| Literature DB >> 29670517 |
Tiina Manninen1, Riikka Havela1, Marja-Leena Linne1.
Abstract
The computational neuroscience field has heavily concentrated on the modeling of neuronal functions, largely ignoring other brain cells, including one type of glial cell, the astrocytes. Despite the short history of modeling astrocytic functions, we were delighted about the hundreds of models developed so far to study the role of astrocytes, most often in calcium dynamics, synchronization, information transfer, and plasticity in vitro, but also in vascular events, hyperexcitability, and homeostasis. Our goal here is to present the state-of-the-art in computational modeling of astrocytes in order to facilitate better understanding of the functions and dynamics of astrocytes in the brain. Due to the large number of models, we concentrated on a hundred models that include biophysical descriptions for calcium signaling and dynamics in astrocytes. We categorized the models into four groups: single astrocyte models, astrocyte network models, neuron-astrocyte synapse models, and neuron-astrocyte network models to ease their use in future modeling projects. We characterized the models based on which earlier models were used for building the models and which type of biological entities were described in the astrocyte models. Features of the models were compared and contrasted so that similarities and differences were more readily apparent. We discovered that most of the models were basically generated from a small set of previously published models with small variations. However, neither citations to all the previous models with similar core structure nor explanations of what was built on top of the previous models were provided, which made it possible, in some cases, to have the same models published several times without an explicit intention to make new predictions about the roles of astrocytes in brain functions. Furthermore, only a few of the models are available online which makes it difficult to reproduce the simulation results and further develop the models. Thus, we would like to emphasize that only via reproducible research are we able to build better computational models for astrocytes, which truly advance science. Our study is the first to characterize in detail the biophysical and biochemical mechanisms that have been modeled for astrocytes.Entities:
Keywords: astrocyte; astrocyte network; computational model; glia; intracellular calcium; neuron-astrocyte network; simulation; synapse
Year: 2018 PMID: 29670517 PMCID: PMC5893839 DOI: 10.3389/fncom.2018.00014
Source DB: PubMed Journal: Front Comput Neurosci ISSN: 1662-5188 Impact factor: 2.380
List of astrocyte and neuron-astrocyte models published each year.
| 1995 | Roth et al., | 1 |
| 2002 | Höfer et al., | 1 |
| 2003 | Nadkarni and Jung, | 1 |
| 2004 | Goto et al., | 2 |
| 2005 | Bellinger, | 4 |
| 2006 | Bennett et al., | 4 |
| 2007 | Di Garbo et al., | 6 |
| 2008 | Bennett et al., | 6 |
| 2009 | Allegrini et al., | 8 |
| 2010 | Edwards and Gibson, | 5 |
| 2011 | Amiri et al., | 12 |
| 2012 | Amiri et al., | 9 |
| 2013 | Amiri et al., | 10 |
| 2014 | Lallouette et al., | 4 |
| 2015 | Komin et al., | 9 |
| 2016 | Amiri et al., | 10 |
| 2017 | Chan et al., | 9 |
| 2018 | Ding et al., | 5 |
| All | 106 |
Models are ordered alphabetically for each year of publication. Altogether 106 models have been published by the end of 2017. For chosen criteria, see section 2.2.
Characteristics of single astrocyte models.
