Ca2+ microdomains and spatially resolved Ca2+ signals are highly relevant for cell function. In T cells, local Ca2+ signaling at the immunological synapse (IS) is required for downstream effector functions. We present experimental evidence that the relocation of the MTOC towards the IS during polarization drags mitochondria along with the microtubule network. From time-lapse fluorescence microscopy we conclude that mitochondria rotate together with the cytoskeleton towards the IS. We hypothesize that this movement of mitochondria towards the IS together with their functionality of absorption and spatial redistribution of Ca2+ is sufficient to significantly increase the cytosolic Ca2+ concentration. To test this hypothesis we developed a whole cell model for Ca2+ homoeostasis involving specific geometries for mitochondria and use the model to calculate the spatial distribution of Ca2+ concentrations within the cell body as a function of the rotation angle and the distance from the IS. We find that an inhomogeneous distribution of PMCA pumps on the cell membrane, in particular an accumulation of PMCA at the IS, increases the global Ca2+ concentration and decreases the local Ca2+ concentration at the IS with decreasing distance of the MTOC from the IS. Unexpectedly, a change of CRAC/Orai activity is not required to explain the observed Ca2+ changes. We conclude that rotation-driven relocation of the MTOC towards the IS together with an accumulation of PMCA pumps at the IS are sufficient to control the observed Ca2+ dynamics in T-cells during polarization.

Cytoskeleton rotation relocates mitochondria to the immunological synapse and increases calcium signals / MACCARI, ILARIA; Zhao, Renping; Peglow, Martin; Schwarz, Karsten; Hornak, Ivan; Pasche, Mathias; Quintana, Ariel; Hoth, Markus; Qu, Bin; Rieger, Heiko. - In: CELL CALCIUM. - ISSN 0143-4160. - 60:5(2016), pp. 309-321. [10.1016/j.ceca.2016.06.007]

Cytoskeleton rotation relocates mitochondria to the immunological synapse and increases calcium signals

MACCARI, ILARIA
;
2016

Abstract

Ca2+ microdomains and spatially resolved Ca2+ signals are highly relevant for cell function. In T cells, local Ca2+ signaling at the immunological synapse (IS) is required for downstream effector functions. We present experimental evidence that the relocation of the MTOC towards the IS during polarization drags mitochondria along with the microtubule network. From time-lapse fluorescence microscopy we conclude that mitochondria rotate together with the cytoskeleton towards the IS. We hypothesize that this movement of mitochondria towards the IS together with their functionality of absorption and spatial redistribution of Ca2+ is sufficient to significantly increase the cytosolic Ca2+ concentration. To test this hypothesis we developed a whole cell model for Ca2+ homoeostasis involving specific geometries for mitochondria and use the model to calculate the spatial distribution of Ca2+ concentrations within the cell body as a function of the rotation angle and the distance from the IS. We find that an inhomogeneous distribution of PMCA pumps on the cell membrane, in particular an accumulation of PMCA at the IS, increases the global Ca2+ concentration and decreases the local Ca2+ concentration at the IS with decreasing distance of the MTOC from the IS. Unexpectedly, a change of CRAC/Orai activity is not required to explain the observed Ca2+ changes. We conclude that rotation-driven relocation of the MTOC towards the IS together with an accumulation of PMCA pumps at the IS are sufficient to control the observed Ca2+ dynamics in T-cells during polarization.
2016
CRAC channels; Immunological synapse (IS); Mitochondria; Orai channels; Plasma membrane calcium ATPase (PMCA); Rotation model; Physiology; Molecular Biology; Cell Biology
01 Pubblicazione su rivista::01a Articolo in rivista
Cytoskeleton rotation relocates mitochondria to the immunological synapse and increases calcium signals / MACCARI, ILARIA; Zhao, Renping; Peglow, Martin; Schwarz, Karsten; Hornak, Ivan; Pasche, Mathias; Quintana, Ariel; Hoth, Markus; Qu, Bin; Rieger, Heiko. - In: CELL CALCIUM. - ISSN 0143-4160. - 60:5(2016), pp. 309-321. [10.1016/j.ceca.2016.06.007]
File allegati a questo prodotto
File Dimensione Formato  
Maccari_Cytoskeleton_2016.pdf

solo gestori archivio

Tipologia: Licenza (contratto editoriale)
Licenza: Tutti i diritti riservati (All rights reserved)
Dimensione 3.53 MB
Formato Adobe PDF
3.53 MB Adobe PDF   Contatta l'autore

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/930372
Citazioni
  • ???jsp.display-item.citation.pmc??? 13
  • Scopus 27
  • ???jsp.display-item.citation.isi??? 26
social impact