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Restoring Vision with High-Fidelity Nonsense Codon Correction

Restoring Vision with High-Fidelity Nonsense Codon Correction
通过高保真无义密码子校正恢复视力
批准号:
10407714
负责人:
Christopher A Ahern
金额:
$4.25万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-02-01 至 2025-11-30
关键词:
AccountingAddressAmino AcidsAnatomyAnticodonBiochemicalBiological AssayBiological AvailabilityBiological ModelsBlindnessCell Differentiation processCell membraneCellsChildhoodClinical TrialsCommunicationCommunitiesComplexCone dystrophyCultured CellsDNADNA SequenceDataDefectDevelopmentDiseaseDrug Delivery SystemsDrug TargetingElectrophysiology (science)EngineeringEvaluationEyeFDA approvedGene TargetingGenesGenetic DiseasesGlutamineHumanIn VitroIncidenceInheritedIon ChannelIon Channel ProteinIowaLibrariesLightLocationMembrane ProteinsMethodsMissense MutationMolecularMonitorMusMutationNeural RetinaNight BlindnessNonsense CodonNonsense MutationNucleic AcidsNucleotidesOphthalmologistOrganoidsPathogenesisPatientsPharmaceutical PreparationsPharmacologyPhotoreceptorsPhototransductionPhysiologyPoint MutationPost-Translational Protein ProcessingProductionProtein BiosynthesisProtein translocationProteinsProteomicsResearchResearch PersonnelResourcesRetinaRetinal DiseasesRetinal PhotoreceptorsRibosomesSafetyScientistSilicon DioxideSiteStructureStructure of retinal pigment epitheliumSystemTRPM1 geneTechnologyTerminator CodonTestingTherapeuticTherapeutic InterventionTissuesToxic effectTransfer RNATranslationsUniversitiesViralVitelliform macular dystrophybasecell typedisease phenotypeefficacious treatmentfunctional outcomesgene therapygenome editinghuman diseasehuman pluripotent stem cellin vivoinduced pluripotent stem cellintravitreal injectionmouse modelnanomaterialsnanomedicinenanoparticlenew technologynext generationnonhuman primatenovelpolypeptidepre-clinicalpre-clinical therapypreclinical safetyprematurerepairedretinal progenitor cellsafety assessmentsafety testingsight restorationsmall moleculesmall molecule therapeuticsstem cell biologytRNA Precursortargeted deliverytherapeutic genetherapeutic targettranscriptomicsvirtual

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中文摘要
翻译
项目摘要/摘要 大约15%的遗传性视网膜病变和遗传性人类视网膜病变由无义突变引起 疾病一般,占美国250万到300万患者的某些特定基因,胡说八道 突变的发生率可能高达40%。因为无义突变会导致提前终止(PTC) 在蛋白质翻译中,疾病表型往往是严重的。目前,只有数量有限的 在人类临床试验中测试的无意义突变的治疗方法,包括基因治疗,小分子 通读药物,或基因组编辑。相关的挑战等同于这些治疗方法中的每一个承诺 选择。展望未来,更新的技术可能会解决这些障碍,并提供更安全和有效的 对病人的治疗。在蛋白质翻译过程中,tRNA在核糖体位置起作用,结合特定的 将氨基酸编入多肽序列。我们的目标是开发下一代基于 关于编码转移RNA的反密码子(ace-tRNA),该反密码子在 一种致病的无稽之谈突变。由于眼睛提供的许多解剖学优势,我们 寻求测试ace-tRNA疗法对导致视网膜病变的无义突变的广泛适用性 以及由于各种基因缺陷而导致的相关失明,包括那些编码离子通道蛋白的基因。 具体地说,我们将关注在光感受器(PR)中表达的离子通道中的无义突变 视网膜光输入和视网膜色素上皮(RPE),为PR提供支持。这两种细胞类型是 主要是失明发病的部位。 在本项目中,我们将: 1)开发针对几个PR和RPE离子的特定无义突变的ace-tRNA疗法 频道。 2)设计病毒和非病毒的ace-tRNA递送系统,以供长期编辑。使用这些,我们将 用培养细胞和人IPSC来源的细胞确定ACE-tRNA治疗的功能结果 RPE和IPSC-PR视网膜有机体。 3)用携带遗传缺陷的小鼠在体内测试我们的病毒和非病毒ace-tRNA。 人类的失明;以及 4)在我们的临床前NHP模型系统中评估ace-tRNA疗法的安全性和生物利用度。 由于通道病的复杂性,目前还没有FDA批准的针对经络病的治疗药物 与精确的翻译后修饰、精心调控的表达和组装有关。我们的 团队在ace-tRNA开发、纳米材料合成、人类多能干细胞方面的综合专业知识 生物学、离子通道生理学和病理生理学模型系统是独一无二的,非常适合于发展 ACE-tRNA技术用于治疗一系列导致失明的遗传病的临床试验。
英文摘要
