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Advances in computational modeling approaches of pituitary gonadotropin signaling
Authors:Romain Yvinec  Pascale Crépieux  Eric Reiter  Anne Poupon  Frédérique Clément
Institution:1. PRC, INRA, CNRS, IFCE, Université de Tours, Nouzilly, France;2. Inria, Université Paris-Saclay, Palaiseau, France;3. LMS, Ecole Polytechnique, CNRS, Université Paris-Saclay, Palaiseau, France
Abstract:Introduction: Pituitary gonadotropins play an essential and pivotal role in the control of human and animal reproduction within the hypothalamic–pituitary–gonadal (HPG) axis. The computational modeling of pituitary gonadotropin signaling encompasses phenomena of different natures such as the dynamic encoding of gonadotropin secretion, and the intracellular cascades triggered by gonadotropin binding to their cognate receptors, resulting in a variety of biological outcomes.

Areas covered: The authors provide an overview of the historical and ongoing issues in modeling and data analysis related to gonadotropin secretion in the field of both physiology and neuroendocrinology. They mention the different mathematical formalisms involved, their interest and limits. They also discuss open statistical questions in signal analysis associated with key endocrine issues and review recent advances in the modeling of the intracellular pathways activated by gonadotropins, which yields promising development for innovative approaches in drug discovery.

Expert opinion: The greatest challenge to be tackled in computational modeling of pituitary gonadotropin signaling is the embedding of gonadotropin signaling within its natural multi-scale environment, from the single cell level, to the organic and whole HPG level. The development of modeling approaches of G protein-coupled receptor signaling, together with multicellular systems biology may lead to unexampled mechanistic understanding with critical expected fallouts in the therapeutic management of reproduction.

Keywords:FSH  GnRH  GPCR signaling  hormone rhythms  LH  mathematical models  multi-scale modeling  systems biology
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