Nalazite se na CroRIS probnoj okolini. Ovdje evidentirani podaci neće biti pohranjeni u Informacijskom sustavu znanosti RH. Ako je ovo greška, CroRIS produkcijskoj okolini moguće je pristupi putem poveznice www.croris.hr
izvor podataka: crosbi !

Multi-scale stochastic organization-oriented coarse-graining exemplified on the human mitotic checkpoint (CROSBI ID 317436)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Henze, Richard ; Mu, Chunyan ; Puljiz, Mate ; Kamaleson, Nishanthan ; Huwald, Jan ; Haslegrave, John ; di Fenizio, Pietro Speroni ; Parker, David ; Good, Christopher ; Rowe, Jonathan E. et al. Multi-scale stochastic organization-oriented coarse-graining exemplified on the human mitotic checkpoint // Scientific reports, 9 (2019), 1; 1-17. doi: 10.1038/s41598-019-40648-w

Podaci o odgovornosti

Henze, Richard ; Mu, Chunyan ; Puljiz, Mate ; Kamaleson, Nishanthan ; Huwald, Jan ; Haslegrave, John ; di Fenizio, Pietro Speroni ; Parker, David ; Good, Christopher ; Rowe, Jonathan E. ; Ibrahim, Bashar ; Dittrich, Peter

engleski

Multi-scale stochastic organization-oriented coarse-graining exemplified on the human mitotic checkpoint

The complexity of biological models makes methods for their analysis and understanding highly desirable. Here, we demonstrate the orchestration of various novel coarse-graining methods by applying them to the mitotic spindle assembly checkpoint. We begin with a detailed fine-grained spatial model in which individual molecules are simulated moving and reacting in a three-dimensional space. A sequence of manual and automatic coarse-grainings finally leads to the coarsest deterministic and stochastic models containing only four molecular species and four states for each kinetochore, respectively. We are able to relate each more coarse-grained level to a finer one, which allows us to relate model parameters between coarse-grainings and which provides a more precise meaning for the elements of the more abstract models. Furthermore, we discuss how organizational coarse-graining can be applied to spatial dynamics by showing spatial organizations during mitotic checkpoint inactivation. We demonstrate how these models lead to insights if the model has different “meaningful” behaviors that differ in the set of (molecular) species. We conclude that understanding, modeling and analyzing complex biomolecular systems can greatly benefit from a set of coarse-graining methods that, ideally, can be automatically applied and that allow the different levels of abstraction to be related.

spindle assembly checkpoint ; coarse-graining methods

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

Podaci o izdanju

9 (1)

2019.

1-17

objavljeno

2045-2322

10.1038/s41598-019-40648-w

Povezanost rada

Matematika

Poveznice
Indeksiranost