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Published on: March 15, 2018
A TRPC1 protein-dependent pathway regulates osteoclast formation and function
E-Ching Ong1, Vasyl Nesin, Courtney L Long
1Department of Cell Biology, University of Oklahoma Health Sciences Center, Oklahoma City, Oklahoma 73014, USA.
Abstract:
Ca(2+) signaling is essential for bone homeostasis and skeletal development. Here, we show that the transient receptor potential canonical 1 (TRPC1) channel and the inhibitor of MyoD family, I-mfa, function antagonistically in the regulation of osteoclastogenesis. I-mfa null mice have an osteopenic phenotype characterized by increased osteoclast numbers and surface, which are normalized in mice lacking both Trpc1 and I-mfa. In vitro differentiation of pre-osteoclasts derived from I-mfa-deficient mice leads to an increased number of mature osteoclasts and higher bone resorption per osteoclast. These parameters return to normal levels in osteoclasts derived from double mutant mice. Consistently, whole cell currents activated in response to the depletion of intracellular Ca(2+) stores are larger in pre-osteoclasts derived from I-mfa knock-out mice compared with currents in wild type mice and normalized in cells derived from double mutant mice, suggesting a cell-autonomous effect of I-mfa on TRPC1 in these cells. A new splice variant of TRPC1 (TRPC1ε) was identified in early pre-osteoclasts. Heterologous expression of TRPC1ε in HEK293 cells revealed that it is unique among all known TRPC1 isoforms in its ability to amplify the activity of the Ca(2+) release-activated Ca(2+) (CRAC) channel, mediating store-operated currents. TRPC1ε physically interacts with Orai1, the pore-forming subunit of the CRAC channel, and I-mfa is recruited to the TRPC1ε-Orai1 complex through TRPC1ε suppressing CRAC channel activity. We propose that the positive and negative modulation of the CRAC channel by TRPC1ε and I-mfa, respectively, fine-tunes the dynamic range of the CRAC channel regulating osteoclastogenesis.
Insights
The inhibitor of MyoD family, I-mfa, and the transient receptor potential canonical 1 (TRPC1) channel regulate bone health by controlling osteoclast formation. Their antagonistic roles fine-tune calcium signaling crucial for skeletal development.
Area of Science:
- Cell Biology
- Molecular Biology
- Physiology
Background:
- Calcium (Ca2+) signaling is vital for maintaining bone homeostasis and skeletal development.
- Osteoclastogenesis, the process of forming bone-resorbing cells, is a key target for regulating bone mass.
Purpose of the Study:
- To investigate the antagonistic roles of the transient receptor potential canonical 1 (TRPC1) channel and the inhibitor of MyoD family, I-mfa, in osteoclastogenesis.
- To identify novel TRPC1 splice variants involved in calcium signaling and bone regulation.
Main Methods:
- Utilized I-mfa null mice and double mutant (Trpc1/I-mfa) mice to study osteoclast numbers, bone surface, and resorption.
- Performed in vitro differentiation of pre-osteoclasts and measured whole-cell currents.
- Identified and characterized a novel TRPC1 splice variant (TRPC1ε) using heterologous expression in HEK293 cells.
Main Results:
- I-mfa deficiency led to osteopenia with increased osteoclast numbers and activity, which were normalized in double mutant mice.
- TRPC1ε was identified as a novel splice variant that amplifies Ca2+ release-activated Ca2+ (CRAC) channel activity by interacting with Orai1.
- I-mfa interacts with the TRPC1ε-Orai1 complex, suppressing CRAC channel activity, suggesting a cell-autonomous role in regulating osteoclastogenesis.
Conclusions:
- TRPC1 and I-mfa function antagonistically to regulate osteoclastogenesis and bone homeostasis.
- TRPC1ε amplifies CRAC channel activity, while I-mfa suppresses it, providing a mechanism for fine-tuning calcium signaling in osteoclasts.
- This interplay is crucial for regulating the dynamic range of CRAC channel activity and controlling osteoclast formation for skeletal health.
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