DNA Modification Methylases , Fructose , Fructose-Bisphosphatase/genetics , Promoter Regions, Genetic/genetics , Stomach Neoplasms/genetics
9.
PLoS One ; 19(1): e0294191, 2024.
Article in English | MEDLINE | ID: mdl-38252660

ABSTRACT

Meiotic recombination is a pivotal process that ensures faithful chromosome segregation and contributes to the generation of genetic diversity in offspring, which is initiated by the formation of double-strand breaks (DSBs). The distribution of meiotic DSBs is not uniform and is clustered at hotspots, which can be affected by environmental conditions. Here, we show that non-coding RNA (ncRNA) transcription creates meiotic DSBs through local chromatin remodeling in the fission yeast fbp1 gene. The fbp1 gene is activated upon glucose starvation stress, in which a cascade of ncRNA-transcription in the fbp1 upstream region converts the chromatin configuration into an open structure, leading to the subsequent binding of transcription factors. We examined the distribution of meiotic DSBs around the fbp1 upstream region in the presence and absence of glucose and observed several new DSBs after chromatin conversion under glucose starvation conditions. Moreover, these DSBs disappeared when cis-elements required for ncRNA transcription were mutated. These results indicate that ncRNA transcription creates meiotic DSBs in response to stress conditions in the fbp1 upstream region. This study addressed part of a long-standing unresolved mechanism underlying meiotic recombination plasticity in response to environmental fluctuation.


Subject(s)
RNA, Long Noncoding , Schizosaccharomyces , Starvation , Humans , Schizosaccharomyces/genetics , DNA , Chromatin , Fructose-Bisphosphatase/genetics , Glucose , DNA Breaks
10.
Mol Genet Genomic Med ; 12(1): e2339, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38111981

ABSTRACT

BACKGROUND: Fructose-1,6-bisphosphatase (FBPase) deficiency, caused by an FBP1 mutation, is an autosomal recessively inherited metabolic disorder characterized by impaired gluconeogenesis. Due to the rarity of FBPase deficiency, the mechanism by which the mutations cause enzyme activity loss still remains unclear. METHODS: We report a pediatric patient with typical FBPase deficiency who presented with hypoglycemia, hyperlactatemia, metabolic acidosis, and hyperuricemia. Whole-exome sequencing was used to search for pathogenic genes, Sanger sequencing was used for verification, and molecular dynamic simulation was used to evaluate how the novel mutation affects FBPase activity and structural stability. RESULTS: Direct and allele-specific sequence analysis of the FBP1 gene (NM_000507) revealed that the proband had a compound heterozygote for the c. 490 (exon 4) G>A (p. G164S) and c. 861 (exon 7) C>A (p. Y287X, 52), which he inherited from his carrier parents. His father and mother had heterozygous G164S and Y287X mutations, respectively, without any symptoms of hypoglycemia. CONCLUSION: Our results broaden the known mutational spectrum and possible clinical phenotype of FBP1.


Subject(s)
Acidosis, Lactic , Fructose-1,6-Diphosphatase Deficiency , Hypoglycemia , Male , Humans , Child , Acidosis, Lactic/genetics , Fructose-1,6-Diphosphatase Deficiency/diagnosis , Fructose-1,6-Diphosphatase Deficiency/genetics , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Hypoglycemia/genetics , Mutation
11.
Commun Biol ; 6(1): 787, 2023 07 28.
Article in English | MEDLINE | ID: mdl-37507476

ABSTRACT

Fructose-1,6-bisphosphatase (FBPase) deficiency, caused by an FBP1 mutation, is an autosomal recessive disorder characterized by hypoglycemic lactic acidosis. Due to the rarity of FBPase deficiency, the mechanism by which the mutations cause enzyme activity loss still remains unclear. Here we identify compound heterozygous missense mutations of FBP1, c.491G>A (p.G164D) and c.581T>C (p.F194S), in an adult patient with hypoglycemic lactic acidosis. The G164D and F194S FBP1 mutants exhibit decreased FBP1 protein expression and a loss of FBPase enzyme activity. The biochemical phenotypes of all previously reported FBP1 missense mutations in addition to G164D and F194S are classified into three functional categories. Type 1 mutations are located at pivotal residues in enzyme activity motifs and have no effects on protein expression. Type 2 mutations structurally cluster around the substrate binding pocket and are associated with decreased protein expression due to protein misfolding. Type 3 mutations are likely nonpathogenic. These findings demonstrate a key role of protein misfolding in mediating the pathogenesis of FBPase deficiency, particularly for Type 2 mutations. This study provides important insights that certain patients with Type 2 mutations may respond to chaperone molecules.


