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Lipid modifications and membrane targeting of G alpha.

G protein alpha-subunits (G alpha) undergo palmitoylation and/or myristoylation. This review will focus on new insights into the function and regulation of these fatty acid modifications of G alpha. Most importantly, I will examine lipid modifications of G alpha in the context of a two-signal model for membrane attachment, discuss recent advances in the identification of palmitoyl transferases, and highlight several controversial issues in this field.

Animals↗

Targeting proteins to membranes using signal sequences for lipid modification.

Covalent attachment of lipids appears to be an important mechanism by which many proteins interact with membranes. As we learn more about how lipids and adjacent amino acids participate in addressing proteins to specific membranes within the cell, it should be possible to design more elegant and precise membrane targeting systems that can be used to guide proteins to functionally relevant destinations.

Amino Acid Sequence↗

Targeting proteins to membranes, using signal sequences for lipid modifications.

Changing an existing lipid or appending a lipid to a cytosolic protein has emerged as an important technique for targeting proteins to membranes and for constitutively activating the membrane-bound protein. The potential for more precise or regulated interactions of lipidated proteins in membrane subdomains suggests that this method for membrane targeting will be of increasing usefulness.

Amino Acid Sequence↗

Lipid modifications of trimeric G proteins.

G protein alpha subunits and beta gamma dimers are covalently modified by lipids. The emerging picture is one in which attached lipids provide more than just a nonspecific "glue" for sticking G proteins to membranes. We are only beginning to understand how different lipid modifications of different G protein subunits affect specific protein-protein interactions and localization to specific cellular sites. In addition, regulation of these modifications, particularly palmitoylation, can provide new ways to regulate signals transmitted by G proteins.

Amino Acid Sequence↗

Lean beef: impetus for lipid modifications.

Health-conscious consumers want lean beef. The beef industry has responded by physically removing much of the adipose tissue from retail products and by initiating attempts to produce--genetically and environmentally--cattle with more muscle, less external fat, and less seam fat, without sacrificing the quality dependent on the amount of marbling present. Offering lean beef that is closely or completely trimmed of external fat has improved retail beef sales. Impetus for modification of the lipid composition of bovine muscle and adipose tissue, including marbling, has resulted from the following: (a) diet/health concerns of consumers and demands for leaner beef, (b) research clarifying effects of dietary fatty acids and cholesterol on serum cholesterol levels, (c) dietary guidelines and recommendations from health organizations, and (d) dietary recommendations by physicians and dietitians to reduce beef consumption. Analysis of cholesterol content of marbling dissected from the rib (longissimus dorsi) muscle revealed that marbling contributes little to total cholesterol content. Cholesterol content of marbling was 117 mg/100 gm intramuscular adipose tissue (equivalent to about a 2 mg cholesterol contribution to a 100-gm serving of uncooked meat). The difference in fatty acid composition of lean meat and of adipose tissue is primarily in the percentage of polyunsaturated fatty acids, which is higher in lean meat. The most prevalent fatty acids in adipose tissue including marbling were: palmitic acid (24.1%), stearic acid (13.5%), and oleic acid (37.7%).

Adipose Tissue↗

Drug targets for lipid modification and risk of type 2 diabetes: a cis-Mendelian randomization study.

