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Plos Computational Biology|January 5, 2019
A computational model to understand mouse iron physiology and diseaseJignesh H Parmar, Pedro MendesBMC Systems Biology|May 20, 2017
Modeling the dynamics of mouse iron body distribution: hepcidin is necessary but not sufficientJignesh H Parmar, Grey Davis, Hope Shevchuk, et al.Molecular Microbiology|July 27, 2018
An important role for periplasmic storage in Pseudomonas aeruginosa copper homeostasis revealed by a combined experimental and computational modeling studyJignesh H Parmar, Julia Quintana, David Ramírez, et al.Molecular Biosystems|January 15, 2011
Characterization of the adaptive response and growth upon hyperosmotic shock in Saccharomyces cerevisiaeJignesh H Parmar, Sharad Bhartiya, K V VenkateshJournal of Industrial Microbiology & Biotechnology|February 23, 2012
Quantification of metabolism in Saccharomyces cerevisiae under hyperosmotic conditions using elementary mode analysisJignesh H Parmar, Sharad Bhartiya, K V VenkateshHaematologica|November 10, 2018
Gastrointestinal iron excretion and reversal of iron excess in a mouse model of inherited iron excessCourtney J Mercadante, Milankumar Prajapati, Jignesh H Parmar, et al.Frontiers in Cell and Developmental Biology|June 22, 2023
Reproducibility and FAIR principles: the case of a segment polarity network modelPedro MendesArxiv|May 3, 2023
Reproducibility and FAIR Principles: The Case of a Segment Polarity Network ModelPedro MendesPageof 26