Selective release of content from microsomal vesicles without membrane disassembly. II. Electrophoretic and

Insights

This study reveals distinct protein compositions in rough and smooth endoplasmic reticulum (ER) microsomes. It highlights the transfer of newly synthesized serum proteins from rough to smooth ER, with glycosidation occurring during transit.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Molecular Biology

Background:

  • Rough and smooth microsomes, derived from the endoplasmic reticulum (ER), possess distinct protein profiles.
  • Understanding these differences is crucial for elucidating protein synthesis, modification, and transport pathways within the cell.

Purpose of the Study:

  • To compare the polypeptide composition of rough and smooth microsomes.
  • To investigate the synthesis, modification, and intracellular transport of proteins, particularly serum albumin, within the ER.

Main Methods:

  • Acrylamide gel electrophoresis to detect and analyze polypeptide chains.
  • Sublytic detergent concentrations and differential centrifugation to separate microsomal content from membrane vesicles.
  • In vivo radioactive labeling (leucine and glucosamine) to track protein synthesis and modification.
  • Immunological cross-reactivity assays.

Main Results:

  • Rough and smooth microsomes share most polypeptide chains, with rough ER distinguished by bound ribosome proteins.
  • A subset of approximately 25 polypeptides characterizes the microsomal content, with varying incorporation rates of radioactive labels.
  • Newly synthesized serum albumin is preferentially labeled in rough microsomes after short labeling periods, suggesting transfer to smooth microsomes.
  • Glycosidation of polypeptides appears to occur during transit through ER cisternae, as indicated by glucosamine labeling patterns.

Conclusions:

  • The study supports the model of newly synthesized serum proteins moving from rough to smooth ER compartments.
  • Protein glycosidation is a dynamic process occurring within the ER lumen during protein transport.
  • Distinct protein populations exist within the ER, with some proteins being long-term residents.