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Identification of human genes of iron homeostasis

Identification of human genes of iron homeostasis
人类铁稳态基因的鉴定
批准号:
10250241
负责人:
Caroline Philpott
金额:
$206.96万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
关键词:
16p11.23&apos Untranslated RegionsAcuteAnabolismAnemiaAnimalsBIK geneBindingBinding ProteinsBiochemicalBiologicalBloodBrainBuffersCell DeathCell Differentiation processCell physiologyCellsCessation of lifeChemicalsChromosomesClinicalCopy Number PolymorphismCuesDataDefectDietary IronElementsEnsureEnzymesEquilibriumEragrostisErythrocytesExhibitsFatty LiverFree RadicalsFriedreich AtaxiaGenesGeneticGenetic DiseasesHematologyHemeHemoglobinHepatocyteHereditary hemochromatosisHomeostasisHumanHypersensitivityImmuneImmune responseIn VitroIndividualInflammationInjuryIronIron OverloadIron deficiency anemiaIron-Sulfur ProteinsLipid PeroxidationLipidsLiverLiver diseasesLocationMammalian CellMediatingMediator of activation proteinMessenger RNAMetabolicMolecular ChaperonesMusNatureNeurodegenerative DisordersNucleotidesNutrientOrganismOxidation-ReductionOxidative StressParticipantPathogenicityPathologyPathway interactionsPhenotypePhospholipidsPlasmaPoly CPost-Transcriptional RegulationPrevalenceProcessProductionProteinsProtoporphyrinsRNA-Binding ProteinsReactionReactive Oxygen SpeciesRecurrenceRegulationRegulatory T-LymphocyteReportingRoleSerumSignal TransductionStratificationSulfhydryl CompoundsSystemT-LymphocyteTherapeuticTissuesToxic effectToxinTrans-ActivatorsTranscriptTumor ImmunityTumor-Infiltrating LymphocytesVitamin EZincantioxidant therapyautism spectrum disorderbiobankbiological adaptation to stresschemical reactioncofactorcohortcytokinedosagehuman diseaseimmune checkpointin vivoinstrumentiron deficiencyiron metabolismiron supplementationknock-downmacrophageneuron lossoxidative damagepreventprogrammed cell death protein 1programsresponsesortilintraffickingtraittranscriptomeuptakevirtual

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1) Iron is essential yet also highly chemically reactive and potentially toxic. The mechanisms that allow cells to use iron safely are not clear; defects in iron management are a causative factor in the cell death pathway known as ferroptosis. Poly rC binding protein 1 (PCBP1) is a multifunctional protein that serves as a cytosolic iron chaperone, binding and transferring iron to recipient proteins in mammalian cells. While PCBP1 distributes iron in cells, its role in managing iron in mammalian tissues remains unexplored. The liver is highly specialized for iron uptake, utilization, storage, and secretion. Mice lacking PCBP1 in hepatocytes exhibited defects in liver iron homeostasis with low levels of liver iron, reduced activity of iron enzymes, and misregulation of the cell-autonomous iron regulatory system. These mice spontaneously developed liver disease with hepatic steatosis, inflammation, and degeneration. Transcriptome analysis indicated activation of lipid biosynthetic and oxidative stress response pathways, including the anti-ferroptotic mediator Gpx4. Although PCBP1-deleted livers were iron-deficient, dietary iron supplementation did not prevent steatosis; instead, dietary iron restriction and antioxidant therapy with vitamin E prevented liver disease. PCBP1-deleted hepatocytes exhibited increased labile iron and production of reactive oxygen species, were hypersensitive to iron and prooxidants, and accumulated oxidatively-damaged lipids due to the reactivity of unchaperoned iron. Conclusions: Unchaperoned iron in PCBP1-deleted mouse hepatocytes leads to production of reactive oxygen species, resulting in lipid peroxidation and steatosis in the absence of iron overload. The iron chaperone activity of PCBP1 is therefore critical for limiting the toxicity of cytosolic iron and may be a key factor in preventing the lipid peroxidation that triggers the ferroptotic cell death pathway. 2) Iron-containing proteins rely on the incorporation of a set of iron cofactors for activity. The cofactors must be synthesized or assembled from raw materials located within the cell. The chemical nature of this pool of raw material - referred to as the labile iron pool has become clearer with the identification of micro- and macro-molecules that coordinate iron within the cell. These molecules function as a buffer system for the management of intracellular iron and are the focus of this review, with emphasis on the major iron chaperone protein coordinating the labile iron pool: poly C-binding protein 1. 