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Distributed Modeling and Parameter Estimation of Influenza Virus Replication During Vaccine Production

机译:疫苗生产过程中流感病毒复制的分布式建模与参数估计

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This contribution is concerned with population balance modeling of influenza virus replication in mammalian cell cultures. The cells are heterogeneous with respect to intracellular compounds like viral proteins. The amount of viral NP protein can be measured directly by means of flow cytometry. The corresponding degree of fluorescence is introduced as internal coordinate for a distributed deterministic modeling approach. The resulting model includes kinetic processes like infection, virus replication and release, apoptosis and cell death. It consists of three partial differential equations describing the distribution dynamics which are coupled to two differential equations that characterize the concentration of active and inactive virions in the medium. Kinetic parameters are determined from experimental data. The parameters are assumed to depend on the internal coordinate. The emerging infinite dimensional parameter estimation problem is translated to a finite dimension using a hermite spline representation of the distributed parameters. Hence the resulting inverse problem can be solved in a weighted nonlinear least squares framework. Spline approaches of different complexity are discussed and the estimation results are compared.
机译:这种贡献涉及哺乳动物细胞培养物中流感病毒复制的人口平衡建模。相对于像病毒蛋白的细胞内化合物,细胞是异质的。可以通过流式细胞术直接测量病毒NP蛋白的量。作为分布式确定性建模方法的内部坐标引入相应的荧光程度。得到的模型包括感染,病毒复制和释放,细胞凋亡和细胞死亡等动力学方法。它包括描述与耦合到两个微分方程的分发动态的三个局部微分方程组成,该分配动态表征介质中的活性和无效病毒群的浓度。动力学参数由实验数据确定。假设参数依赖于内部坐标。使用分布式参数的Hermite花键表示,新出现的无限尺寸参数估计问题被转换为有限维度。因此,所得到的逆问题可以在加权非线性最小二乘框架中解决。讨论了不同复杂性的样条方法,并比较了估计结果。

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