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Enhancing the Pharmacology of Insulin through an expanded Genetic Code

Enhancing the Pharmacology of Insulin through an expanded Genetic Code
通过扩展的遗传密码增强胰岛素的药理学
批准号:
8332424
负责人:
Vijay Pandyarajan
金额:
$2.89万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-05 至 2015-09-04
关键词:
AdolescentAmino Acid SubstitutionAmino AcidsAttenuatedBiochemicalBiologicalBiological TestingBlood GlucoseBolus InfusionCellsCharacteristicsChemicalsChemistryChlorineClinical TrialsCollaborationsComplications of Diabetes MellitusDataDiabetes MellitusDiabetic AngiopathiesDissectionDoctor of PhilosophyDrug DesignDrug FormulationsDrug KineticsEndocrinologyEventExhibitsFamily suidaeFutureGenerationsGenetic CodeGoalsHalogensHealth SciencesHealth systemHomeostasisHormonesHourHumanHyperglycemiaHypoglycemiaInjection of therapeutic agentInsulinInsulin Infusion SystemsInsulin, Lispro, HumanInsulin-Dependent Diabetes MellitusKidney DiseasesKidney FailureKnowledgeLaboratoriesLeadMedicineMetabolicMethodsModelingModificationMolecularMono-SMutagenesisNon-Insulin-Dependent Diabetes MellitusOregonPancreasPatientsPerformancePharmacodynamicsPharmacologyPhenylalaninePhysicsPichiaPilot ProjectsPositioning AttributePropertyProteinsPumpRattusRecombinant DNARecombinant ProteinsRecombinantsRegimenRelative (related person)Replacement TherapyResearchResolutionRetinal DiseasesSafetySeminalSolutionsStreptozocinStructureSystemTailTechnologyTestingTherapeuticTreatment EfficacyUnited KingdomUniversitiesX-Ray CrystallographyYeastsZincanalogbasechemical synthesiscostdesigndiabetes controldiabeticdimerglycemic controlimprovedin vivoinnovationinsulin secretionmolecular dynamicsmonomernovelpancreatic juiceprospectiveprotein expressionquantum chemistryreceptor bindingsuccesstherapy designthree dimensional structureward

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中文摘要
翻译
描述(由申请人提供):胰岛素是代谢稳态所需的关键激素。相对缺乏胰岛素会导致糖尿病(DM),这是一种以高血糖和相关代谢异常为特征的疾病。长期并发症包括视网膜病变和肾病。目前的胰岛素治疗方法是通过模拟胰腺基础/大剂量胰岛素分泌来达到正常血糖。1型糖尿病和新发2型糖尿病的经典临床试验表明,强化血糖浓度治疗可显著减少微血管并发症,但代价是低血糖事件增加。我们寻求设计新的胰岛素类似物来提高胰岛素替代治疗的安全性和有效性。目前的胰岛素类似物配方(尽管在20世纪90年代取得了重大进展)在药代动力学(PK)和物理稳定性方面是次优的。简而言之,短效类似物相对于餐后胰腺分泌太慢,而基础类似物不能提供真正的24小时PK。我的论文的目标是设计和表征一种新型超短效胰岛素类似物,用于(i)在多次注射方案中控制饮食,(ii)在闭环系统(“智能泵”)中使用。我的研究计划的基本思想是利用扩展的遗传密码来实现非标准胰岛素类似物的重组表达。对含有非天然氨基酸取代的胰岛素类似物(通过化学合成获得)的初步研究表明,在胰岛素lispro (HumalogR的活性成分)的潜在二聚体界面上,para-Cl-PheB24(代替PheB24)具有实用价值。我们假设,由于电负性或卤素取代的大小(相对于苯丙氨酸),氯-芳香族取代导致锌胰岛素类似物六聚体的加速分解。麻醉猪的初步研究表明,para- cl - pheb24 -胰岛素lispro相对于HumalogR具有更快的药效学。在我的论文中,我计划在毕赤酵母中表达这种非标准类似物,通过x射线晶体学确定其三维结构,并表征其在潜在配方条件下的物理稳定性。据我所知,这将是第一个确定含有氯芳取代的蛋白质结构,也是第一个这样的修饰如何增强蛋白质治疗特性的例子。
英文摘要
DESCRIPTION (provided by applicant): Insulin is a key hormone required for metabolic homeostasis. Relative lack of insulin results in diabetes mellitus (DM), a condition marked by hyperglycemia and associated metabolic abnormalities. Long-term complications include retinopathy and nephropathy. Current insulin therapies are designed to achieve normoglycemia by mimicking pancreatic basal/bolus secretion of insulin. Classical clinical trials in Type 1 DM and new-onset Type 2 DM have shown that intensive treatment of blood glucose concentration leads to a significant reduction in microvascular complications at the cost of increased hypoglycemic events. We seek to design novel insulin analogs to enhance the safety and efficacy of insulin replacement therapy. Current insulin analog formulations (although representing a significant advance in the 1990s) are sub- optimal with respect to pharmacokinetics (PK) and physical stability. In brief, short-acting analogs are too slow relative to post-prandial pancreatic secretion whereas basal analogs do not offer true 24-hour PK. The goal of my thesis is to design and characterize a novel ultra-short-acting insulin analog for (i) prandial control in muli- injection regiments and (ii) use in a closed-loop system ("smart pumps"). The essential idea underlying my research plan is exploitation of an expanded genetic code to enable recombinant expression of non-standard insulin analogs. Preliminary studies of insulin analogs containing unnatural amino-acid substitutions (obtained by chemical synthesis) suggest the utility of a para-Cl-PheB24 (in place of PheB24) at the potential dimer interface of insulin lispro (the active component of HumalogR). We hypothesize that the chloro-aromatic substitution leads to accelerated disassembly of the zinc insulin analog hexamer due to the electronegativity or size of the halogen substitution (relative to Phe). Pilot studies in anesthetized pigs indicate that para-Cl-PheB24-insulin lispro exhibits accelerated pharmacodynamics relative to HumalogR. In my thesis I plan to express this non-standard analog in the yeast Pichia pastoris, determine its three-dimensional structure by X-ray crystallography, and characterize its physical stability under conditions of potential formulation. To my knowledge, this will be the first structure to be determined of a protein containing a chloro-aromatic substitution and the first example of how such a modification can enhance the therapeutic properties of a protein.
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Enhancing the Pharmacology of Insulin through an expanded Genetic Code
  • 批准号:
    8715795
  • 项目类别:
  • 资助金额:
    $4.77万
  • 财政年份:
    2011
  • 负责人:
    Vijay Pandyarajan
  • 依托单位:
Enhancing the Pharmacology of Insulin through an expanded Genetic Code
  • 批准号:
    8256263
  • 项目类别:
  • 资助金额:
    $2.85万
  • 财政年份:
    2011
  • 负责人:
    Vijay Pandyarajan
  • 依托单位:
Enhancing the Pharmacology of Insulin through an expanded Genetic Code
  • 批准号:
    8517712
  • 项目类别:
  • 资助金额:
    $4.72万
  • 财政年份:
    2011
  • 负责人:
    Vijay Pandyarajan
  • 依托单位:
海外基金