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Microfluidic Chip and Software for Microvascular Studies

Microfluidic Chip and Software for Microvascular Studies
用于微血管研究的微流控芯片和软件
批准号:
7248022
负责人:
BALABHASKAR PRABHAKARPANDIAN
金额:
$45.97万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-10-01 至 2009-05-31

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英文摘要
DESCRIPTION (provided by applicant): Particle adhesion to tissue (vascular endothelium) depends critically upon particle/cell property (size, receptors), scale/geometric features of vasculature (diameter, bifurcation, etc.) and local hemodynamic factors (stress, torque etc). Currently, this is investigated using in-vitro parallel-plate flow chambers which suffer from several serious limitations including (a) idealized, macrocirculatory scaling (b) lack of critical morphological features (junctions, network), healthy vs. diseased vasculature and (c) large volumes (several ml) and (d) contamination due to non-disposability. We propose to develop a novel microfluidics-based platform for cell/drug-particle adhesion which overcomes these limitations In Phase I, anatomically detailed microvascular network structures were obtained from in-vivo image data and patterned onto a plastic, disposable substrate (PDMS). Perfusion and particle adhesion studies were successfully carried-out and the data was analyzed using high-fidelity computational models. The presence of significant stagnant regions, non-intuitive particle and flow splits, spatially non-uniform adhesion as well as first evidence of dependence of particle adhesion on vessel branching angle were identified and documented. In addition, endothelial cells were cultured on the PDMS and success was demonstrated with the upregulation of adhesion molecule (P-selectin) and subsequent adhesion of anti-P-selectin coated particle to the cultured endothelial cells. Net usage of reagents was decreased by over two orders of magnitude. Phase I results clearly established the value of using the proposed microvascular environment to gain new insights and make quantitative predictions on particle adhesion in the microvasculature. The Phase II efforts will include (a) expansion of the in-vivo network databases (and idealizations) (b) adhesion studies using micro/nano particles and endothelial/cancer cells and (c) validation against intra-vital measurements and analysis with computational models. By enabling the study of particle/cell-tissue interactions under controlled conditions that truly mimic the microvascular environment, the final Phase II product will advance drug discovery and delivery research in a variety of therapeutic areas including inflammation, allergy/infectious disease, cardiovascular disease and cancer among others. A multidisciplinary team has been assembled with expertise in microcirculation and cell adhesion research, microfabrication/microfluidics, computational modeling and intra-vital microscopy.
期刊论文(7)
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会议论文
DOI: 10.1111/j.1549-8719.2011.00099.x
发表时间: 2011-07
期刊: Microcirculation (New York, N.Y. : 1994)
影响因子: --
作者: [Prabhakarpandian B, Wang Y, Rea-Ramsey A, Sundaram S, Kiani MF, Pant K]
通讯作者: Pant K
DOI: 10.1007/s10544-009-9322-8
发表时间: 2009-10
期刊: BIOMEDICAL MICRODEVICES
影响因子: 2.8
作者: [Rosano, Jenna M., Tousi, Nazanin, Scott, Robert C., Krynska, Barbara, Rizzo, Victor, Prabhakarpandian, Balabhaskar, Pant, Kapil, Sundaram, Shivshankar, Kiani, Mohammad F.]
通讯作者: Kiani, Mohammad F.
Ratiometric Inclusion of Fibroblasts Promotes Both Castration-Resistant and Androgen-Dependent Tumorigenic Progression in Engineered Prostate Cancer Tissues.
成纤维细胞的比例包含促进工程化前列腺癌组织中的去势抗性和雄激素依赖性致瘤进展。
DOI: 10.1002/adhm.202301139
发表时间: 2023
期刊: Advanced healthcare materials
影响因子: 10
作者: [Habbit,NicoleL, Anbiah,Benjamin, Suresh,Joshita, Anderson,Luke, Davies,MeganL, Hassani,Iman, Ghosh,TaraswiM, Greene,MichaelW, Prabhakarpandian,Balabhaskar, Arnold,RobertD, Lipke,ElizabethA]
通讯作者: Lipke,ElizabethA
DOI: 10.1007/s10544-008-9170-y
发表时间: 2008-08
期刊: Biomedical microdevices
影响因子: 2.8
作者: [Prabhakarpandian B, Pant K, Scott RC, Pattillo CB, Irimia D, Kiani MF, Sundaram S]
通讯作者: Sundaram S
Multi-Scale In Vitro 3D Tissue Model of Vascularized Bone-Cartilage Interactions
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  • 财政年份:
    2017
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    BALABHASKAR PRABHAKARPANDIAN
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Multi-Scale In Vitro 3D Tissue Model of Vascularized Bone-Cartilage Interactions
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A Predictive In Vitro Model for Screening Personalized Responses to CFTR-directed Therapeutics
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    2016
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    $149.99万
  • 财政年份:
    2016
  • 负责人:
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