We exploited a variety of mouse models to assess the roles of JP45/CASQ1 and JP45/CASQ2 on calcium entry in slow twitch muscles. In FDB fibres isolated from JP45/CASQ1/CASQ2 triple KO mice, calcium transients induced by tetanic stimulation rely on calcium entry via La3+- and nifedipine-sensitive calcium channels. The comparison of excitation-coupled calcium entry (ECCE) between FDB fibres from WT, JP45KO, CASQ1KO, CASQ2KO, JP45/CASQ1 double KO, JP45/CASQ2 double KO and JP45/CASQ1/CASQ2 triple KO shows that ECCE enhancement requires ablation of both CASQs and JP45. Calcium entry activated by ablation of both JP45/CASQ1 and JP45CASQ2 complexes supports tetanic force development in slow twitch Soleus muscles. In addition, we show that CASQs interact with JP45 at [Ca2+] similar to those present in the lumen of the sarcoplasmic reticulum at rest, while [Ca2+] similar to those present in the SR lumen after depolarisation-induced calcium release cause the dissociation of JP45 from CASQs. Our results show that the complex JP45/CASQs is a negative regulator of ECCE, and that tetanic force development in slow twitch muscles is supported by the dynamic interaction between JP45 and CASQs.

Role of the JP45-calsequestrin complex on calcium entry in slow twitch skeletal muscles

BONGIANINO, ROSSANA;PRIORI, SILVIA GIULIANA;
2016-01-01

Abstract

We exploited a variety of mouse models to assess the roles of JP45/CASQ1 and JP45/CASQ2 on calcium entry in slow twitch muscles. In FDB fibres isolated from JP45/CASQ1/CASQ2 triple KO mice, calcium transients induced by tetanic stimulation rely on calcium entry via La3+- and nifedipine-sensitive calcium channels. The comparison of excitation-coupled calcium entry (ECCE) between FDB fibres from WT, JP45KO, CASQ1KO, CASQ2KO, JP45/CASQ1 double KO, JP45/CASQ2 double KO and JP45/CASQ1/CASQ2 triple KO shows that ECCE enhancement requires ablation of both CASQs and JP45. Calcium entry activated by ablation of both JP45/CASQ1 and JP45CASQ2 complexes supports tetanic force development in slow twitch Soleus muscles. In addition, we show that CASQs interact with JP45 at [Ca2+] similar to those present in the lumen of the sarcoplasmic reticulum at rest, while [Ca2+] similar to those present in the SR lumen after depolarisation-induced calcium release cause the dissociation of JP45 from CASQs. Our results show that the complex JP45/CASQs is a negative regulator of ECCE, and that tetanic force development in slow twitch muscles is supported by the dynamic interaction between JP45 and CASQs.
2016
Cardiovascular & Hematology Research covers all levels of investigation into the normal and pathogenic functions of the heart, vasculature, and soluble blood components. Cell biology of vascular tissue and formed elements of blood, biochemical regulation of thrombosis, therapeutic strategies for treatment of cardiac and vascular diseases are also considered. Resources on hematologic oncology are excluded and are placed in the Oncogenesis & Cancer Research category.
Esperti anonimi
Inglese
Internazionale
STAMPA
291
39
248
249
2
calcium-binding protein; excitation-contraction coupling (E-C coupling); gene knockout; muscle physiology; sarcoplasmic reticulum (SR)
9
info:eu-repo/semantics/article
262
Mosca, Barbara; Eckhardt, Jan; Bergamelli, Leda; Treves, Susan; Bongianino, Rossana; De Negri, Marco; Priori, SILVIA GIULIANA; Protasi, Feliciano; Zor...espandi
1 Contributo su Rivista::1.1 Articolo in rivista
none
File in questo prodotto:
Non ci sono file associati a questo prodotto.

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/11571/1122673
Citazioni
  • ???jsp.display-item.citation.pmc??? 8
  • Scopus 13
  • ???jsp.display-item.citation.isi??? 12
social impact