Subject(s)
Acidosis, Lactic , Fructose-1,6-Diphosphatase Deficiency , Humans , Fructose-1,6-Diphosphatase Deficiency/genetics , Fructose-1,6-Diphosphatase Deficiency/complications , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Fructose , Acidosis, Lactic/complications , Acidosis, Lactic/genetics , Phenotype , Genotype , Hypoglycemic Agents
12.
Arch Biochem Biophys ; 742: 109619, 2023 07 01.
Article in English | MEDLINE | ID: mdl-37142076

ABSTRACT

Fructose-1,6-bisphosphatase (FBPase) deficiency is an autosomal recessive disorder characterized by impaired gluconeogenesis caused by mutations in the fructose-1,6-bisphosphatase 1 (FBP1) gene. The molecular mechanisms underlying FBPase deficiency caused by FBP1 mutations require investigation. Herein, we report the case of a Chinese boy with FBPase deficiency who presented with hypoglycemia, ketonuria, metabolic acidosis, and repeated episodes of generalized seizures that progressed to epileptic encephalopathy. Whole-exome sequencing revealed compound heterozygous variants, c.761 A > G (H254R) and c.962C > T (S321F), in FBP1. The variants, especially the novel H254R, reduced protein stability and enzymatic activity in patient-derived leukocytes and transfected HepG2 and U251 cells. Mutant FBP1 undergoes enhanced ubiquitination and proteasomal degradation. NEDD4-2 was identified as an E3 ligase for FBP1 ubiquitination in transfected cells and the liver and brain of Nedd4-2 knockout mice. The H254R mutant FBP1 interacted with NEDD4-2 at significantly higher levels than the wild-type control. Our study identified a novel H254R variant of FBP1 underlying FBPase deficiency and elucidated the molecular mechanism underlying the enhanced NEDD4-2-mediated ubiquitination and proteasomal degradation of mutant FBP1.


Subject(s)
Fructose-1,6-Diphosphatase Deficiency , Fructose-Bisphosphatase , Animals , Mice , Fructose , Fructose-1,6-Diphosphatase Deficiency/genetics , Fructose-Bisphosphatase/genetics , Mutation , Ubiquitination , Humans , Male , Child
13.
Cell Metab ; 35(6): 1009-1021.e9, 2023 06 06.
Article in English | MEDLINE | ID: mdl-37084733

ABSTRACT

Insulin inhibits gluconeogenesis and stimulates glucose conversion to glycogen and lipids. How these activities are coordinated to prevent hypoglycemia and hepatosteatosis is unclear. Fructose-1,6-bisphosphatase (FBP1) is rate controlling for gluconeogenesis. However, inborn human FBP1 deficiency does not cause hypoglycemia unless accompanied by fasting or starvation, which also trigger paradoxical hepatomegaly, hepatosteatosis, and hyperlipidemia. Hepatocyte FBP1-ablated mice exhibit identical fasting-conditional pathologies along with AKT hyperactivation, whose inhibition reversed hepatomegaly, hepatosteatosis, and hyperlipidemia but not hypoglycemia. Surprisingly, fasting-mediated AKT hyperactivation is insulin dependent. Independently of its catalytic activity, FBP1 prevents insulin hyperresponsiveness by forming a stable complex with AKT, PP2A-C, and aldolase B (ALDOB), which specifically accelerates AKT dephosphorylation. Enhanced by fasting and weakened by elevated insulin, FBP1:PP2A-C:ALDOB:AKT complex formation, which is disrupted by human FBP1 deficiency mutations or a C-terminal FBP1 truncation, prevents insulin-triggered liver pathologies and maintains lipid and glucose homeostasis. Conversely, an FBP1-derived complex disrupting peptide reverses diet-induced insulin resistance.


