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Updated: Jul 3, 2026

Direct Imaging of ER Calcium with Targeted-Esterase Induced Dye Loading (TED)
Published on: May 7, 2013
Uncoupling of ER-mitochondrial calcium communication by transforming growth factor-beta
Pál Pacher1, Kumar Sharma, György Csordás
1Department of Pathology, Anatomy, and Cell Biology, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA.
Abstract:
Transforming growth factor-beta (TGF-beta) has been implicated as a key factor in mediating many cellular processes germane to disease pathogenesis, including diabetic vascular complications. TGF-beta alters cytosolic [Ca2+] ([Ca2+]c) signals, which in some cases may result from the downregulation of the IP3 receptor Ca2+ channels (IP3R). Ca2+ released by IP3Rs is effectively transferred from endoplasmic reticulum (ER) to the mitochondria to stimulate ATP production and to allow feedback control of the Ca2+ mobilization. To assess the effect of TGF-beta on the ER-mitochondrial Ca2+ transfer, we first studied the [Ca2+]c and mitochondrial matrix Ca2+ ([Ca2+]m) signals in single preglomerular afferent arteriolar smooth muscle cells (PGASMC). TGF-beta pretreatment (24 h) decreased both the [Ca2+]c and [Ca2+]m responses evoked by angiotensin II or endothelin. Strikingly, the [Ca2+]m signal was more depressed than the [Ca2+]c signal and was delayed. In permeabilized cells, TGF-beta pretreatment attenuated the rate but not the magnitude of the IP(3)-induced [Ca2+]c rise, yet caused massive depression of the [Ca2+]m responses. ER Ca2+ storage and mitochondrial uptake of added Ca2+ were not affected by TGF-beta. Also, TGF-beta had no effect on mitochondrial distribution and on the ER-mitochondrial contacts assessed by two-photon NAD(P)H imaging and electron microscopy. Downregulation of both IP3R1 and IP3R3 was found in TGF-beta-treated PGASMC. Thus, TGF-beta causes uncoupling of mitochondria from the ER Ca2+ release. The sole source of this would be suppression of the IP3R-mediated Ca2+ efflux, indicating that the ER-mitochondrial Ca2+ transfer depends on the maximal rate of Ca2+ release. The impaired ER-mitochondrial coupling may contribute to the vascular pathophysiology associated with TGF-beta production.
Insights
Transforming growth factor-beta (TGF-beta) impairs calcium transfer between the endoplasmic reticulum and mitochondria in smooth muscle cells. This uncoupling, driven by reduced IP3 receptor activity, may contribute to diabetic vascular complications.
Area of Science:
- Cell Biology
- Mitochondrial Function
- Vascular Physiology
Background:
- Transforming growth factor-beta (TGF-beta) is implicated in diabetic vascular complications.
- TGF-beta influences cytosolic calcium ([Ca2+]c) signals, potentially via inositol trisphosphate receptor (IP3R) calcium channels.
- Efficient transfer of calcium from the endoplasmic reticulum (ER) to mitochondria is crucial for cellular energy production and calcium signaling.
Purpose of the Study:
- To investigate the effect of TGF-beta on calcium transfer between the ER and mitochondria.
- To assess TGF-beta's impact on cytosolic and mitochondrial calcium ([Ca2+]m) signals in preglomerular afferent arteriolar smooth muscle cells (PGASMC).
Main Methods:
- Studied [Ca2+]c and [Ca2+]m signals in single PGASMC.
- Utilized angiotensin II and endothelin to evoke calcium responses.
- Examined IP3-induced calcium release in permeabilized cells.
- Assessed ER calcium storage, mitochondrial calcium uptake, ER-mitochondrial contacts, and IP3R expression.
Main Results:
- TGF-beta pretreatment significantly decreased both [Ca2+]c and [Ca2+]m responses.
- The [Ca2+]m signal was more profoundly depressed and delayed compared to the [Ca2+]c signal.
- TGF-beta attenuated the rate but not the magnitude of IP3-induced [Ca2+]c rise, while massively depressing [Ca2+]m responses.
- Downregulation of IP3R1 and IP3R3 was observed in TGF-beta-treated cells.
- ER-mitochondrial contacts and Ca2+ transfer/storage were unaffected.
Conclusions:
- TGF-beta causes uncoupling of mitochondria from ER calcium release, primarily by suppressing IP3R-mediated calcium efflux.
- This ER-mitochondrial uncoupling is dependent on the maximal rate of calcium release.
- Impaired ER-mitochondrial coupling may play a role in vascular pathophysiology associated with TGF-beta production.
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