TY - JOUR
T1 - ER sheet persistence is coupled to myosin 1c-regulated dynamic actin filament arrays
AU - Joensuu, Merja
AU - Belevich, Ilya
AU - Rämö, Olli
AU - Nevzorov, Ilya
AU - Vihinen, Helena
AU - Puhka, Maijamaija
AU - Witkos, Tomasz M.
AU - Lowe, Martin
AU - Vartiainen, Maria K.
AU - Jokitalo, Eija
PY - 2014/4/1
Y1 - 2014/4/1
N2 - The endoplasmic reticulum (ER) comprises a dynamic three-dimensional (3D) network with diverse structural and functional domains. Proper ER operation requires an intricate balance within and between dynamics, morphology, and functions, but how these processes are coupled in cells has been unclear. Using live-cell imaging and 3D electron microscopy, we identify a specific subset of actin filaments localizing to polygons defined by ER sheets and tubules and describe a role for these actin arrays in ER sheet persistence and, thereby, in maintenance of the characteristic network architecture by showing that actin depolymerization leads to increased sheet fluctuation and transformations and results in small and less abundant sheet remnants and a defective ER network distribution. Furthermore, we identify myosin 1c localizing to the ER-associated actin filament arrays and reveal a novel role for myosin 1c in regulating these actin structures, as myosin 1c manipulations lead to loss of the actin filaments and to similar ER phenotype as observed after actin depolymerization. We propose that ER-associated actin filaments have a role in ER sheet persistence regulation and thus support the maintenance of sheets as a stationary subdomain of the dynamic ER network. © 2014 Joensuu et al. This article is distributed by The American Society for Cell Biology under license from the author(s).
AB - The endoplasmic reticulum (ER) comprises a dynamic three-dimensional (3D) network with diverse structural and functional domains. Proper ER operation requires an intricate balance within and between dynamics, morphology, and functions, but how these processes are coupled in cells has been unclear. Using live-cell imaging and 3D electron microscopy, we identify a specific subset of actin filaments localizing to polygons defined by ER sheets and tubules and describe a role for these actin arrays in ER sheet persistence and, thereby, in maintenance of the characteristic network architecture by showing that actin depolymerization leads to increased sheet fluctuation and transformations and results in small and less abundant sheet remnants and a defective ER network distribution. Furthermore, we identify myosin 1c localizing to the ER-associated actin filament arrays and reveal a novel role for myosin 1c in regulating these actin structures, as myosin 1c manipulations lead to loss of the actin filaments and to similar ER phenotype as observed after actin depolymerization. We propose that ER-associated actin filaments have a role in ER sheet persistence regulation and thus support the maintenance of sheets as a stationary subdomain of the dynamic ER network. © 2014 Joensuu et al. This article is distributed by The American Society for Cell Biology under license from the author(s).
U2 - 10.1091/mbc.E13-12-0712
DO - 10.1091/mbc.E13-12-0712
M3 - Article
C2 - 24523293
SN - 1059-1524
VL - 25
SP - 1111
EP - 1126
JO - Molecular Biology of the Cell
JF - Molecular Biology of the Cell
IS - 7
ER -