Subject(s)
Fructose , Hypoglycemia , Humans , Mice , Animals , Fructose-Bisphosphatase/genetics , Proto-Oncogene Proteins c-akt , Insulin , Hepatomegaly/complications , Hypoglycemia/etiology , Glucose
14.
Endocrinology ; 164(6)2023 04 17.
Article in English | MEDLINE | ID: mdl-36964915

ABSTRACT

Fructose intolerance in mammals is caused by defects in fructose absorption and metabolism. Fructose-1,6-bisphosphatase 1 (FBP1) is a key enzyme in gluconeogenesis, and its deficiency results in hypoglycemia as well as intolerance to fructose. However, the mechanism about fructose intolerance caused by FBP1 deficiency has not been fully elucidated. Here, we demonstrate that hepatic but not intestinal FBP1 is required for fructose metabolism and tolerance. We generated inducible knockout mouse models specifically lacking FBP1 in adult intestine or liver. Intestine-specific deletion of Fbp1 in adult mice does not compromise fructose tolerance, as evidenced by no significant body weight loss, food intake reduction, or morphological changes of the small intestine during 4 weeks of exposure to a high-fructose diet. By contrast, liver-specific deletion of Fbp1 in adult mice leads to fructose intolerance, as manifested by substantial weight loss, hepatomegaly, and liver injury after exposure to a high-fructose diet. Notably, the fructose metabolite fructose-1-phosphate is accumulated in FBP1-deficient liver after fructose challenge, which indicates a defect of fructolysis, probably due to competitive inhibition by fructose-1,6-bisphosphate and may account for the fructose intolerance. In conclusion, these data have clarified the essential role of hepatic but not intestinal FBP1 in fructose metabolism and tolerance.


Subject(s)
Fructose Intolerance , Fructose , Animals , Mice , Fructose-Bisphosphatase/genetics , Gluconeogenesis/genetics , Intestines , Liver , Mammals
15.
Science ; 379(6628): 185-190, 2023 01 13.
Article in English | MEDLINE | ID: mdl-36634192

ABSTRACT

Hummingbirds possess distinct metabolic adaptations to fuel their energy-demanding hovering flight, but the underlying genomic changes are largely unknown. Here, we generated a chromosome-level genome assembly of the long-tailed hermit and screened for genes that have been specifically inactivated in the ancestral hummingbird lineage. We discovered that FBP2 (fructose-bisphosphatase 2), which encodes a gluconeogenic muscle enzyme, was lost during a time period when hovering flight evolved. We show that FBP2 knockdown in an avian muscle cell line up-regulates glycolysis and enhances mitochondrial respiration, coincident with an increased mitochondria number. Furthermore, genes involved in mitochondrial respiration and organization have up-regulated expression in hummingbird flight muscle. Together, these results suggest that FBP2 loss was likely a key step in the evolution of metabolic muscle adaptations required for true hovering flight.


Subject(s)
Adaptation, Physiological , Birds , Flight, Animal , Fructose-Bisphosphatase , Gluconeogenesis , Muscle, Skeletal , Animals , Birds/genetics , Birds/metabolism , Energy Metabolism/genetics , Flight, Animal/physiology , Gluconeogenesis/genetics , Adaptation, Physiological/genetics , Fructose-Bisphosphatase/genetics , Muscle, Skeletal/enzymology
16.
Biomolecules ; 12(11)2022 11 05.
Article in English | MEDLINE | ID: mdl-36358992

ABSTRACT

Transcriptional regulation is pivotal for all living organisms and is required for adequate response to environmental fluctuations and intercellular signaling molecules. For precise regulation of transcription, cells have evolved regulatory systems on the genome architecture, including the chromosome higher-order structure (e.g., chromatin loops), location of transcription factor (TF)-binding sequences, non-coding RNA (ncRNA) transcription, chromatin configuration (e.g., nucleosome positioning and histone modifications), and the topological state of the DNA double helix. To understand how these genome-chromatin architectures and their regulators establish tight and specific responses at the transcription stage, the fission yeast fbp1 gene has been analyzed as a model system for decades. The fission yeast fbp1 gene is tightly repressed in the presence of glucose, and this gene is induced by over three orders of magnitude upon glucose starvation with a cascade of multi-layered regulations on various levels of genome and chromatin architecture. In this review article, we summarize the multi-layered transcriptional regulatory systems revealed by the analysis of the fission yeast fbp1 gene as a model system.


