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Involvement of CaV3.1 T-type calcium channels in cell proliferation in mouse preadipocytes
Atsushi Oguri1, Tomofumi Tanaka, Haruko Iida
1Department of Cardiovascular Medicine, University of Tokyo, Tokyo, Japan.
Abstract:
Voltage-gated Ca(2+) channels (Ca(V)) are ubiquitously expressed in various cell types and play vital roles in regulation of cellular functions including proliferation. However, the molecular identities and function of Ca(V) remained unexplored in preadipocytes. Therefore, whole cell voltage-clamp technique, conventional/quantitative real-time RT-PCR, Western blot, small interfering RNA (siRNA) experiments, and immunohistochemical analysis were applied in mouse primary cultured preadipocytes as well as mouse 3T3-L1 preadipocytes. The effects of Ca(V) blockers on cell proliferation and cell cycle were also investigated. Whole cell recordings of 3T3-L1 preadipocytes showed low-threshold Ca(V), which could be inhibited by mibefradil, Ni(2+) (IC(50) of 200 muM), and NNC55-0396. Dominant expression of alpha(1G) mRNA was detected among Ca(V) transcripts (alpha(1A)-alpha(1I)), supported by expression of Ca(V)3.1 protein encoded by alpha(1G) gene, with immunohistochemical studies and Western blot analysis. siRNA targeted for alpha(1G) markedly inhibited Ca(V). Dominant expression of alpha(1G) mRNA and expression of Ca(V)3.1 protein were also observed in mouse primary cultured preadipocytes. Expression level of alpha(1G) mRNA and Ca(V)3.1 protein significantly decreased in differentiated adipocytes. Mibefradil, NNC55-0396, a selective T-type Ca(V) blocker, but not diltiazem, inhibited cell proliferation in response to serum. NNC55-0396 and siRNA targeted for alpha(1G) also prevented cell cycle entry/progression. The present study demonstrates that the Ca(V)3.1 T-type Ca(2+) channel encoded by alpha(1G) subtype is the dominant Ca(V) in mouse preadipocytes and may play a role in regulating preadipocyte proliferation, a key step in adipose tissue development.
Insights
Voltage-gated calcium channels (Ca(V)) are crucial for cell functions. This study identifies the Ca(V)3.1 T-type calcium channel as dominant in mouse preadipocytes, regulating their proliferation.
Area of Science:
- Cell Biology
- Physiology
- Molecular Biology
Background:
- Voltage-gated calcium channels (Ca(V)) regulate diverse cellular functions, including proliferation.
- The specific Ca(V) subtypes and their roles in preadipocytes remain largely uncharacterized.
Purpose of the Study:
- To identify the molecular identity and functional role of Ca(V) channels in mouse preadipocytes.
- To investigate the effect of Ca(V) channel blockers on preadipocyte proliferation and cell cycle progression.
Main Methods:
- Whole-cell voltage-clamp electrophysiology in 3T3-L1 and primary preadipocytes.
- Quantitative real-time RT-PCR and Western blot to assess gene and protein expression.
- Small interfering RNA (siRNA) for gene silencing and immunohistochemistry for protein localization.
- Pharmacological inhibition of Ca(V) channels and cell proliferation/cell cycle assays.
Main Results:
- Low-threshold Ca(V) currents were detected in 3T3-L1 preadipocytes, inhibited by mibefradil and NNC55-0396.
- Dominant expression of alpha(1G) mRNA and Ca(V)3.1 protein was observed in both primary and 3T3-L1 preadipocytes.
- Alpha(1G) knockdown via siRNA significantly reduced Ca(V) activity.
- Selective T-type Ca(V) blockers (mibefradil, NNC55-0396) inhibited serum-induced preadipocyte proliferation and cell cycle progression.
- Alpha(1G) mRNA and Ca(V)3.1 protein levels decreased during adipocyte differentiation.
Conclusions:
- The Ca(V)3.1 T-type calcium channel, encoded by the alpha(1G) subtype, is the predominant Ca(V) in mouse preadipocytes.
- Ca(V)3.1 channels play a significant role in regulating preadipocyte proliferation, a critical process in adipose tissue development.
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