Abstract

Using density gradient centrifugation and [3H]ryanodine 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.

Highlights

  • - purified in the form of an -30 S complex, comprised that cardiac SR Ca2+release is mediated by a high conductof M, 400,000 polypeptides

  • Electron microscopy revealed morphological simibe activated by micromolar Ca2+ or millimolar ATP, larity with the “feet” structures which span the transverse inhibited by millimolarMg2+or micromolar ruthenium (T-) tubule-SR junctions [23, 24], and reconstitution of the red, and modified to a long-lived open subconducting purified receptor into planar lipid bilayers resulted in constate by ryanodine

  • We find that the purified cardiac ryanodine receptor (i) hasa morphology and subunitcomposition similar to thatreported for the purified skeletal ryanodine receptor, (ii) retains its Ca", Mg2+,adenine nucleotide, ruthenium red, and ryanodine regulatory sites, (iii) conducts sodium ions, and (iv) displays sublevel conductances not observed in native channel recordings

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Summary

Reported here is the further characterizatioonf the purified

Grants HL27430 and HL38835 and by fellowshipsfrom the Muscular Dystrophy Association The costs of publication of this article were defrayed in part by the payment of page charges. This article must be hereby marked “advertisement” in accordance with 18 U.S.C. Section. The abbreviations used are: SR, sarcoplasmic reticulum; EGTA, [ethylenebis(oxyethylenenitrilo)]tetraacetic acid; Pipes, 1,4-piperazinediethanesulfonic acid; Hepes, N-2-hydroxyethylenepiperazineN’-2-ethanesulfonic acid; DIFP, diisopropylfluorophosphate; Chaps, 3-[3-cholamidopropyl)dimethylammonio]-l-propanesu1fonate;pS, picoSiemens; SDS, sodium dodecyl sulfate. We find that the purified cardiac ryanodine receptor (i) hasa morphology and subunitcomposition similar to thatreported for the purified skeletal ryanodine receptor, (ii) retains its Ca", Mg2+,adenine nucleotide, ruthenium red, and ryanodine regulatory sites, (iii) conducts sodium ions, and (iv) displays sublevel conductances not observed in native channel recordings. Some of this work has been previously presented in abstract form [28]

EXPERIMENTAL PROCEDURES
RESULTS
Specific activity
Fraction number
The abundant presence of these distorted quatrefoils may
Negatiue Stain Electron Microscopy ofthe Purified Receptor
Yes Yes Yes
DISCUSSION
Full Text
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