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S H McLaughlin

Publications and source records attributed to S H McLaughlin.

8 recordsLinked to original sources

Folding and assembly of type X collagen mutants that cause metaphyseal chondrodysplasia-type schmid. Evidence for co-assembly of the mutant and wild-type chains and binding to molecular chaperones.

Schmid metaphyseal chondrodysplasia results from mutations within the COOH-terminal globular domain (NC1) of type X collagen, a short chain collagen expressed in the hypertrophic region of the growth plate cartilage. Previous in vitro studies have proposed that mutations prevent the association of the NC1 domain of constituent chains of the trimer based upon a lack of formation of a trimeric structure that is resistant to dissociation with sodium dodecyl sulfate. To examine the effect of mutations on folding and assembly within a cellular context, bovine type X cDNAs containing analogous disease causing mutations Y598D, N617K, W651R, and wild-type were expressed in semi-permeabilized cells. We assessed trimerization of the mutant chains by their ability to form a collagen triple helix. Using this approach, we demonstrate that although there is an apparent lower efficiency of association of the mutant NC1 domains, they can drive the formation of correctly aligned triple helices with the same thermal stability as the wild-type collagen. When epitope-tagged mutant and wild-type collagen were co-expressed, heterotrimers could be detected by sequential immunoprecipitation. Both wild-type and mutant type X chains were found in association with the molecular chaperones protein disulfide isomerase and Hsp 47. The implications of these findings on the likely mechanism of Schmid metaphyseal chondrodysplasia will be discussed.

Animals↗

Thiol-independent interaction of protein disulphide isomerase with type X collagen during intra-cellular folding and assembly.

Protein disulphide isomerase (PDI) has been shown to be a multifunctional protein capable of catalysing disulphide-bond formation and isomerization, and of participating as a non-catalytic subunit of prolyl 4-hydroxylase (P4-H) and microsomal triacylglycerol transfer protein. It has also been proposed to function as a molecular chaperone during the refolding of denatured proteins in vitro. To investigate its potential role as a molecular chaperone within a cellular context, we studied the folding, modification and assembly of type X collagen in semi-permeabilized cells. Using this approach, we demonstrate that depletion of ATP has no effect on the rate or extent of helix formation, indicating that the individual triple helical regions do not interact with the molecular chaperone immunoglobulin heavy-chain binding protein (BiP). However, PDI was shown to interact transiently with type X during helix formation in a role related to its function as the beta subunit of P4-H. Once the collagen triple helix was formed, PDI re-associated, indicating a role in preventing the premature assembly of this molecule into higher-order structures. This interaction was not thiol dependent, as a type X polypeptide that did not contain any cysteine residues was able to fold correctly and interact with PDI. Both PDI and the collagen-binding protein hsp47 showed a similar pH-dependent interaction with folded collagen, dissociating when the pH was lowered to pH 6.0. These results suggest a role for PDI in chaperoning type X collagen during its transport through the cell.

Adenosine Triphosphate↗

Molecular recognition in procollagen chain assembly.

Recent advances in the understanding of the molecular recognition events occurring during the assembly of procollagen during biosynthesis have come from the use of a semi-permeabilized cell-system that reconstitutes the initial steps of chain assembly as they would occur in the endoplasmic reticulum of an intact cell. This has enabled a number of key questions concerning the molecular determinants of procollagen assembly to be addressed. In particular, the recognition events underlying the initial association of individual procollagen chains have been investigated, resulting in the identification of the key residues involved within the C-propeptide of fibrillar collagens. Similarly, the role of inter-chain disulfide bond formation in chain recognition and assembly has been investigated, along with the role of the C-propeptide, C-telopeptide and proline hydroxylation in helix nucleation, alignment and propagation. The results from these studies point to a two-stage recognition event, i.e., association of the chains driven by residues within the C-propeptide followed by nucleation and alignment of the helix driven mainly by sequences present at the C-terminal end of the triple helical domain.

Amino Acid Sequence↗

Experimental and theoretical analyses of the domain architecture of mammalian protein disulphide-isomerase.

The high resolution structure of full-length protein disulphide-isomerase (PDI) has not been determined, but the polypeptide is generally assumed to comprise a series of consecutive domains. Models of its domain organisation have been proposed on the basis of various sequence-based criteria and, more recently, from structural studies on recombinant fragments corresponding to putative domains. We here describe direct studies of the domain architecture of full-length mammalian PDI based on limited proteolysis of the native enzyme. The results are consistent with an emerging model based on the existence of 4 consecutive domains each with the thioredoxin fold. The model was further tested by expressing recombinant fragments corresponding to alternative domain models and to truncated domains; the observed properties of these purified fragments supported the 4-domain model. A multiple alignment of many PDI-like sequences was generated to test whether domain boundaries could be predicted from any features of the alignment, such as sequence variability or hydrophilicity; neither of these parameters reliably predicted the domain boundaries determined by experiment.

Amino Acid Sequence↗

The refolding of hen egg white riboflavin-binding protein: effect of protein disulphide isomerase on the reoxidation of the reduced protein.

Hen egg white riboflavin-binding protein (RfBP) contains nine disulphide bonds. Provided these remain intact, the refolding of RfBP after incubation in 6 M guanidinium chloride is highly efficient with at least 95% of the binding activity regained within 3 min. Kinetic studies indicate that this regain consists of at least two phases. When the disulphide bonds of RfBP are reduced, reoxidation using a mixture of oxidized and reduced glutathione leads to less than 5% recovery of activity. However, if protein disulphide isomerase (PDI; EC 5.3.4.1) is present during the reoxidation nearly 50% activity can be regained, suggesting that PDI may play an important role in the maturation of RfBP in vivo.

Animals↗

A single purification procedure for the major resident proteins of the ER lumen: endoplasmin, BiP, calreticulin and protein disulfide isomerase.

We have developed a single purification procedure for the four major resident endoplasmic reticulum (ER) proteins: protein disulfide isomerase (PDI), BiP, endoplasmin, and calreticulin. Three of these proteins are thought to play a role in protein folding in vivo, whereas calreticulin is thought to be the major calcium binding protein in the ER. The proteins were purified from fresh bovine liver by taking advantage of individual characteristics of the proteins. Liver microsomes were prepared and then premeabilized to release the lumenal contents. After ammonium sulfate precipitation, the proteins were purified by chromatography; BiP was purified by affinity chromatography on ATP-agarose, and both endoplasmin and calreticulin were purified by affinity chromatography on Con A-Sepharose. PDI was purified by anionic ion exchange chromatography.

Amino Acid Sequence↗