BACKGROUND AND AIMS: Reducing plasma levels of low-density lipoprotein cholesterol (LDL-C) is the cornerstone in the prevention of coronary artery disease (CAD) but may also increase risk of type 2 diabetes (T2D). A comprehensive examination of the genetic evidence of T2D related side-effects of all current lipid-modifying drugs, including those in development, has not yet been performed. METHODS: This cis-Mendelian randomization study used individual level data from the UK Biobank, Lifelines, and publicly available genome-wide association data. We identified loci that are either targeted directly with drugs, or alternatively, targeting their gene products (mRNA and/or protein). Included are, in alphabetical order, the loci ACLY, ANGPTL3, ANGPTL4, APOB, APOC3, CETP, HMGCR, LDLR, LIPG, LPA, MTTP, NPC1L1, and PCSK9. We used cis-genetic instruments weighted for LDL-C, HDL-C, triglycerides, and apolipoproteins as downstream proxies for the drug targets. Main outcomes were prevalent and incident T2D, with CAD as a contrast outcome. RESULTS: Lipid modification through HMGCR is predicted to reduce CAD risk and increase T2D risk. Modification through targeting APOC3, LDLR, LPA, MTTP, NPC1L1, and PCSK9 is predicted to reduce CAD risk without a change in T2D risk. Modification through ANGPTL4 and CETP is predicted to reduce risk of both CAD and T2D. For ACLY, ANGPTL3, APOB, and LIPG, we found evidence for neither CAD nor T2D. CONCLUSIONS: This study provides genetic evidence for variation in diabetes-related side-effects of different lipid-modifying drugs, with potential relevance for future clinical trials and individual treatment decisions.

Humans↗

The effects of dietary lipid modification on blood pressure, cardiovascular reactivity and sympathetic activity in man.

OBJECTIVES: To examine the effect of dietary lipid modification on 24-h ambulatory blood pressure, cardiovascular reactivity and sympathetic activity in man. DESIGN: Twenty-four normal volunteers consumed either a high-fat or a low-fat diet for 2 weeks in an open, randomized, crossover study of duration 6 weeks. Diets were isocaloric and balanced for sodium and potassium content. METHODS: Cardiovascular reactivity was assessed by measurement of blood pressure responses to incremental infusions of angiotensin II and noradrenaline, and to sympathetic reflex testing. Plasma noradrenaline spillover and clearance rates were estimated using [3H]-noradrenaline infusion. RESULTS: Total plasma cholesterol and low-density lipoprotein-cholesterol levels both fell significantly on the low-fat compared with the high-fat diet, as did heart rate and mean arterial pressure (recorded by 24-h ambulatory monitoring). These changes were accompanied by reductions in blood pressure responses to cold pressor testing and to noradrenaline infusion on the low-fat diet. Plasma noradrenaline spillover and clearance rates did not change. Post hoc analysis showed an association between oral contraceptive use and increased noradrenaline sensitivity on the high-fat diet among the females tested. CONCLUSION: Dietary fat intake alters heart rate, blood pressure and cardiovascular reactivity to noradrenaline in man without changes in basal noradrenaline metabolism.

Adult↗

Lipid modifications of G proteins.

Covalent attachment of lipids is a near-universal mechanism through which eukaryotic cells direct and, in some cases, control membrane localization of G proteins. Studies conducted over the past year have substantially advanced our understanding of both the molecular mechanisms and the functional consequences of these modifications. Of particular note are the processes of palmitoylation of the alpha-subunits of heterotrimeric G proteins, and prenylation of members of the Ras superfamily of monomeric G proteins, where recent findings point to unexpected roles for lipid modifications in signaling through these proteins.

Amino Acid Sequence↗

Effects of dietary lipid modification on adrenoceptor-mediated cardiovascular responsiveness and baroreflex sensitivity in normotensive subjects.

To examine the effects of short-term dietary lipid modification on alpha- and beta-adrenoceptor-mediated cardiovascular responsiveness, 19 normal volunteers consumed either a high-fat or a low-fat diet for 2 weeks in an open, randomized, crossover study of 6 weeks' duration. Diets were balanced for sodium and potassium content. Adrenoceptor-mediated cardiovascular responsiveness was assessed by measuring blood pressure and heart rate responses to incremental infusions of phenylephrine and isoprenaline. Baroreflexes were studied by examining heart rate responses to phenylephrine and to the Valsalva manoeuvre. Total plasma cholesterol and low-density lipoprotein cholesterol levels both fell significantly (by 22% and 26%, respectively), on the low-fat compared with the high-fat diet, as did resting supine blood pressures and heart rate (by 6 mmHg systolic and 3 mmHg diastolic, and 5 beats/min). These changes were accompanied by a significant reduction in the systolic blood pressure response to isoprenaline. Blood pressure responses to phenylephrine and baroreflex sensitivity did not change. These results suggest that dietary fat intake alters cardiac beta-adrenergic reactivity without significant effects on vascular alpha-adrenoceptor mediated responses or baroreflexes.

