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B Wattenberg

Publications and source records attributed to B Wattenberg.

6 recordsLinked to original sources

Targeting of C-terminal (tail)-anchored proteins: understanding how cytoplasmic activities are anchored to intracellular membranes.

A class of integral membrane proteins, referred to as 'tail-anchored proteins', are inserted into phospholipid bilayers via a single segment of hydrophobic amino acids at the C-terminus, thereby displaying a large functional domain in the cytosol. This membrane attachment strategy allows eukaryotic cells to position a wide range of cytoplasmic activities close to the surface of an intracellular membrane. Tail-anchored proteins often, but not always, demonstrate a selective distribution to specific intracellular organelles. This membrane-specific distribution is required for the large number of targeting proteins that are tail-anchored, but may or may not be critical for the numerous tail-anchored pro-apoptotic and anti-apoptotic proteins of the Bcl-2 family. Recent work has begun to address the mechanism for targeting tail-anchored proteins to their resident membranes, but questions remain. What targeting signals determine each protein's intracellular location? Are there receptors for these signals and, if so, how do they function? What steps are required to integrate tail-anchored proteins into the phospholipid bilayers? In this Traffic interchange, we summarise what is known about tail-anchored proteins, and outline the areas that are currently under study.

Endoplasmic Reticulum↗

Targeting of tail-anchored proteins to yeast mitochondria in vivo.

Tail-anchored proteins are inserted into intracellular membranes via a C-terminal transmembrane domain. The topology of the protein is such that insertion must occur post-translationally, since the insertion sequence is not available for membrane insertion until after translation of the tail-anchored polypeptide is completed. Here, we show that the targeting information in one such tail-anchored protein, translocase in the outer mitochondrial membrane 22, is contained in a short region flanking the transmembrane domain. An equivalent region is sufficient to specify the localisation of Bcl2 and SNARE proteins to the secretory membranes. We discuss the targeting process for directing members of this protein family to the secretory and mitochondrial membranes in vivo.

Amino Acid Sequence↗

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Attitude↗

Conditions influencing formation of 16:0/16:0 molecular species in membrane phospholipids of Escherichia coli.

Growth of a beta-oxidation-negative (fadE) strain of Escherichia coli in liquid culture with exogenous palmitate leads to the accumulation of 16:0/16:0 molecular species of phospholipid resulting in a temporary decrease in growth rate and lysis of a variable fraction of the cell population. Under the same growth conditions, this behavior is not seen in the closely related fadE+ parent strain which accumulates more modest levels of 16:0/16:0 together with 16:0/14:0. Based on differential scanning calorimetric measurements, 75.8 and 17.5% of the lipids from 16:0-enriched fadE and fadE+ cells, respectively, were found to be in the gel state at the growth temperature. Kinetic studies reveal the translocation of 16:0/16:0 molecular species from inner to outer membrane delays briefly the accumulation of this species in the inner membrane. This extreme and deleterious change in membrane-lipid composition precludes cloning of the fadE strain on solid media containing 16:0 and, therefore, these conditions provide the basis for selection of mutants altered in the mechanisms which determine the synthesis or accumulation of membrane lipid. Three such mutants are described which display alterations in the normal distribution of molecular species.

Calorimetry, Differential Scanning↗