Multiscale, mechanistic, and predictive models of stroke in sickle cell disease
Multiscale, mechanistic, and predictive models of stroke in sickle cell disease
批准号:
7981609
负责人:
Manu O Platt
金额:
$225.75万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-30 至 2015-06-30
关键词:
Adverse effectsAgeAmino AcidsArteriesBiochemicalBiological MarkersBiomechanicsBiomedical EngineeringBlood VesselsBlood flowCardiovascular systemCell ProliferationCellsCellular biologyCessation of lifeChildChildhoodChildhood strokeChronicClinical DataEarly treatmentEngineeringFeedbackFunctional disorderHereditary DiseaseInflammationInterventionKineticsLife ExpectancyLinkMedicineModelingMutationOutcomePainPatientsPeptide HydrolasesPoint MutationPreventiveProteinsPublished CommentResearchRiskSickle CellSickle Cell AnemiaStatistical ModelsStrokeStructural ProteinTimeTimeLineTissuesTrainingabstractingbasecell typecostinnovationinsightmathematical modelnovelpredictive modelingresponse
中文摘要
描述(由申请人提供)
摘要:镰状细胞病中风的多尺度、机制和预测模型摘要镰状细胞病(SCD)是一种遗传性疾病,由一种细胞内的一种蛋白质中的一个氨基酸发生点突变引起。尽管SCD的单一性,突变导致多因素损伤,疼痛,预期寿命降低,最令人沮丧的是,儿科中风。患有SCD的儿童患中风的可能性是其他儿童的200倍:超过10%的儿童在20岁时中风。这种加速的时间轴挑战了动脉损伤30-40年内发生斑块形成的心血管范例。无论是SCD的中风机制还是一个子集特别脆弱的原因都不清楚。预防性治疗有很大的副作用,需要更好地预测哪些SCD患者需要干预。我建议开发一种创新的个性化医疗策略,使用实验和临床数据来训练预测镰状细胞病中风风险的数学模型,以便对儿科患者进行早期干预。为了实现这一目标,我提出了一个假设为基础的项目,结合不同的生物医学亚专业的研究成果。工程师们将血流紊乱、动脉内皮功能障碍和斑块定位联系起来。硬的、粘的、镰状红细胞干扰和阻塞血流,并物理性地损伤血管壁。作为响应,蛋白酶被释放,降解动脉壁中的结构蛋白,细胞增殖随之而来,管腔狭窄持续存在。所有这些都因慢性炎症而加剧。为了捕捉SCD及其正反馈回路的复杂性,我建议开发多尺度动力学模型,该模型将SCD在细胞和组织水平上的生物化学和生物力学后果的蛋白水解机制见解与基于临床数据的预测统计模型,新的生物标志物和患者结局相结合。我在细胞生物学,生物医学工程和数学建模方面的严格训练开发了一个创新的观点和工具箱,以激励新的疗法,指示立即干预,并降低SCD患者的成本和死亡。
公共卫生相关性:镰状细胞病是一种遗传性疾病,可导致全身性、多因素损伤、疼痛、预期寿命降低,最严重的是,11%的遗传突变儿童会发生中风。该项目的目标是开发一种创新的个性化医疗策略,使用实验和临床数据来训练预测镰状细胞病中风风险的数学模型,以便对儿科患者进行早期干预。
英文摘要
DESCRIPTION (Provided by the applicant)
Abstract: Multiscale, mechanistic, and predictive models of stroke in sickle cell disease Abstract Sickle cell disease (SCD) is a genetic disease caused by one point mutation that changes one amino acid in one protein inside one type of cell. Despite the singularity of SCD, the mutation causes multi-factorial damage, pain, lower life expectancy, and, most devastatingly, pediatric strokes. Children with SCD are 200 times more likely to suffer a stroke than others: over 10% will stroke by the age of 20. This accelerated timeline challenges cardiovascular paradigms that plaque formation occurs over 30-40 years of arterial damage. Neither stroke mechanisms in SCD nor reasons a subset is particularly vulnerable are clear. Preventive therapies have substantial side effects, requiring better predictions of which SCD patients need intervention. I propose to develop an innovative personalized medicine strategy using experimental and clinical data to train a mathematical model predictive of sickle cell disease stroke risk for earlier intervention of pediatric patients. To achieve this, I propose a hypotheses-based project incorporating research findings from diverse biomedical subspecialties. Engineers have linked disturbed blood flow, endothelial