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Purification and partial characterization of the (H+,K+)-transporting adenosinetriphosphatase from fundic mucosa
1Department of Surgery, State University of New York Health Science Center, Syracuse 13210.
Abstract:
The microsomal (H+,K+)-ATPase systems from dog and pig fundic mucosa were purified to homogeneity and partially characterized. The method involves sodium dodecyl sulfate (SDS) (0.033% w/v) extraction of the microsomal non-ATPase proteins under appropriate conditions followed by sucrose density gradient centrifugation. Two distinct membrane bands of low (buoyant density = 1.08 g/mL) and high (buoyant density = 1.114 g/mL) densities having distinct enzymatic and chemical composition were harvested. The low-density membrane was highly enriched in Mg2+- or Ca2+-stimulated ATPase and 5'-nucleotidase activities but totally devoid of (H+,K+)-ATPase and K+-p-nitrophenylphosphatase activities. The latter two activities were found exclusively in the high-density membrane. SDS-polyacrylamide gel electrophoresis revealed the high-density membranes to consist primarily of a major 100-kilodalton (kDa) protein and a minor 85-kDa glycoprotein, the former being the catalytic subunit of the (H+,K+)-ATPase. The amino acid composition of the pure dog (H+,K+)-ATPase revealed close similarities with that from pig. The N-terminal amino acid was identified to be lysine as the sole residue. Similar to the high-density membrane-associated pure (H+,K+)-ATPase, the low-density membranes containing high Mg2+-ATPase activity also contained a 100-kDa peptide and a 85-kDa glycopeptide in addition to numerous low molecular weight peptides. Also, similar to the pure (H+,K+)-ATPase, the Mg2+-ATPase-rich fraction produced an E approximately P unstable to hydroxylamine and partially (about 25%) sensitive to K+ but having a slow turnover. The levels of E approximately P produced by the pure (H+,K+)-ATPase- and Mg2+-ATPase-rich fractions were 1400 and 178 pmol/mg of protein, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
Researchers purified and characterized gastric (H+,K+)-ATPase systems from dogs and pigs. This study isolates the key enzyme responsible for acid secretion, advancing our understanding of gastric physiology.
Area of Science:
- Biochemistry
- Cell Biology
- Physiology
Background:
- The gastric (H+,K+)-ATPase is crucial for acid secretion in the stomach.
- Understanding its purification and characterization is vital for comprehending gastric physiology.
Purpose of the Study:
- To purify and characterize the (H+,K+)-ATPase systems from dog and pig gastric mucosa.
- To differentiate between (H+,K+)-ATPase and other ATPases based on membrane density and enzymatic activity.
Main Methods:
- Microsomal extraction using sodium dodecyl sulfate (SDS).
- Sucrose density gradient centrifugation to separate membrane fractions.
- SDS-polyacrylamide gel electrophoresis (SDS-PAGE) for protein analysis.
- Enzymatic assays for ATPase activities (Mg2+-ATPase, Ca2+-ATPase, (H+,K+)-ATPase, K+-p-nitrophenylphosphatase).
Main Results:
- Two distinct membrane fractions were isolated: low-density (Mg2+-ATPase rich) and high-density ((H+,K+)-ATPase rich).
- The high-density membrane primarily contained a 100-kDa protein (catalytic subunit) and an 85-kDa glycoprotein.
- The purified dog (H+,K+)-ATPase showed similarities to the pig enzyme, with lysine as the N-terminal residue.
- Mg2+-ATPase-rich fractions shared some characteristics with (H+,K+)-ATPase, including a 100-kDa peptide.
Conclusions:
- The study successfully purified the gastric (H+,K+)-ATPase, identifying its catalytic subunit.
- Distinct membrane densities correlate with specific ATPase activities, aiding in enzyme isolation.
- Biochemical similarities between dog and pig (H+,K+)-ATPase suggest conserved structural properties.

