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Computational simulation of cellular proliferation using a meshless method.
Barbosa, M I A; Belinha, J; Jorge, R M Natal; Carvalho, A X.
Afiliação
  • Barbosa MIA; Institute of Science and Innovation in Mechanical and Industrial Engineering, University of Porto, Rua Dr. Roberto Frias, S/N, Porto 4200-465, Portugal.
  • Belinha J; Department of Mechanical Engineering, School of Engineering Polytechnic of Porto, Rua Dr. António Bernardino de Almeida, 431, Porto 4200-072, Portugal. Electronic address: job@isep.ipp.pt.
  • Jorge RMN; Department of Mechanical Engineering, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, S/N, Porto 4200-465, Portugal. Electronic address: job@isep.ipp.pt.
  • Carvalho AX; Cytoskeletal Dynamics Department, Institute for Research and Innovation in Health (I3S),University of Porto, Portugal, Rua Alfredo Allen, 208, Porto 4200-135, Portugal.
Comput Methods Programs Biomed ; 224: 106974, 2022 Sep.
Article em En | MEDLINE | ID: mdl-35834900
ABSTRACT
BACKGROUND AND

OBJECTIVE:

During cell proliferation, cells grow and divide in order to obtain two new genetically identical cells. Understanding this process is crucial to comprehend other biological processes. Computational models and algorithms have emerged to study this process and several examples can be found in the literature. The objective of this work was to develop a new computational model capable of simulating cell proliferation. This model was developed using the Radial Point Interpolation Method, a meshless method that, to the knowledge of the authors, was never used to solve this type of problem. Since the efficiency of the model strongly depends on the efficiency of the meshless method itself, the optimal numbers of integration points per integration cell and of nodes for each influence-domain were investigated. Irregular nodal meshes were also used to study their influence on the algorithm.

METHODS:

For the first time, an iterative discrete model solved by the Radial Point Interpolation Method based on the Galerkin weak form was used to establish the system of equations from the reaction-diffusion integro-differential equations, following a new phenomenological law proposed by the authors that describes the growth of a cell over time while dependant on oxygen and glucose availability. The discretization flexibility of the meshless method allows to explicitly follow the geometric changes of the cell until the division phase.

RESULTS:

It was found that an integration scheme of 6 × 6 per integration cell and influence-domains with only seven nodes allows to predict the cellular growth and division with the best balance between the relative error and the computing cost. Also, it was observed that using irregular meshes do not influence the solution.

CONCLUSIONS:

Even in a preliminary phase, the obtained results are promising, indicating that the algorithm might be a potential tool to study cell proliferation since it can predict cellular growth and division. Moreover, the Radial Point Interpolation Method seems to be a suitable method to study this type of process, even when irregular meshes are used. However, to optimize the algorithm, the integration scheme and the number of nodes inside the influence-domains must be considered.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Algoritmos Tipo de estudo: Prognostic_studies / Qualitative_research Idioma: En Revista: Comput Methods Programs Biomed Assunto da revista: INFORMATICA MEDICA Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Portugal País de publicação: IE / IRELAND / IRLANDA

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Algoritmos Tipo de estudo: Prognostic_studies / Qualitative_research Idioma: En Revista: Comput Methods Programs Biomed Assunto da revista: INFORMATICA MEDICA Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Portugal País de publicação: IE / IRELAND / IRLANDA