Adult↗

Roles of lipid modifications of transducin subunits in their GDP-dependent association and membrane binding.

Transducin is an unusually soluble and dissociable heterotrimeric G-protein, although its T alpha and T beta gamma subunits are N-acylated and farnesylated, respectively. These lipid modifications have been suggested to contribute directly to the GDP-dependent T alpha-T beta gamma association, through specific lipid recognition sites on both protein subunits. We studied the dependence of subunit association on their bound lipids and on the presence of different lipidic environments. Association of native N-acylated (nT alpha) or acyl-free recombinant (rT alpha) T alpha with farnesylated and carboxymethylated (fcT beta gamma), farnesylated (fT beta gamma), or farnesyl-free (dfT beta gamma) T beta gamma was analyzed by gradient centrifugation and gel filtration in the presence of detergent or phospholipid-cholate micelles and by cosedimentation with phospholipid vesicles. Without detergent, nT alpha GDP and fcT beta gamma associate only weakly in solution. The loss of T alpha acyl or T beta gamma farnesyl residues induces total dissociation. With detergent or lipids, isolated fcT beta gamma binds tightly to micelles or vesicles, while dfT beta gamma does not; nT alpha GDP binds weakly, while deacylated rT alpha GDP does not bind at all; and nT alpha GDP binds cooperatively with fcT beta gamma, while rT alpha GDP does not. Thus (i) the T alpha acyl chain binds weakly, whereas the T beta gamma farnesyl chain binds strongly to membrane lipids; (ii) there is no evidence for binding of the T alpha acyl chain to a polypeptide site in T beta gamma, nor for binding of the T beta gamma farnesyl chain to a polypeptidic site in T alpha, but the T alpha acyl chain seems to bind cooperatively with the T beta gamma farnesyl chain in the membrane lipids; (iii) the insertion of the two protein-attached lipids into the same membrane could contribute to the association of both subunits by favoring collision coupling of the properly oriented protein moieties on the membrane surface.

Acylation↗

Effects of temperature, lipid modification and pH on the mobility of the major proteins of the receptor-rich membranes from Torpedo marmarata.