| De Young and Keizer ( | ||||||||
| Bennett et al., | 1 | [Glu]syn | [Ca2+], [EET]ext, | CICR, endogenous buffer, leak from ER into cyt, SERCA | Dcyt: [IP3],Dext: [EET]ext | No | [EET]ext | Vasc. |
| Chander and Chakravarthy, | 1 | Current, [Glu]syn | [Ca2+], [EET]ext, [GLC], | CICR, endogenous buffer, leak from ER into cyt, SERCA | No | No | [EET]ext | Vasc. |
| De Pittà et al., | 1 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| Farr and David, | 1 | ρ, [K+]N | [Ca2+], [Ca2+]ER, [EET], | CICR, endogenous buffer, leak from ER into cyt, SERCA | No | No | [K+]ext | Vasc. |
| Gibson et al., | 1 | [Glu]syn | χ, [ATP]ext, [Ca2+], G, | CICR, endogenous and exogenous buffers, leak from ER into cyt, SERCA | Dext: [ATP]ext | No | [ATP]ext | Vasc. |
| Hadfield et al., | 1 | [Glu]syn | [20-HETE], [Ca2+], [EET], | CICR, endogenous buffer, leak from ER into cyt, SERCA | No | No | [20-HETE], [EET] | Vasc. |
| Kenny et al., | 1 | [Glu]syn, [K+]N, [NO]N | [Ca2+], [Ca2+]ER, [EET], | CICR, endogenous and exogenous buffers, leak from ER into cyt, SERCA, TRPV4 | No | No | [K+]ext | Vasc. |
| Komin et al., | 1 | Spon. | CICR, immobile and mobile buffers, leak from ER into cyt, SERCA | Dcyt: [Ca2+], | No | [Ca2+] | Ca2+ | |
| 1 | Spon. | [Ca2+], [Ca2+]ER | CICR, influx, leak from ER into cyt, MCU, mitochondrial NCX, PMCA, SERCA | No | No | [Ca2+] | Ca2+ | |
| Mesiti et al., | 1 | [Ca2+], [IP3] | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ | |
| Roth et al., | 1 | [IP3] | [Ca2+], [Ca2+]ER, | CICR, leak from ER into cyt, SERCA | Dcyt: [Ca2+],DER: [Ca2+]ER | No | [Ca2+] | Ca2+ |
| Skupin et al., | 1 | Spon. | CICR, immobile and mobile exogenous buffers, leak from ER into cyt, SERCA | Dcyt: [Ca2+], | No | [Ca2+] | Ca2+ | |
| Witthoft and Karniadakis, | 1 | [Glu]syn, [K+]N | [Ca2+], [EET], | CICR, endogenous buffer, leak from ER into cyt, SERCA, TRPV4 | No | No | [K+]ext | Vasc. |
| Witthoft et al., | 1 | [Glu]syn, [K+]N | [Ca2+], [EET], | CICR, endogenous buffer, leak from ER into cyt, SERCA, TRPV4 | No | No | [K+]ext | Vasc. |
| Höfer et al. ( | ||||||||
| Lavrentovich and Hemkin, | 1 | Spon. | [Ca2+], [Ca2+]ER, [IP3] | CICR, efflux, influx, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| Toivari et al., | 1 | [5-HT]syn | [Ca2+], [Ca2+]ER, [IP3], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, P2XR, SERCA | No | No | [Ca2+] | Ca2+ |
| Zeng et al., | 1 | Spon. | [Ca2+], [Ca2+]ER, H-H channel kinetics, [IP3] | CICR, efflux, leak from ER into cyt, SERCA, 4 types of VGCCs | No | No | [Ca2+] | Ca2+ |
| De Young and Keizer ( | ||||||||
| De Pittà et al., | 1 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| 1 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ | |
| 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ | |
| Diekman et al., | 1 | GLC, O2,out | ΔΨ, [ADP], [ADP]mito, [Ca2+]ER, [Ca2+]mito, [Ca2+]ps, | Buffer, CICR, leak from ER into cyt, MCU, mitochondrial NCX, SERCA | No | No | [ATP]mito | Home. |
| 1 | O2,mito, Pyr | ΔΨ, [ADP]mito, [Ca2+]mito, [NADH]mito | MCU, mitochondrial NCX | No | No | [ATP]mito | Home. | |
| Ding et al., | 1 | Spon. | [Ca2+], [Ca2+]ER, H-H channel kinetics, [IP3], detailed IP3R | CCE, CICR, efflux, leak from ER into cyt, SERCA, 2 types of VGCCs, contribution of DAG/PKC to VGCCs | No | No | [Ca2+] | Ca2+ |
| Handy et al., | 1 | [IP3] | [Ca2+], [Ca2+]free, | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, PMCA, SERCA | No | No | [Ca2+] | Ca2+ |
| Oschmann et al., | 1 | Glusyn | [Ca2+], [Ca2+]ER, | CICR, leak from ER into cyt, NCX, SERCA | No | No | [Ca2+] | Ca2+ |
| Riera et al., | 1 | Spon. | [Ca2+], [Ca2+]free, | CCE, CICR, efflux, influx via channels, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| Riera et al., | 1 | Spon. | [Ca2+], [Ca2+]free, | CCE, CICR, efflux, influx via channels, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| Taheri et al., | 1 | [IP3] | [Ca2+], [Ca2+]free, | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, PMCA, SERCA | No | No | [Ca2+] | Ca2+ |
| Dupont et al., | 1 | [Glu]syn | [Ca2+], [DAG], [DIM], | CICR, efflux, influx, leak from ER into cyt, SERCA | No | No | [Ca2+] | Ca2+ |
| Karimi et al., | 1 | Ca2+ | Ca2+, | CICR, efflux, leak from ER into cyt, SERCA | No | No | Ca2+ | Ca2+ |
| Larter and Craig, | 1 | [Glu]syn | [Ca2+], [Ca2+]ER, [Glu]ext, [IP3] | CICR, efflux, Glu-dependent influx, influx, leak from ER into cyt, SERCA | No | No | [Glu]ext | Ca2+ |
| López-Caamal et al., | 1 | [Ca2+] | CICR, immobile endogenous and exogenous buffers, efflux via pump, influx via IP3-dependent channel, perturbation flux, RyR, SERCA | Dcyt: [Ca2+],DER: [Ca2+]ER | No | [Ca2+] | Ca2+ | |
| Montaseri and Yazdanpanah, | 1 | Syn. act. | Ca2+, | Efflux, influx, IP3-dependent influx | No | No | Ca2+ | Ca2+ |
This table shows the following: model, number (No.) of astrocytes modeled, input for the astrocytes, astrocytic variables described by differential equations, astrocytic Ca.