dysfunction in arteries, and plaque localization. Stiff, sticky, sickled red blood cells disturb and block blood flow, and physically damage the vascular wall. In response, proteases are released that degrade the structural proteins in the arterial wall, cell proliferation follows, and luminal narrowing persists. All of this is exacerbated by chronic inflammation. To capture the complexity of SCD and its positive feedback loops, I propose to develop multi-scale kinetic models that incorporate proteolytic mechanistic insight from biochemical and biomechanical consequences of SCD at the cell and tissue level with predictive statistical models based on clinical data, novel biomarkers, and patient outcomes. My rigorous training in cell biology, biomedical engineering, and mathematical modeling developed an innovative viewpoint and toolbox to motivate new therapies, indicate immediate intervention, and reduce costs and deaths of SCD patients.
Public Health Relevance: Sickle cell disease is a genetic disease that causes systemic, multi-factorial damage, pain, lower life expectancy, and, most devastatingly, strokes in 11% of children with the genetic mutation. The goals of this project are to develop an innovative personalized medicine strategy using experimental and clinical data to train a mathematical model predictive of sickle cell disease stroke risk for earlier intervention of pediatric patients.
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DOI:
10.1155/2012/201781
发表时间:
2012
期刊:
Anemia
影响因子:
2.9
作者:
[Keegan PM, Surapaneni S, Platt MO]
通讯作者:
Platt MO
Endothelial cells and cathepsins: Biochemical and biomechanical regulation.
内皮细胞和组织蛋白酶:生化和生物力学调节。
DOI:
10.1016/j.biochi.2015.10.010
发表时间:
2016
期刊:
Biochimie
影响因子:
3.9
作者:
[Platt,ManuO, Shockey,WAndrew]
通讯作者:
Shockey,WAndrew
DOI:
10.1007/s11010-012-1320-0
发表时间:
2012-08
期刊:
MOLECULAR AND CELLULAR BIOCHEMISTRY
影响因子:
4.3
作者:
[Keegan, Philip M., Wilder, Catera L., Platt, Manu O.]
通讯作者:
Platt, Manu O.
Age-dependent characterization of carotid and cerebral artery geometries in a transgenic mouse model of sickle cell anemia using ultrasound and microcomputed tomography.
使用超声和微计算机断层扫描对镰状细胞性贫血转基因小鼠模型中的颈动脉和脑动脉几何形状进行年龄依赖性表征。
DOI:
10.1016/j.bcmd.2020.102486
发表时间:
2020
期刊:
Blood cells, molecules & diseases
影响因子:
--
作者:
[Rivera,ChristianP, Li,Li, Cai,Shuangyi, Pei,Nui, McAlear,GeorgeE, Bollavaram,Keval, Ariyo,OluwasanmiV, Omojola,VictorO, Song,Hannah, Alfonso,AndreaL, Tan,Wenchang, Huo,Yunlong, Platt,ManuO]
通讯作者:
Platt,ManuO
DOI:
10.3791/52019
发表时间:
2015-04-01
期刊:
Journal of visualized experiments : JoVE
影响因子:
--
作者:
[Fan NK, Keegan PM, Platt MO, Averett RD]
通讯作者:
Averett RD
Georgia Tech ESTEEMED
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批准号:10201597
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资助金额:$35.75万
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财政年份:2018
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负责人:Manu O Platt
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依托单位:
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