Molecular control of bone development and inflammation by FBXO11
FBXO11 对骨发育和炎症的分子控制
基本信息
- 批准号:10388194
- 负责人:
- 金额:$ 35.86万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2020
- 资助国家:美国
- 起止时间:2020-05-01 至 2025-04-30
- 项目状态:未结题
- 来源:
- 关键词:AddressAdultAffectAgingAlveolar Bone LossAnimal ModelAnimalsAntidepressive AgentsApoptosisB cell differentiationBacteriaBiological ProcessBone DevelopmentBone DiseasesBone GrowthBone MarrowBone RegenerationBone ResorptionBone TransplantationBone remodelingCarcinomaCell Culture TechniquesCell Cycle RegulationCellsChronicClinical ResearchCodeDataDental ImplantsDifferentiation and GrowthDiseaseEconomic BurdenF Box DomainF-Box ProteinsFDA approvedFailureGenesGenetic EngineeringGenomicsGrowthHealthHumanImplantIn VitroInfectionInflammationInflammatoryInterventionKDM1A geneKnock-outKnockout MiceLipopolysaccharidesMediatingMesenchymal Stem CellsModelingMolecularMusOralOral cavityOsteitisOsteoblastsOsteogenesisOtitis MediaPathway interactionsPatientsPeriodontitisPharmaceutical PreparationsPlayPorphyromonas gingivalisPrevalenceProteinsQuality of lifeRegulationRegulatory PathwayRiskRoleSignal TransductionSignaling MoleculeSiteSnailsSystemic diseaseTooth LossTooth structureTransgenesTransplantationagedalveolar bonebonebone lossbone metabolismbone repaircell motilityexperimental studygene therapyhealth economicsin vivoin vivo Modelinflammatory bone lossinflammatory milieuinhibitorinnovationknock-downmelanocytemouse modelnew therapeutic targetnovelosteoblast differentiationosteogenicoverexpressionperi-implantitispreventsubcutaneoustherapeutic targettumor progressionyoung adult
项目摘要
Project Summary
Chronic inflammation disrupts bone metabolism and promotes bone loss. Periodontitis and peri-implantitis are
the most common inflammatory bone diseases in the oral cavity. In such an inflammatory environment, bone
formation and bone resorption uncouple, leading to inflammatory bone damage, tooth loss, and dental implant
failure. In this study, we propose a novel mechanism by which F-BOX Protein11 (FBXO11) regulates bone
development and inflammation. FBXO11 is a protein-coding gene associated with otitis media.
Additionally, it functions in a broad range of biological processes including melanocyte apoptosis, cell cycle
regulation, cell migration, B-cell differentiation, and epithelial cancer progression. However, the effect of
FBXO11 on bone development and inflammation has not been determined. Our preliminary studies in
murine osteoblasts and genomic animal model showed that FBXO11 is a critical signaling molecule
governing osteogenic differentiation by inhibiting Snail1/ lysine-specific demethylase 1 (LSD1).
Furthermore, we found that the FBXO11/Snail1/LSD1 signaling axis is an important mechanism
underlying inflammatory bone loss in cases of chronic inflammation, such as periodontitis and peri-
implantitis. The novel mechanisms identified in our proposed studies will be critical for developing molecular
strategies to prevent bone loss and promote bone regeneration in periodontal and peri-implant infection. Three
specific aims will address the overarching hypothesis that FBXO11 regulates osteogenic differentiation in bone
development and inflammation. Specific Aim1 will determine if FBXO11 is essential for osteogenic
differentiation and bone growth by using FBXO11- overexpressing and knockdown osteogenic cells cultures,
bone transplant experiment, and a conditional FBXO11 knockout mouse model. Specific Aim 2 will determine if
FBXO11/Snail1/LSD1 regulatory axis contributes to inflammatory bone remodeling in the polymicrobial
periodontitis and peri-implantitis animals. Specific Aim 3 will determine if we can render this FBXO11 axis as
novel targets to treat periodontitis and peri-implantitis that represent significant health and economic burden
world widely. We propose two innovative approaches, gene therapy by genetically engineering FBXO11
transgene in osteoblasts and a local intervention with a specific LSD1 inhibitor trans-2-phenylcyclopropylamine
(2-PCPA), an FDA-approved antidepressant medication to prevent bone loss and promote bone regeneration.
If this proposed study validates our hypothesis of repurposing of 2-PCPA to treat inflammatory bone disease,
we will consider advancing the use of 2-PCPA to treat chronic periodontitis and peri-implantitis into clinical
studies.
项目摘要
慢性炎症破坏骨代谢,促进骨丢失。牙周炎和种植体周围炎是
口腔中最常见的炎症性骨病。在这样的炎症环境中,
形成和骨吸收分离,导致炎症性骨损伤、牙齿脱落和牙种植体
失败在这项研究中,我们提出了一种新的机制,F-BOX蛋白11(FBXO 11)调节骨
发育和炎症。FBXO 11是一个与中耳炎相关的蛋白质编码基因。
此外,它在广泛的生物学过程中发挥作用,包括黑素细胞凋亡、细胞周期
调节、细胞迁移、B细胞分化和上皮癌进展。然而,
FBXO 11对骨发育和炎症的影响尚未确定。我们的初步研究
小鼠成骨细胞和基因组动物模型表明,FBXO 11是一个关键的信号分子,
通过抑制Snail 1/赖氨酸特异性脱甲基酶1(LSD 1)来控制成骨分化。
此外,我们发现FBXO 11/Snail 1/LSD 1信号轴是一个重要的机制,
在慢性炎症的情况下,如牙周炎和牙周炎,
种植体炎在我们提出的研究中确定的新机制将是开发分子生物学的关键。
预防牙周和种植体周围感染的骨丢失和促进骨再生的策略。三
具体的目标是解决FBXO 11调节骨成骨分化的总体假设
发育和炎症。特异性Aim 1将决定FBXO 11是否是成骨细胞所必需的。
通过使用FBXO 11过表达和敲低的成骨细胞培养物,
骨移植实验和条件性FBXO 11敲除小鼠模型。具体目标2将确定是否
FBXO 11/Snail 1/LSD 1调节轴有助于多微生物中的炎性骨重建
牙周炎和种植体周围炎动物。Specific Aim 3将确定我们是否可以将此FBXO 11轴渲染为
治疗牙周炎和种植体周围炎的新靶点,
世界各地。我们提出了两个创新的方法,基因治疗的基因工程FBXO 11
成骨细胞中的转基因和用特异性LSD 1抑制剂反式-2-苯基环丙胺进行局部干预
(2-PCPA),FDA批准的抗抑郁药物,以防止骨质流失和促进骨再生。
如果这项拟议的研究证实了我们的假设,即重新利用2-PCPA治疗炎症性骨病,
我们将考虑将2-PCPA用于治疗慢性牙周炎和种植体周围炎的应用推广到临床,
问题研究
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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{{ truncateString('Jia Chang', 18)}}的其他基金
Molecular control of bone development and inflammation by FBXO11
FBXO11 对骨发育和炎症的分子控制
- 批准号:
10155459 - 财政年份:2020
- 资助金额:
$ 35.86万 - 项目类别:
Molecular control of bone development and inflammation by FBXO11
FBXO11 对骨发育和炎症的分子控制
- 批准号:
10615606 - 财政年份:2020
- 资助金额:
$ 35.86万 - 项目类别:
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