The factors influencing the overall mobility of the major proteins of the acetylcholine receptor-rich membranes from Torpedo marmorata have been investigated by saturation transfer ESR spectroscopy and the lateral distribution of these proteins has been studied by electron microscopy. A spin-labelled derivative of maleimide, 3-maleimido-2,2,5,5-tetramethyl-1-pyrrolidinyloxyl (MSL), was used under various conditions of incubation, enabling us to attach it mainly to either an extrinsic protein of 43 kdaltons, or an intrinsic protein (40 kdaltons) bearing the alpha-toxin-binding site. (1) The direct reaction of MSL with the membrane fragments resulted in almost exclusive labelling of the 43 kdalton protein, an extrinsic protein located on the inner face of the receptor-rich membranes. (2) After the free SH groups were blocked with N-ethylmaleimide and the disulfide bridges opened with the reducing agent dithiothreitol, MSL reacted with both the 40 and 43 kdalton proteins (6.0 +/- 0.6 MSL molecules per alpha-toxin-binding site). (3) After the latter labelling procedure membranes were exposed to pH 11, resulting in extraction of the 43 kdalton protein and leaving 2.2 +/- 0.4 MSL molecules per alpha-toxin-binding site; sodium dodecyl sulfate polyacrylamide gel electrophoresis performed with N-[14C] ethylmaleimide suggested that MSL was bound mainly to the 40 kdalton polypeptide chain of the acetylcholine receptor. The following conclusions were made with the native and alkaline-treated membranes: In the native membranes, saturation transfer ESR does not reveal any significant protein rotational diffusion (rotational correlation time tau C greater than 1 ms). Temperature variations and/or lipid modifications obtained by fusion of exogenous lipids and/or cholesterol exchange have little influence on the saturation transfer ESR spectra. Electron microscopy reveals that upon lipid addition, proteins remain in the form of clusters while areas depleted of proteins appear. On the other hand, alkaline treatment strikingly enhances the motion of the MSL-labelled proteins in the membrane (100 less than or equal to tau c less than or equal to 120 microseconds). Furthermore, the rotational diffusion of the MSL-labelled proteins (mainly the 40 kdalton protein) becomes sensitive to temperature, lipid composition and the lipid-to-proteins ratio. Electron microscopy shows that alkaline extraction does not cause large reorganization of the acetylcholine receptor in the plane of the membrane. However, when phospholipids are added to pH 11 treated membranes, a dispersion of the receptor and rosettes is observed. In contrast, cholesterol enrichment of the latter membranes induces clustering of the receptor immobilization as judged by saturation transfer ESR. Upon reassociation of the pH 11 soluble proteins with the alkaline-treated membranes, the restriction of the acetylcholine receptor rotational mobility is also restored (tau c greater than or equal to 1 ms).

Animals↗

Biological activities of native and recombinant Borrelia burgdorferi outer surface protein A: dependence on lipid modification.

Borrelia burgdorferi lipoproteins are 50- to 500-fold more active as cytokine inducers and B-cell mitogens than Escherichia coli lipoproteins and synthetic peptides containing the tripalmitoyl-S-glyceryl-cysteine moiety. To investigate the source of this unique potency, we compared native OspA from B. burgdorferi with recombinant lipidated OspA produced in E. coli. As little as 10 ng of either protein per ml stimulated B-cell proliferation and production of cytokines and nitric oxide by macrophages. The two proteins induced comparable antibody responses in mice. Nonlipidated OspA made in E. coli had no stimulatory activity. Thus, lipid modification is essential both in vivo and in vitro for the immunological properties of OspA. The lipid moiety appears equally active whether produced in B. burgdorferi or in E. coli.

Animals↗

Lipid modification of GRN163, an N3'-->P5' thio-phosphoramidate oligonucleotide, enhances the potency of telomerase inhibition.

The vast majority of human cancers express telomerase activity, while most human somatic cells do not have detectable telomerase activity. Since telomerase plays a critical role in cell immortality, it is an attractive target for a selective cancer therapy. Oligonucleotides complementary to the RNA template region of human telomerase (hTR) have been shown to be effective inhibitors of telomerase and, subsequently, cancer cell growth in vitro. We show here that a lipid-modified N3'-->P5' thio-phosphoramidate oligonucleotide (GRN163L) inhibits telomerase more potently than its parental nonconjugated thio-phosphoramidate sequence (GRN163). Cells were treated with both the first- (GRN163) and second-generation (GRN163L) oligonucleotides, including a mismatch control, with or without a transfection enhancer reagent. GRN163L inhibited telomerase activity effectively in a dose-dependent manner, even without the use of a transfection reagent. The IC50 values for GRN163 in various cell lines were on average sevenfold higher than for GRN163L. GRN163L inhibition of telomerase activity resulted in a more rapid loss of telomeres and cell growth than GRN163. This report is the first to show that lipid modification enhanced the potency of the novel GRN163 telomerase inhibitor. These results suggest that the lipid-conjugated thio-phosphoramidates could be important for improved pharmacodynamics of telomerase inhibitors in cancer therapy.

Animals↗

Effect of lipid modification on progression of coronary calcification.

