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January 1, 1989Journal of Biological Chemistry208 citationsOpen Access

Structural and Functional Characterization of the Purified Cardiac Ryanodine Receptor-Ca2+ Release Channel Complex

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KAKristin A. AndersonFLF. Anthony LaiQLQ Y Liu

Key Points

  • The study aims to purify and characterize the cardiac ryanodine receptor-Ca2+ release channel complex to understand its properties and function.
  • Purification of the ryanodine receptor-Ca2+ release channel complex using density gradient centrifugation and Chaps solubilization.

Structured PICO

P
Population
Canine cardiac sarcoplasmic reticulum (SR)
I
Intervention
Purification using density gradient centrifugation and reconstitution into planar lipid bilayers
C
Comparator
Native cardiac Ca2+ release channel (for conductance comparison)
O
Outcome
Structural and functional characteristics (ryanodine binding, electron microscopy structure, ion conductance)surrogate

The study successfully purified and characterized the canine cardiac ryanodine receptor-Ca2+ release channel, demonstrating its structural and functional similarities to the native channel and skeletal muscle counterparts.

Abstract

Using density gradient centrifugation and 3Hryanodine as a specific marker, the ryanodine receptor-Ca2+ release channel complex from Chaps-solubilized canine cardiac sarcoplasmic reticulum (SR) has been purified in the form of an approximately 30 S complex, comprised of Mr approximately 400,000 polypeptides. Purification resulted in a specific activity of approximately 450 pmol bound ryanodine/mg of protein, a 60-70% recovery of ryanodine binding activity, and retention of the high affinity ryanodine binding site (KD = 3 nM). Negative stain electron microscopy revealed a 4-fold symmetric, four-leaf clover structure, which could fill a box approximately 30 x 30 nm and was thus morphologically similar to the SR-transverse-tubule, junctionally associated foot structure. The structural, sedimentation, and ryanodine binding data strongly suggest there is one high affinity ryanodine binding site/30 S complex, comprised of four Mr approximately 400,000 subunits. Upon reconstitution into planar lipid bilayers, the purified complex exhibited a Ca2+ conductance (70 pS in 50 mM Ca2+) similar to that of the native cardiac Ca2+ release channel (75 pS). The reconstituted complex was also found to conduct Na+ (550 pS in 500 mM Na+) and often to display complex Na+ subconducting states. The purified channel could be activated by micromolar Ca2+ or millimolar ATP, inhibited by millimolar Mg2+ or micromolar ruthenium red, and modified to a long-lived open subconducting state by ryanodine. The sedimentation, subunit composition, morphological, and ryanodine binding characteristics of the purified cardiac ryanodine receptor-Ca2+ release channel complex were similar to those previously described for the purified ryanodine receptor-Ca2+ release channel complex from fast-twitch skeletal muscle.

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Cite This Study

Anderson et al. (1989) studied this question.

synapsesocial.com/papers/6a2153706edeeecbd302f64chttps://doi.org/10.1016/s0021-9258(19)85090-1
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