Your browser doesn't support javascript.
loading
Pre-assembled Ca2+ entry units and constitutively active Ca2+ entry in skeletal muscle of calsequestrin-1 knockout mice.
Michelucci, Antonio; Boncompagni, Simona; Pietrangelo, Laura; Takano, Takahiro; Protasi, Feliciano; Dirksen, Robert T.
Affiliation
  • Michelucci A; Department of Pharmacology and Physiology, University of Rochester School of Medicine and Dentistry, Rochester, NY.
  • Boncompagni S; Center for Advanced Studies and Technologies, University G. d'Annunzio of Chieti, Chieti, Italy.
  • Pietrangelo L; Center for Advanced Studies and Technologies, University G. d'Annunzio of Chieti, Chieti, Italy.
  • Takano T; Department of Neuroscience, Imaging and Clinical Sciences, University G. d'Annunzio of Chieti, Chieti, Italy.
  • Protasi F; Center for Advanced Studies and Technologies, University G. d'Annunzio of Chieti, Chieti, Italy.
  • Dirksen RT; Department of Neuroscience, Imaging and Clinical Sciences, University G. d'Annunzio of Chieti, Chieti, Italy.
J Gen Physiol ; 152(10)2020 10 05.
Article in En | MEDLINE | ID: mdl-32761048
Store-operated Ca2+ entry (SOCE) is a ubiquitous Ca2+ influx mechanism triggered by depletion of Ca2+ stores from the endoplasmic/sarcoplasmic reticulum (ER/SR). We recently reported that acute exercise in WT mice drives the formation of Ca2+ entry units (CEUs), intracellular junctions that contain STIM1 and Orai1, the two key proteins mediating SOCE. The presence of CEUs correlates with increased constitutive- and store-operated Ca2+ entry, as well as sustained Ca2+ release and force generation during repetitive stimulation. Skeletal muscle from mice lacking calsequestrin-1 (CASQ1-null), the primary Ca2+-binding protein in the lumen of SR terminal cisternae, exhibits significantly reduced total Ca2+ store content and marked SR Ca2+ depletion during high-frequency stimulation. Here, we report that CEUs are constitutively assembled in extensor digitorum longus (EDL) and flexor digitorum brevis (FDB) muscles of sedentary CASQ1-null mice. The higher density of CEUs in EDL (39.6 ± 2.1/100 µm2 versus 2.0 ± 0.3/100 µm2) and FDB (16.7 ± 1.0/100 µm2 versus 2.7 ± 0.5/100 µm2) muscles of CASQ1-null compared with WT mice correlated with enhanced constitutive- and store-operated Ca2+ entry and increased expression of STIM1, Orai1, and SERCA. The higher ability to recover Ca2+ ions via SOCE in CASQ1-null muscle served to promote enhanced maintenance of peak Ca2+ transient amplitude, increased dependence of luminal SR Ca2+ replenishment on BTP-2-sensitive SOCE, and increased maintenance of contractile force during repetitive, high-frequency stimulation. Together, these data suggest that muscles from CASQ1-null mice compensate for the lack of CASQ1 and reduction in total releasable SR Ca2+ content by assembling CEUs to promote constitutive and store-operated Ca2+ entry.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Calsequestrin / Calcium / Muscle, Skeletal Limits: Animals Language: En Journal: J Gen Physiol Year: 2020 Document type: Article Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Calsequestrin / Calcium / Muscle, Skeletal Limits: Animals Language: En Journal: J Gen Physiol Year: 2020 Document type: Article Country of publication: United States