Coronary artery calcification (CAC) reflects the anatomic presence of coronary atherosclerosis and the relative burden of coronary artery disease (CAD). Higher levels of CAC are seen in the presence of CAD risk factors, older age, and chronic kidney disease. The lipid profile (primarily low HDL cholesterol, elevated triglycerides, elevated LDL cholesterol, and elevated total cholesterol) are important factors in the calcification process. The annual progression of CAC can be reduced from 25 to 30% to 0 to 6% with LDL cholesterol reduction caused by statins and possibly sevelamer. At treated LDL cholesterol levels somewhere below 100 mg/dl, several sources of data suggest the anatomic burden of CAD, including CAC, regresses. Additional supportive studies indicate that carotid intimal medial thickness and the volume of coronary atheroma also can be reduced by LDL cholesterol reduction in concert with elevation of HDL cholesterol. This article reviews the data in support of altering the natural history of CAC with lipid modification.

Calcinosis↗

Hedgehog lipid modifications are required for Hedgehog stabilization in the extracellular matrix.

The Hedgehog (Hh) family of morphogenetic proteins has important instructional roles in metazoan development. Despite Hh being modified by Ct-cholesterol and Nt-palmitate adducts, Hh migrates far from its site of synthesis and programs cellular outcomes, depending on its local concentrations. We show that in the receiving cells of the Drosophila wing imaginal disc, lipid-unmodified Hh spreads across many more cell diameters than the wild type and this spreading leads to the activation of low but not high threshold responses. Unlipidated Hh forms become internalized through the apical plasma membrane, while wild-type Hh enters through the basolateral cell surface - in all cases via a dynamin-dependent mechanism. Full activation of the Hh pathway and the spread of Hh throughout the extracellular matrix depend on the ability of lipid-modified Hh to interact with heparan sulfate proteoglycans (HSPG). However, neither Hh-lipid modifications nor HSPG function are required to activate the targets that respond to low levels of Hh. All these data show that the interaction of lipid-modified Hh with HSPG is important both for precise Hh spreading through the epithelium surface and for correct Hh reception.

Animals↗

Lipid modification of Escherichia coli penicillin-binding protein 3.

The primary structure of penicillin-binding protein 3 (PBP 3), an essential enzyme for cell division in Escherichia coli, was deduced from the nucleotide sequence of the ftsI gene (M. Nakamura, I. N. Maruyama, M. Soma, J. Kato, H. Suzuki, and Y. Hirota, Mol. Gen. Genet. 191:1-9, 1983). An amino acid sequence of Leu-26-Leu-Cys-Gly-Cys-30 was found near the amino terminus of the deduced sequence, showing a rather striking homology to the Leu-Leu-Ala-Gly-Cys consensus sequence for the modification and processing of precursors of the E. coli murein lipoprotein and other bacterial lipoproteins. As expected from this finding, PBP 3 was found to be modified with glycerol and fatty acids, although the lipid modification occurred only in a small fraction, accounting for less than 15% of the total PBP 3 molecules.

Acyltransferases↗

IFN-gamma-derived lipopeptides: influence of lipid modification on the conformation and the ability to induce MHC class II expression on murine and human cells.

Two truncated analogues of a previously identified lipopeptide agonist toward the IFN-gamma receptor were synthesized in an attempt to determine the minimal compound able to induce expression of MHC class II molecules on murine and human cells and to study the role of the lipid tail. Circular dichroism studies were used to probe the induced conformationnal changes. Our results indicate at least a double role for the lipid modification that contributes to the stabilization of helical organization of the associated peptide and to its passive delivery into the cytoplasm. The persistence of biological activity in a truncated peptide of half of the residues present in the lead compound suggests that the lipid tail could also contribute to the stabilization of the peptide-receptor binding through additional hydrophobic interactions. This study allowed to readjust the minimal requirements for intracellular IFN-gamma receptor stimulation. More generally, we suggest that lipidated analogues of functional peptides could be utilized for intracellular target validation in the drug discovery process.

Adjuvants, Immunologic↗