Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy.
Pressure overload-induced hypertrophy is a key step leading to heart failure. The Ca(2+)-induced Ca(2+) release (CICR) process that governs cardiac contractility is defective in hypertrophy/heart failure, but the molecular mechanisms remain elusive. To examine the intermolecular aspects of CICR duri...
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2007-02-01
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doaj-35ca7cafa33e4b63946bec55f5d574df2021-07-02T10:21:28ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852007-02-0152e2110.1371/journal.pbio.0050021Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy.Ming XuPeng ZhouShi-Ming XuYin LiuXinheng FengShu-Hua BaiYan BaiXue-Mei HaoQide HanYouyi ZhangShi-Qiang WangPressure overload-induced hypertrophy is a key step leading to heart failure. The Ca(2+)-induced Ca(2+) release (CICR) process that governs cardiac contractility is defective in hypertrophy/heart failure, but the molecular mechanisms remain elusive. To examine the intermolecular aspects of CICR during hypertrophy, we utilized loose-patch confocal imaging to visualize the signaling between a single L-type Ca(2+) channel (LCC) and ryanodine receptors (RyRs) in aortic stenosis rat models of compensated (CHT) and decompensated (DHT) hypertrophy. We found that the LCC-RyR intermolecular coupling showed a 49% prolongation in coupling latency, a 47% decrease in chance of hit, and a 72% increase in chance of miss in DHT, demonstrating a state of "intermolecular failure." Unexpectedly, these modifications also occurred robustly in CHT due at least partially to decreased expression of junctophilin, indicating that intermolecular failure occurs prior to cellular manifestations. As a result, cell-wide Ca(2+) release, visualized as "Ca(2+) spikes," became desynchronized, which contrasted sharply with unaltered spike integrals and whole-cell Ca(2+) transients in CHT. These data suggested that, within a certain limit, termed the "stability margin," mild intermolecular failure does not damage the cellular integrity of excitation-contraction coupling. Only when the modification steps beyond the stability margin does global failure occur. The discovery of "hidden" intermolecular failure in CHT has important clinical implications.http://europepmc.org/articles/PMC1764437?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ming Xu Peng Zhou Shi-Ming Xu Yin Liu Xinheng Feng Shu-Hua Bai Yan Bai Xue-Mei Hao Qide Han Youyi Zhang Shi-Qiang Wang |
spellingShingle |
Ming Xu Peng Zhou Shi-Ming Xu Yin Liu Xinheng Feng Shu-Hua Bai Yan Bai Xue-Mei Hao Qide Han Youyi Zhang Shi-Qiang Wang Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. PLoS Biology |
author_facet |
Ming Xu Peng Zhou Shi-Ming Xu Yin Liu Xinheng Feng Shu-Hua Bai Yan Bai Xue-Mei Hao Qide Han Youyi Zhang Shi-Qiang Wang |
author_sort |
Ming Xu |
title |
Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. |
title_short |
Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. |
title_full |
Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. |
title_fullStr |
Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. |
title_full_unstemmed |
Intermolecular failure of L-type Ca2+ channel and ryanodine receptor signaling in hypertrophy. |
title_sort |
intermolecular failure of l-type ca2+ channel and ryanodine receptor signaling in hypertrophy. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Biology |
issn |
1544-9173 1545-7885 |
publishDate |
2007-02-01 |
description |
Pressure overload-induced hypertrophy is a key step leading to heart failure. The Ca(2+)-induced Ca(2+) release (CICR) process that governs cardiac contractility is defective in hypertrophy/heart failure, but the molecular mechanisms remain elusive. To examine the intermolecular aspects of CICR during hypertrophy, we utilized loose-patch confocal imaging to visualize the signaling between a single L-type Ca(2+) channel (LCC) and ryanodine receptors (RyRs) in aortic stenosis rat models of compensated (CHT) and decompensated (DHT) hypertrophy. We found that the LCC-RyR intermolecular coupling showed a 49% prolongation in coupling latency, a 47% decrease in chance of hit, and a 72% increase in chance of miss in DHT, demonstrating a state of "intermolecular failure." Unexpectedly, these modifications also occurred robustly in CHT due at least partially to decreased expression of junctophilin, indicating that intermolecular failure occurs prior to cellular manifestations. As a result, cell-wide Ca(2+) release, visualized as "Ca(2+) spikes," became desynchronized, which contrasted sharply with unaltered spike integrals and whole-cell Ca(2+) transients in CHT. These data suggested that, within a certain limit, termed the "stability margin," mild intermolecular failure does not damage the cellular integrity of excitation-contraction coupling. Only when the modification steps beyond the stability margin does global failure occur. The discovery of "hidden" intermolecular failure in CHT has important clinical implications. |
url |
http://europepmc.org/articles/PMC1764437?pdf=render |
work_keys_str_mv |
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