Characteristics of astrocyte network models.
| De Young and Keizer ( | ||||||||
| Bennett et al., | 19–57 | [ATP]ext | χ, [ATP]ext, [Ca2+], | CICR, endogenous buffer, leak from ER into cyt, SERCA | Dcyt: [IP3], Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Bennett et al., | 19–95 | [ATP]ext | χ, [ATP]ext, [Ca2+], | CICR, endogenous buffer, leak from ER into cyt, SERCA | Dcyt: [IP3], Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Bennett et al., | 1–7 | [Glu]syn | [Ca2+], [EET]ext, | CICR, endogenous buffer, leak from ER into cyt, SERCA | Dcyt: [IP3], Dext: [EET]ext | No | [EET]ext | Vasc. |
| Gibson et al., | 3–n/a | [ATP]ext | χ, [ATP]ext, [Ca2+], | CICR, endogenous buffer, leak from ER into cyt, SERCA | Dcyt: [IP3], Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Goto et al., | 200 | [Glu]syn | [Ca2+], [IP3], detailed IP3R | CICR, leak from ER into cyt, SERCA | No | Ca2+, IP3 | [Ca2+] | Ca2+ |
| MacDonald and Silva, | 1–200 | [Glu]syn | [ATP]ext, [Ca2+], [Ca2+]ER, | CICR, endogenous buffer, leak from ER into cyt, leak from ext into cyt, PMCA, SERCA | Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Stamatakis and Mantzaris, | 1–n/a | [ATP]ext | [ATP]ext, [Ca2+], | CICR, leak from ER into cyt, SERCA | Dcyt: [IP3], Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Stamatakis and Mantzaris, | 1–n/a | [ATP]ext | [ATP]ext, [Ca2+], | CICR, leak from ER into cyt, SERCA | Dext: [ATP]ext | No | [ATP]ext | Ca2+ |
| Höfer et al. ( | ||||||||
| Bellinger, | 9 | [IP3] | [ATP]ext, [Ca2+], [Ca2+]ER, [Glu]ext, [IP3], | CCE, CICR, efflux via pump, Glu-dependent ER release, Glu-dependent influx, leak from ER into cyt, leak from ext into cyt, P2XR, SERCA | No | Ca2+, IP3 | [ATP]ext, [Glu]ext | Ca2+ |
| Höfer et al., | 1–361 | Rate of [PLCβ] | [Ca2+], [Ca2+]ER, [IP3], | CCE, CICR, efflux via pump, leak from ER into cyt, leak from ext into cyt, SERCA | Dcyt: [Ca2+], [IP3] | Ca2+, IP3 | [Ca2+] | Ca2+ |
| Li et al., | 3–300 | Spon. | [Ca2+], [Ca2+]ER, [Ca2+]ext, H-H channel kinetics, [IP3], [K+], [K+]ext, | CICR, efflux, efflux via pump, leak from ER into cyt, SERCA, VGCC | Dcyt: [Ca2+], [IP3],Dext: [Ca2+]ext, [K+]ext, | IP3 | [Ca2+] | Ca2+ |
| De Young and Keizer ( | ||||||||
| Edwards and Gibson, | 361 | [ATP]ext | χ, [ATP]ext, [Ca2+], | CICR, endogenous and exogenous buffers, leak from ER into cyt, SERCA | Dcyt: [Ca2+], [IP3],Dext: [ATP]ext | IP3 | [ATP]ext | Ca2+ |
| Ghosh et al., | 2 | [GLC]ext, [Gln]ext, [Glu]ext | [Ca2+], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, SERCA | No | IP3 | [LAC] | Vasc. |
| Goldberg et al., | 1–100 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Kazantsev, | 30 | Spon. | [Ca2+], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Lallouette et al., | 1,331 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Matrosov and Kazantsev, | 1–10 | Spon. | [Ca2+], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Ullah et al., | 1–3 | [Glu]syn | [Ca2+], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Wallach et al., | 130 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | [Ca2+] | Ca2+ |
| Wei and Shuai, | 169 | [IP3] | [Ca2+], | CICR, leak from ER into cyt, SERCA | Dcyt: [Ca2+], [IP3] | IP3 | [Ca2+] | Ca2+ |
| Iacobas et al., | 625 | [ATP]ext, [UTP]ext | [ATP]ext, [Ca2+], [IP3], [UTP]ext | CICR, efflux via pump, P2XR, sequestration flux | Dext: [ATP]ext, [UTP]ext | IP3 | [ATP]ext, [UTP]ext | Ca2+ |
| Kang and Othmer, | 11 | Glusyn | [ATP]ext, [Ca2+], [CaPKC], [IP3], [IP3R] | CICR, leak from ER into cyt, SERCA | Dcyt: [Ca2+], [CaPKC], [IP3], Dext: [ATP]ext | IP3 | [ATP]ext | Ca2+ |
This table shows the following: model, number (No.) of astrocytes modeled, input for the astrocytes, astrocytic variables described by differential equations, astrocytic Ca.
