May 25, 2021
InSysBio announces its participation in Society of Mathematical Biology Annual Meeting (SMB 2021) which is to be held virtually this year June 13-17, 2021. InSysBio team is going to present 4 posters and Oleg Demin Jr is going to give a presentation “Implementation of variability or uncertainty in parameter values to validate QSP models.” and Ivan Borisov is going to give a talk “Constrained Optimization Approach to Predictability Analysis in Bio-Mathematical Modeling.”
Mon, 06/14, 11:30PM - Tue, 06/15, 12:30AM (PDT)
PS03-IMMU
Tue, 06/15 04:15 AM (PDT)
MS06-MFBM
Wed, 06/16, 11:30PM - Thur, 06/17, 12:30AM (PDT)
PS05-MFBM
Thur, 06/17, 06:45pm (PDT)
CT09-MFBM
The presentation in frames of MFBM-MS06 time block is dedicated to the topic “Mathematical and computational methods to augment the reliability of biological models for better decision-making”. Oleg Demin Jr comments on it, “Validation is an important step to test the reliability of the mathematical models including quantitative systems pharmacology (QSP) models. Clinical endpoints for the population of patients are usually used to validate QSP models. For example, percent of responders or mean +/- SD of the particular biomarker. Variability or uncertainty in parameter values should be implemented to describe these endpoints. There are various approaches to extract and implement variability or uncertainty in parameters in model predictions. These methods and cases of their implementation in mechanistic and QSP models will be discussed in the framework of this presentation”.
The talk in frames of MFBM-CT09 time block is named “Constrained Optimization Approach to Predictability Analysis in Bio-Mathematical Modeling.” and Ivan Borisov comments on its topic, "Background: Identifiability analysis is a crucial step in improving reliability and predictability of biological models. Profile Likelihood (PL) is a reliable though computationally expensive approach to identifiability analysis. PL-based algorithm Confidence Intervals by Constraint Optimization (CICO), which was recently published (https://doi.org/10.1371/journal.pcbi.1008495/), reduces computational requirements and increases the accuracy of the estimated parameters’ confidence intervals. The CICO algorithm is available in a free software package LikelihoodProfiler based on Julia (https://github.com/insysbio/LikelihoodProfiler.jl). CICO can be potentially extended to predictability analysis and confidence bands estimation.Objectives: The goal of this study is to examine the application of CICO to estimation of confidence and prediction bands. The analysis was performed on a number of published biological models, including STAT5 Dimerization model, Cancer Taxol Treatment model, etc.Results: The original CICO algorithm can be extended to a broader use-case of confidence bands. The analysis demonstrates good performance characteristics for both identifiable and non-identifiable cases. The approach can be used with complex biological models where each likelihood estimation is computationally expensive and some output values are non-identifiable. Detailed analysis of each model can be found on the GitHub repository likelihoodprofiler-cases https://github.com/insysbio/likelihoodprofiler-cases."
About InSysBio
InSysBio is a Quantitative Systems Pharmacology (QSP) company located in Moscow, Russia (INSYSBIO LLC) and Edinburgh, UK (INSYSBIO UK LIMITED). InSysBio was founded in 2004 and has an extensive track record of helping pharmaceutical companies to make right decisions on the critical stages of drug research and development by application of QSP modeling. InSysBio’s innovative QSP approach has already become a part of the drug development process implemented by our strategic partners: there are more than 120 completed projects in collaboration with leaders of pharmaceutical industry. For more information about InSysBio, its solutions and services, visit www.insysbio.com.
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01 Oct 2018 12:23
InSysBio Announces Continuation of Collaboration with MedImmune for Quantitative Systems Pharmacology Modeling in Systemic Lupus Erythematosus
InSysBio, a pioneer in Quantitative Systems Pharmacology (QSP), modeling and simulation for drug development, announced today an extension of a collaboration with MedImmune, the global biologics research and development arm of AstraZeneca, for QSP modeling in systemic lupus erythematosus (SLE). The goal is to support the clinical development of anifrolumab, an investigational monoclonal antibody against the type I interferon receptor, by modeling the contributions of key cell types involved in the pathophysiology of lupus that are associated with the type I interferon dysregulation commonly seen with the disease.
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02 Oct 2018 14:05
InSysBio to present at ACoP9
InSysBio announces their participation at Ninth American Conference on Pharmacometrics (ACoP9), to be held October 7th to 10th, 2018, at the Loews Coronado Bay Resort near San Diego, CA. The theme of ACoP9 is “Modeling without Bounds”. InSysBio welcomes visitors at the booth #23.
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09 Oct 2018 15:29
InSysBio starts training course “Modeling for systems biology and biomedicine”
InSysBio expert modelers Dr. Galina Lebedeva, Dr. Tatiana Karelina, Dr. Evgeny Metelkin and Dr. Oleg Demin will give the course “Modeling for systems biology and biomedicine” at the Faculty of bioengineering and bioinformatics, Lomonosov Moscow State University.
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19 Oct 2018 15:49
InSysBio to present at BiotechClub 2018
InSysBio announces their participation at BiotechClub 2018 conference to be held on October 26th at Hyatt Regency Moscow Petrovsky Park. The theme of BiotechClub 2018 is “From Systems Biology to Systems Medicine”.
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24 Oct 2018 13:49
InSysBio to present at ICSB 2018
InSysBio announces their participation at 19th International Conference on Systems Biology (ICSB 2018) to be held October 28th to November 1st, 2018 in Lyon, France.
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