Subject(s)
Schizosaccharomyces , Schizosaccharomyces/genetics , Schizosaccharomyces/metabolism , Chromatin/genetics , Chromatin Assembly and Disassembly , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Transcription, Genetic , Glucose
17.
Nat Cell Biol ; 24(11): 1655-1665, 2022 11.
Article in English | MEDLINE | ID: mdl-36266488

ABSTRACT

Tumour cells exhibit greater metabolic plasticity than normal cells and possess selective advantages for survival and proliferation with unclearly defined mechanisms. Here we demonstrate that glucose deprivation in normal hepatocytes induces PERK-mediated fructose-1,6-bisphosphatase 1 (FBP1) S170 phosphorylation, which converts the FBP1 tetramer to monomers and exposes its nuclear localization signal for nuclear translocation. Importantly, nuclear FBP1 binds PPARα and functions as a protein phosphatase that dephosphorylates histone H3T11 and suppresses PPARα-mediated ß-oxidation gene expression. In contrast, FBP1 S124 is O-GlcNAcylated by overexpressed O-linked N-acetylglucosamine transferase in hepatocellular carcinoma cells, leading to inhibition of FBP1 S170 phosphorylation and enhancement of ß-oxidation for tumour growth. In addition, FBP1 S170 phosphorylation inversely correlates with ß-oxidation gene expression in hepatocellular carcinoma specimens and patient survival duration. These findings highlight the differential role of FBP1 in gene regulation in normal and tumour cells through direct chromatin modulation and underscore the inactivation of its protein phosphatase function in tumour growth.


Subject(s)
Carcinoma, Hepatocellular , Liver Neoplasms , Humans , Carcinoma, Hepatocellular/metabolism , Histones/genetics , Histones/metabolism , Fructose-Bisphosphatase/genetics , PPAR alpha/genetics , PPAR alpha/metabolism , Fructose , Liver Neoplasms/pathology , Transcription, Genetic , Phosphoprotein Phosphatases/metabolism
18.
Int J Mol Sci ; 23(19)2022 Sep 27.
Article in English | MEDLINE | ID: mdl-36232688

ABSTRACT

Acute myeloid leukemia (AML)-the most frequent form of adult blood cancer-is characterized by heterogeneous mechanisms and disease progression. Developing an effective therapeutic strategy that targets metabolic homeostasis and energy production in immature leukemic cells (blasts) is essential for overcoming relapse and improving the prognosis of AML patients with different subtypes. With respect to metabolic regulation, fructose-1,6-bisphosphatase 1 (FBP1) is a gluconeogenic enzyme that is vital to carbohydrate metabolism, since gluconeogenesis is the central pathway for the production of important metabolites and energy necessary to maintain normal cellular activities. Beyond its catalytic activity, FBP1 inhibits aerobic glycolysis-known as the "Warburg effect"-in cancer cells. Importantly, while downregulation of FBP1 is associated with carcinogenesis in major human organs, restoration of FBP1 in cancer cells promotes apoptosis and prevents disease progression in solid tumors. Recently, our large-scale sequencing analyses revealed FBP1 as a novel inducible therapeutic target among 17,757 vitamin-D-responsive genes in MV4-11 or MOLM-14 blasts in vitro, both of which were derived from AML patients with FLT3 mutations. To investigate FBP1's anti-leukemic function in this study, we generated a new AML cell line through lentiviral overexpression of an FBP1 transgene in vitro (named FBP1-MV4-11). Results showed that FBP1-MV4-11 blasts are more prone to apoptosis than MV4-11 blasts. Mechanistically, FBP1-MV4-11 blasts have significantly increased gene and protein expression of P53, as confirmed by the P53 promoter assay in vitro. However, enhanced cell death and reduced proliferation of FBP1-MV4-11 blasts could be reversed by supplementation with post-glycolytic metabolites in vitro. Additionally, FBP1-MV4-11 blasts were found to have impaired mitochondrial homeostasis through reduced cytochrome c oxidase subunit 2 (COX2 or MT-CO2) and upregulated PTEN-induced kinase (PINK1) expressions. In summary, this is the first in vitro evidence that FBP1-altered carbohydrate metabolism and FBP1-activated P53 can initiate leukemic death by activating mitochondrial reprogramming in AML blasts, supporting the clinical potential of FBP1-based therapies for AML-like cancers.