Characteristics of neuron-astrocyte synapse models.
| De Young and Keizer ( | ||||||||
| Guo et al., | 1 | [Ca2+], | CICR, leak from ER into cyt, ATP-independent ER pump | No | No | Ca2+ | ||
| Li et al., | 1 | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | ||
| Li et al., | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | ||
| Li et al., | 1 | [GABA]syn | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | |
| Liu et al., | 1 | [2-AG]post | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Plast. |
| Nadkarni and Jung, | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | ||
| Nadkarni and Jung, | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | ||
| Nadkarni and Jung, | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Hyper. | |
| Nadkarni and Jung, | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Plast. |
| Nadkarni et al., | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Ca2+] | Inf. |
| Tang et al., | 1 | NT | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Inf. | |
| Tang et al., | 1 | NT | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Inf. | |
| Valenza et al., | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Ca2+ | ||
| Volman et al., | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Inf. | ||
| Wade et al., | 1 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | Ca2+, | Plast. | |
| Wade et al., | 1 | [2-AG]post | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Plast. |
| Höfer et al. ( | ||||||||
| Di Garbo et al., | 1 | [Ca2+], [Ca2+]ER, [IP3], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, P2XR, SERCA | No | No | Ca2+ | ||
| Di Garbo, | 1 | [Ca2+], [Ca2+]ER, [IP3], | CCE, CICR, efflux, leak from ER into cyt, leak from ext into cyt, P2XR, SERCA | No | No | Ca2+ | ||
| DiNuzzo et al., | 1 | [Na+] | [ATP], [Ca2+], [Ca2+]ER, [G6P], [GAP], [GLC], [Gly], [IP3], [LAC], [Na+], [NADH],[O2], [PCr], [PEP], [Pyr] | CICR, leak from ER into cyt, leak from ext into cyt, NCX, PMCA, SERCA | No | No | Vasc. | |
| De Young and Keizer ( | ||||||||
| De Pittà and Brunel, | 1 | [Glu]syn | γ, [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Plast. |
| Tewari and Majumdar, | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Plast. |
| Tewari and Majumdar, | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Plast. |
| Tewari and Parpura, | 1 | [Glu]syn | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | No | [Glu]ext | Synch. |
| Amiri et al., | 1 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Synch. | |
| Amiri et al., | 1 | NT | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Synch. | |
| Amiri et al., | 1 | NT | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Inf. | |
| Amiri et al., | 1 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Synch. | |
| Nazari et al., | 1 | NT | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Inf. | |
| 1 | NT | Ca2+, | Efflux, influx, IP3-dependent influx | No | No | Inf. | ||
| Nazari et al., | 1 | NT | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Inf. | |
| Nazari et al., | 1 | NT | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Inf. | |
| Nazari et al., | 1 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Synch. | |
| 1 | Syn. act. | Ca2+, IP3 | Efflux, influx, IP3-dependent influx | No | No | Synch. | ||
| Oku et al., | 1 | Syn. act. | Ca2+, 2 variables | Not specified | No | No | Variable | Ca2+ |
| Postnov et al., | 1 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | No | No | Plast. | |
| Silchenko and Tass, | 1 | [Glu]syn | [Ca2+], | CICR, efflux, Glu-dependent influx, influx, leak from ER into cyt, SERCA | Dext: [Glu]ext | No | [Glu]ext | Ca2+ |
| Sotero and Martínez-Cancino, | 1 | Syn. act. | [Ca2+], | CICR, efflux, influx, IP3-dependent influx (depends also on IP3 in neighboring astrocytic microdomains), leak from ER into cyt, SERCA | No | No | Synch. | |
This table shows the following: model, number (No.) of astrocytes modeled, input for the astrocytes, astrocytic variables described by differential equations, astrocytic Ca.
