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Updated: Aug 29, 2026

An Experimental System to Study Mechanotransduction in Fetal Lung Cells
Published on: February 16, 2012
Post-translational modification of the major human surfactant-associated proteins
Abstract:
The major protein in human pulmonary surfactant is a sialoglycoprotein of 32-36 kDa (PSP-A) that has been shown by translation of lung mRNA in vitro to be derived from precursor molecules of 29-31 kDa [Floros, Phelps & Jaeusch (1985). J. Biol. Chem. 260, 495-500]. We show here that two-dimensional gel patterns of PSP-A similar to that of the primary translation products are obtained by incorporation of [35S]methionine in the presence of tunicamycin or by N-glycanase digestion of the 32-36 kDa group. Additional gel patterns are also observed in which the isoelectric-point heterogeneity is similar to that of either tunicamycin-treated tissue or primary translation products, but with higher molecular masses. The gel patterns showing higher-molecular-mass components are obtained when terminal sialic acid addition is prevented by the incubation of lung tissue with monensin or when terminal sialic acids are digested from the fully processed protein with neuraminidase. The 32-36 kDa forms have been shown to contain [14C]mannose. Pulse-chase experiments indicate that the acidic isoforms in the protein group arise from basic isoforms that are detectable within 10 min.
Insights
Pulmonary surfactant protein A (PSP-A) undergoes post-translational modifications, including glycosylation and sialylation. These processes generate molecular heterogeneity in PSP-A, impacting its structure and function in lung surfactant.
Area of Science:
- Biochemistry
- Molecular Biology
- Pulmonary Medicine
Background:
- Pulmonary surfactant protein A (PSP-A) is a major sialoglycoprotein crucial for lung function.
- PSP-A exists as a 32-36 kDa protein derived from 29-31 kDa precursor molecules.
Purpose of the Study:
- To investigate the post-translational modifications of PSP-A.
- To elucidate the origins of PSP-A's molecular heterogeneity.
Main Methods:
- In vitro translation of lung mRNA.
- Two-dimensional gel electrophoresis.
- Metabolic labeling with [35S]methionine and [14C]mannose.
- Enzymatic digestion (N-glycanase, neuraminidase).
- Inhibition of sialic acid addition (monensin).
- Pulse-chase experiments.
Main Results:
- PSP-A precursor molecules (29-31 kDa) are glycosylated to mature forms (32-36 kDa).
- Sialic acid addition and N-linked glycosylation contribute to PSP-A heterogeneity.
- Acidic isoforms of PSP-A arise from basic isoforms within 10 minutes.
Conclusions:
- PSP-A undergoes significant post-translational modifications, including glycosylation and sialylation.
- These modifications generate the observed molecular heterogeneity of PSP-A.
- Understanding PSP-A processing is vital for comprehending pulmonary surfactant function.
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