Subject(s)
Carbohydrate Metabolism , Granulocyte Precursor Cells , Leukemia, Myeloid, Acute , Mitochondria , Tumor Suppressor Protein p53 , Apoptosis , Carbohydrate Metabolism/drug effects , Carbohydrate Metabolism/genetics , Carbon Dioxide/metabolism , Cell Line, Tumor , Cyclooxygenase 2/metabolism , Disease Progression , Electron Transport Complex IV/metabolism , Fructose/pharmacology , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Glycolysis , Granulocyte Precursor Cells/metabolism , Humans , Leukemia, Myeloid, Acute/drug therapy , Leukemia, Myeloid, Acute/genetics , Leukemia, Myeloid, Acute/metabolism , Mitochondria/drug effects , Mitochondria/genetics , Mitochondria/metabolism , Protein Kinases/metabolism , Tumor Suppressor Protein p53/genetics , Tumor Suppressor Protein p53/metabolism , Vitamin D/pharmacology , Vitamins/pharmacology , fms-Like Tyrosine Kinase 3/genetics , fms-Like Tyrosine Kinase 3/metabolism
19.
Endokrynol Pol ; 73(5): 911-912, 2022.
Article in English | MEDLINE | ID: mdl-35971930

ABSTRACT

Not required for Clinical Vignette.


Subject(s)
Fructose-1,6-Diphosphatase Deficiency , Humans , Fructose-Bisphosphatase/genetics , Fructose , Mutation
20.
FEBS J ; 289(21): 6694-6713, 2022 11.
Article in English | MEDLINE | ID: mdl-35653238

ABSTRACT

Hepatitis B virus (HBV) is the leading cause of liver disease ranging from acute and chronic hepatitis to liver cirrhosis and hepatocellular carcinoma (HCC). Studies have revealed that HBV infection broadly reprogrammes the host cellular metabolic processes for viral pathogenesis. Previous reports have shown that glycolysis and gluconeogenesis are among the most deregulated pathways during HBV infection. We noted that despite being one of the rate-limiting enzymes of gluconeogenesis, the role and regulation of Fructose-1,6-bisphosphatase 1 (FBP1) during HBV infection is not much explored. In this study, we report FBP1 upregulation upon HBV infection and unravel a novel mechanism of epigenetic reprogramming of FBP1 by HBV via utilizing host factor Speckled 110 kDa (Sp110). Here, we identified acetylated lysine 18 of histone H3 (H3K18Ac) as a selective interactor of Sp110 Bromodomain. Furthermore, we found that Sp110 gets recruited on H3K18Ac-enriched FBP1 promoter, and facilitates recruitment of deacetylase Sirtuin 2 (SIRT2) on that site in the presence of HBV. SIRT2 in turn brings its interactor and transcriptional activator Hepatocyte nuclear factor 4-alpha to the promoter, which ultimately leads to a loss of DNA methylation near the cognate site. Interestingly, this Sp110 driven FBP1 regulation during infection was found to promote viral-borne HCC progression. Moreover, Sp110 can be used as a prognostic marker for the hepatitis-mediated HCC patients, where high Sp110 expression significantly lowered their survival. Thus, the epigenetic reader protein Sp110 has potential to be a therapeutic target to challenge HBV-induced HCCs.


Subject(s)
Carcinoma, Hepatocellular , Hepatitis B , Liver Neoplasms , Humans , Carcinoma, Hepatocellular/pathology , Epigenesis, Genetic , Fructose , Fructose-Bisphosphatase/genetics , Fructose-Bisphosphatase/metabolism , Hepatitis B/complications , Hepatitis B/genetics , Hepatitis B virus/genetics , Hepatitis B virus/metabolism , Hepatocyte Nuclear Factor 4/genetics , Liver Neoplasms/pathology , Sirtuin 2/metabolism
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