Characteristics of neuron-astrocyte network models.
| De Young and Keizer ( | ||||||||
| Amiri et al., | 1–5 | NT | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | Synch. | |
| Amiri et al., | 1–50 | NT | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | Synch. | |
| Chan et al., | 10,000 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | Synch. | ||
| Li et al., | 50 | NT | [ATP]ext, [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | Dext: [ATP]ext, [Glu]ext | IP3 | Inf. | |
| Liu et al., | 1–25,000 | [2-AG]post | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | IP3 | [Glu]ext | Plast. |
| Naeem et al., | 1–5 | [2-AG]post | [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | No | IP3 | [Glu]ext | Plast. |
| Yang and Yeo, | 28 | [Glu]syn | [ATP]ext, [Ca2+], [Glu]ext, | CICR, leak from ER into cyt, SERCA | Dext: [ATP]ext, [Glu]ext | IP3 | [ATP]ext, [Glu]ext | Inf. |
| Yao et al., | 1–6 | [ATP]ext, [Glu]syn, [Glu]ext | χ, [ATP]ext, [Ca2+], [Ca2+]ER, G, [Glu]ext, | Buffer, CICR, leak from ER into cyt, leak from ext into cyt, PMCA, SERCA | Dext: [ATP]ext, [K+]ext, [Na+]ext | No | [ATP]ext, [Glu]ext | Hyper. |
| Höfer et al. ( | ||||||||
| Allegrini et al., | 400 | [Ca2+], [IP3], | CICR, efflux via pump, SERCA | Dcyt: [Ca2+], [IP3] | Ca2+, IP3 | Synch. | ||
| De Young and Keizer ( | ||||||||
| Liu and Li, | n/a | [Glu]syn | [Ca2+], [IP3], | CICR, efflux via pump, leak from ER into cyt, SERCA | No | Ca2+, IP3 | Inf. | |
| Liu and Li, | 6 | [Ca2+], [IP3], | CICR, efflux via pump, leak from ER into cyt, SERCA | No | Ca2+, IP3 | Inf. | ||
| Tang et al., | 100 | [Ca2+], | CICR, leak from ER into cyt, SERCA | No | IP3 | Hyper. | ||
| Amiri et al., | 2 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | IP3 | Hyper. | |
| Amiri et al., | 2 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | IP3 | Synch. | |
| Haghiri et al., | 1–99 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | No | No | Synch. | |
| 1–99 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | No | No | Synch. | ||
| Haghiri et al., | 1–500 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | No | No | Synch. | |
| Hayati et al., | 1-n/a | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | No | No | Synch. | |
| 1-n/a | Syn. act. | Ca2+, | Efflux, influx, IP3-dependent influx, | No | No | Synch. | ||
| Mesiti et al., | 1–20 | [Ca2+], | [Ca2+], [Ca2+]ER, [IP3] | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | Dcyt: [Ca2+], [IP3] | IP3 | Ca2+ | |
| Postnov et al., | 1–10 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA, | Dext: ATPext, Gluext | Ca2+, IP3 | Ca2+ | |
| Soleimani et al., | 1–24 | Syn. act. | Ca2+, | CICR, efflux, influx, IP3-dependent influx, leak from ER into cyt, SERCA | No | No | Synch. | |
This table shows the following: model, number (No.) of astrocytes modeled, input for the astrocytes, astrocytic variables described by differential equations, astrocytic Ca.
Figure 1Evolution of astrocyte and neuron-astrocyte models published from 1995 to 2017. The starting point of an arrow represents the model which was used as a reference by the latter model indicated as the arrowhead. The number of arrows was minimized so that the minimum number of arrows are pointing to the arrowheads. This means basically that all the previous models in the same chain of arrows might have been used to built the model in the arrowhead, but of course not all of them probably were necessary. With blue, we presented De Young and Keizer (1992) and Li and Rinzel (1994) -type models. With pink, we presented Höfer et al. (2002) -type models. With purple, we presented De Young and Keizer (1992), Li and Rinzel (1994), and Höfer et al. (2002) -type models. All the other types of models appear green.