3) Distinct lineages of T cells can act in response to various environmental cues to either drive or restrict immune-mediated pathology. Here, we identify the RNA binding protein, poly(C)-binding protein 1 (PCBP1) as an intracellular immune checkpoint that is up-regulated in activated T cells to prevent conversion of effector T (Teff) cells into regulatory T (Treg) cells, by restricting the expression of Teff cell-intrinsic Treg commitment programs. This was critical for stabilizing Teff cell functions and subverting immune-suppressive signals. T cell-specific deletion of Pcbp1 favored Treg cell differentiation, enlisted multiple inhibitory immune checkpoint molecules including PD-1, TIGIT, and VISTA on tumor-infiltrating lymphocytes, and blunted antitumor immunity. Our results demonstrate a critical role for PCBP1 as an intracellular immune checkpoint for maintaining Teff cell functions in cancer immunity. 4)Post-transcriptional regulation of cytokine production is crucial to ensure appropriate immune responses. We previously demonstrated that poly-rC-binding protein-1 (PCBP1) can act as a trans-acting factor to stabilize transcripts encoding sortilin, which mediates cytokine trafficking. Here, we report that PCBP2, which strongly resembles PCBP1, can stabilize sortilin transcripts in macrophages using the same mechanism employed by PCBP1. PCBP2 recognized the C-rich element in the 3' UTR of sortilin mRNA, and PCBP2 knockdown decreased sortilin transcripts, indicating that PCBP2 stabilizes sortilin mRNA by binding to its 3' UTR. Zn2+ reversibly inhibited the nucleotide binding ability of PCBP2 in vitro. These findings suggest that both PCBP2 and PCBP1 may control the stability of sortilin transcripts by sensing intracellular Zn2+ levels in immune cells. 5) Human-specific duplications at chromosome 16p11.2 mediate recurrent pathogenic 600 kbp BP4-BP5 copy-number variations, which are among the most common genetic causes of autism. These copy-number polymorphic duplications are under positive selection and include three to eight copies of BOLA2, a gene involved in the maturation of cytosolic iron-sulfur proteins. To investigate the potential advantage provided by the rapid expansion of BOLA2, we assessed hematological traits and anemia prevalence in 379,385 controls and individuals who have lost or gained copies of BOLA2: 89 chromosome 16p11.2 BP4-BP5 deletion carriers and 56 reciprocal duplication carriers in the UK Biobank. We found that the 16p11.2 deletion is associated with anemia (18/89 carriers, 20%, p = 4e-7, OR = 5), particularly iron-deficiency anemia. We observed similar enrichments in two clinical 16p11.2 deletion cohorts, which included 6/63 (10%) and 7/20 (35%) unrelated individuals with anemia, microcytosis, low serum iron, or low blood hemoglobin. Upon stratification by BOLA2 copy number, our data showed an association between low BOLA2 dosage and the above phenotypes (8/15 individuals with three copies, 53%, p = 1e-4). In parallel, we analyzed hematological traits in mice carrying the 16p11.2 orthologous deletion or duplication, as well as Bola2+/- and Bola2-/- animals. The Bola2-deficient mice and the mice carrying the deletion showed early evidence of iron deficiency, including a mild decrease in hemoglobin, lower plasma iron, microcytosis, and an increased red blood cell zinc-protoporphyrin-to-heme ratio. Our results indicate that BOLA2 participates in iron homeostasis in vivo, and its expansion has a potential adaptive role in protecting against iron deficiency. 6) Redox balance is essential for normal brain, hence dis-coordinated oxidative reactions leading to neuronal death, including programs of regulated death, are commonly viewed as an inevitable pathogenic penalty for acute neuro-injury and neurodegenerative diseases. Ferroptosis is one of these programs triggered by dyshomeostasis of three metabolic pillars: iron, thiols, and polyunsaturated phospholipids. This review focuses on: (1) lipid peroxidation (LPO) as the major instrument of cell demise, (2) iron as its catalytic mechanism, and (3) thiols as regulators of pro-ferroptotic signals, hydroperoxy lipids. Given the central role of LPO, we discuss the engagement of selective and specific enzymatic pathways versus random free radical chemical reactions in the context of the phospholipid substrates, their biosynthesis, intracellular location, and related oxygenating machinery as participants in ferroptotic cascades. These concepts are discussed in the light of emerging neuro-therapeutic approaches controlling intracellular production of pro-ferroptotic phospholipid signals and their non-cell-autonomous spreading, leading to ferroptosis-associated necroinflammation.
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Eukaryotic Heme Utilization
Identification of human genes of iron homeostasis
Eukaryotic Heme Utilization
Cell Biology of Iron Transport
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