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Biology subjects

Gunputh, N. D.

Publications and source records attributed to Gunputh, N. D..

2 recordsLinked to original sources

Agent-Based Modeling of Idiopathic Lung Fibrosis and Mechanistic Treatments

Agent-based modeling (ABM) is a computational method for predicting the emergent outcomes of interacting, autonomous individuals in a complex system. Here, ABM is used to simulate interactions between fibroblast and myofibroblast cells during idiopathic pulmonary fibrosis (IPF) in alveolar tissue microenvironments. These microenvironments are derived from histology of a healthy human lung sample and moderate- and severe-IPF lung samples. Fibroblast differentiation, cell migration, and collagen secretion in response to the spatial distribution of the cytokine transforming growth factor-beta are captured in the ABM using NetLogo software. Results are presented from one simulated year without treatment and with mechanisms representing treatment by pirfenidone and pentoxifylline, alone and in combination. A total of 180 in silico experiments are run, analyzed, and compared in a high-throughput workflow. The effects of the initial number of fibroblasts and treatment scenarios on various metrics related to collagen accumulation and collagen invasion into alveolar regions are determined. The ABM and the analysis files are shared to facilitate model reuse. By integrating computational modeling of IPF and therapeutics, this research aims to improve understanding of fibrosis progression and assess the efficacy of novel and existing treatments targeting different mechanisms to inform decision-making for IPF treatment.

systems biology↗

A meta-analysis of in vitro release of hydrophilictherapeutics from contact lenses using mathematicalmodeling

A meta-analysis was conducted to study the in vitro release of hydrophilic therapeutics from contact lenses. Fifty-two experiments were studied that measure the cumulative release of therapeutics from (mostly) commercial contact lenses placed in a vial. A mathematical model and a parameter fitting algorithm is presented to estimate the diffusion coefficient (D) and 50% therapeutic release time (T50) of all the experimental lens-therapeutic combinations. The mathematical framework was validated against previous studies. Statistical methods were used to analyze the relationships between lens materials, therapeutic properties, and predicted parameter values (D and T50). It was found that lens water content directly and moderately influences the estimated diffusion coefficient. More specifically, the median diffusivity of silicone hydrogel (SH) contact lenses was statistically different from conventional hydrogel (CH) lenses. Other lens and therapeutic properties dependencies on diffusivity were complex with special cases studied to elicit dependencies. A predictive tool was constructed to estimate the logarithm of 50% therapeutic release time, log(T50), given the lens water content and the therapeutic molecular volume and density. The statistical model explained 64% of the variability of the log(T50) and can be used in the preliminary stages of contact lens drug delivery development.

pharmacology and toxicology↗