PROJECT SUMMARY/ABSTRACT Nonsense mutations cause approximately 15% of genetically inherited retinopathies and inherited human diseases in general, accounting for 2.5 to 3 million patients in the U.S. For certain specific genes, nonsense mutation incidences can be as high as 40%. Because nonsense mutations cause premature termination (PTC) of protein translation, the disease phenotype is often severe. Currently, there are only a limited number of therapies for nonsense mutations being tested in human clinical trials, including gene therapy, small molecule read-through drugs, or genome editing. Associated challenges equal the promises of each of these therapeutic options. Looking forward, newer technologies may address these hurdles and provide more safe and efficacious treatments for patients. During protein translation, tRNA functions at the ribosomal site to incorporate a specific amino acid into the polypeptide sequence. We aim to develop the next generation of nucleic acid therapy based on anticodon encoding transfer RNA (ace-tRNA) that incorporates the correct wild type amino acid at the site of a disease-causing nonsense mutation. Because of the many anatomical advantages afforded by the eye, we seek to test the broad applicability of ace-tRNA therapeutics for nonsense mutations that cause retinopathies and related blindness due to defects in a variety of genes, including those encoding ion channel proteins. Specifically we will focus on nonsense mutation in ion channels expressed in photoreceptors (PR) which convert retinal light inputs and retinal pigment epithelium (RPE), which provide support for PR. These two cell types are primarily the site of blindness pathogenesis. In this project, we will: 1) Develop ace-tRNA therapeutics that target specific nonsense mutations across several PR and RPE ion channels. 2) Engineer both viral and non-viral ace-tRNA delivery systems for long-term editing. Using these we will determine the functional outcome of ace-tRNA treatment using cultured cells and human iPSC-derived RPE and iPSC-PR retinal organoids. 3) Test both our viral and non-viral ace-tRNA in vivo using mice harboring genetic defects that cause blindness in humans; and 4) Assess the safety and bioavailability of ace-tRNA therapeutics in our preclinical NHP model systems. There are no FDA-approved therapeutic drugs that target channelopathies because of the complexities associated with precise post-translational modifications, carefully regulated expression, and assembly. Our team’s combined expertise in ace-tRNA development, nanomaterial synthesis, human pluripotent stem cell biology, ion-channel physiology, and pathophysiological model systems is unique and ideally suited to advance ace-tRNA technology toward clinical trials for a wide range of genetic diseases that cause blindness.
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Chemical biology of voltage-gated cation channels
  • 批准号:
    10552311
  • 项目类别:
  • 资助金额:
    $53.51万
  • 财政年份:
    2023
  • 负责人:
    Christopher A Ahern
  • 依托单位:
A Versatile Chemical-Genetic Approach to Determine Bases for Arrhythmogenesis and Sodium Channelopathies
  • 批准号:
    10608370
  • 项目类别:
  • 资助金额:
    $66.31万
  • 财政年份:
    2022
  • 负责人:
    Christopher A Ahern
  • 依托单位:
Restoring Vision with High-Fidelity Nonsense Codon Correction
  • 批准号:
    10550272
  • 项目类别:
  • 资助金额:
    $146.02万
  • 财政年份:
    2021
  • 负责人:
    Christopher A Ahern
  • 依托单位:
Restoring Vision with High-Fidelity Nonsense Codon Correction
  • 批准号:
    10156779
  • 项目类别:
  • 资助金额:
    $145.48万
  • 财政年份:
    2021
  • 负责人:
    Christopher A Ahern
  • 依托单位:
海外基金