ABSTRACT
The Sonic Hedgehog (SHH) morphogen pathway is fundamental for embryonic development and stem cell maintenance and is implicated in various cancers. A key step in signaling is transfer of a palmitate group to the SHH N terminus, catalyzed by the multi-pass transmembrane enzyme Hedgehog acyltransferase (HHAT). We present the high-resolution cryo-EM structure of HHAT bound to substrate analog palmityl-coenzyme A and a SHH-mimetic megabody, revealing a heme group bound to HHAT that is essential for HHAT function. A structure of HHAT bound to potent small-molecule inhibitor IMP-1575 revealed conformational changes in the active site that occlude substrate binding. Our multidisciplinary analysis provides a detailed view of the mechanism by which HHAT adapts the membrane environment to transfer an acyl chain across the endoplasmic reticulum membrane. This structure of a membrane-bound O-acyltransferase (MBOAT) superfamily member provides a blueprint for other protein-substrate MBOATs and a template for future drug discovery.
Subject(s)
Acyltransferases/antagonists & inhibitors , Acyltransferases/metabolism , Enzyme Inhibitors/pharmacology , Hedgehog Proteins/metabolism , Membrane Proteins/metabolism , Acylation , Acyltransferases/genetics , Acyltransferases/ultrastructure , Allosteric Regulation , Animals , COS Cells , Catalytic Domain , Chlorocebus aethiops , Cryoelectron Microscopy , HEK293 Cells , Heme/metabolism , Humans , Membrane Proteins/antagonists & inhibitors , Membrane Proteins/genetics , Membrane Proteins/ultrastructure , Molecular Dynamics Simulation , Palmitoyl Coenzyme A/metabolism , Protein Conformation , Signal Transduction , Structure-Activity RelationshipABSTRACT
The mammalian membrane-bound O-acyltransferase (MBOAT) superfamily is involved in biological processes including growth, development and appetite sensing. MBOATs are attractive drug targets in cancer and obesity; however, information on the binding site and molecular mechanisms underlying small-molecule inhibition is elusive. This study reports rational development of a photochemical probe to interrogate a novel small-molecule inhibitor binding site in the human MBOAT Hedgehog acyltransferase (HHAT). Structure-activity relationship investigation identified single enantiomer IMP-1575, the most potent HHAT inhibitor reported to-date, and guided design of photocrosslinking probes that maintained HHAT-inhibitory potency. Photocrosslinking and proteomic sequencing of HHAT delivered identification of the first small-molecule binding site in a mammalian MBOAT. Topology and homology data suggested a potential mechanism for HHAT inhibition which was confirmed by kinetic analysis. Our results provide an optimal HHAT tool inhibitor IMP-1575 (Ki =38â nM) and a strategy for mapping small molecule interaction sites in MBOATs.
Subject(s)
Acetyltransferases/antagonists & inhibitors , Affinity Labels/chemistry , Small Molecule Libraries/chemistry , Acetyltransferases/metabolism , Binding Sites , Humans , Kinetics , Light , Palmitoyl Coenzyme A/antagonists & inhibitors , Palmitoyl Coenzyme A/metabolism , Pyridines/chemistry , Pyridines/metabolism , Small Molecule Libraries/metabolism , Structure-Activity RelationshipABSTRACT
Hedgehog proteins are secreted morphogens that play critical roles in development and disease. During maturation of the proteins through the secretory pathway, they are modified by the addition of N-terminal palmitic acid and C-terminal cholesterol moieties, both of which are critical for their correct function and localization. Hedgehog acyltransferase (HHAT) is the enzyme in the endoplasmic reticulum that palmitoylates Hedgehog proteins, is a member of a small subfamily of membrane-bound O-acyltransferase proteins that acylate secreted proteins, and is an important drug target in cancer. However, little is known about HHAT structure and mode of function. We show that HHAT is comprised of ten transmembrane domains and two reentrant loops with the critical His and Asp residues on opposite sides of the endoplasmic reticulum membrane. We further show that HHAT is palmitoylated on multiple cytosolic cysteines that maintain protein structure within the membrane. Finally, we provide evidence that mutation of the conserved His residue in the hypothesized catalytic domain results in a complete loss of HHAT palmitoylation, providing novel insights into how the protein may function in vivo.
Subject(s)
Acyltransferases/chemistry , Catalytic Domain , Protein Processing, Post-Translational , Acyltransferases/genetics , Acyltransferases/metabolism , Amino Acid Motifs , HEK293 Cells , HeLa Cells , Humans , Lipoylation , MutationABSTRACT
Sonic hedgehog (Shh) is a morphogen active during vertebrate development and tissue homeostasis in adulthood. Dysregulation of the Shh signalling pathway is known to incite carcinogenesis. Due to the highly lipophilic nature of this protein imparted by two post-translational modifications, Shh's method of transit through the aqueous extracellular milieu has been a long-standing conundrum, prompting the proposition of numerous hypotheses to explain the manner of its displacement from the surface of the producing cell. Detection of high molecular-weight complexes of Shh in the intercellular environment has indicated that the protein achieves this by accumulating into multimeric structures prior to release from producing cells. The mechanism of assembly of the multimers, however, has hitherto remained mysterious and contentious. Here, with the aid of high-resolution optical imaging and post-translational modification mutants of Shh, we show that the C-terminal cholesterol and the N-terminal palmitate adducts contribute to the assembly of large multimers and regulate their shape. Moreover, we show that small Shh multimers are produced in the absence of any lipid modifications. Based on an assessment of the distribution of various dimensional characteristics of individual Shh clusters, in parallel with deductions about the kinetics of release of the protein from the producing cells, we conclude that multimerization is driven by self-assembly underpinned by the law of mass action. We speculate that the lipid modifications augment the size of the multimolecular complexes through prolonging their association with the exoplasmic membrane.
Subject(s)
Hedgehog Proteins/metabolism , Animals , Hedgehog Proteins/chemistry , Humans , Protein Multimerization , Protein Processing, Post-Translational , Signal TransductionABSTRACT
Cholesterylation is a post-translational attachment of sterol to proteins. This modification has been a characteristic of a single family of hedgehog proteins (Hh). Hh is a well-established morphogenic molecule important in embryonic development. It was also found to be involved in the progression of many cancer types. Herein, we describe the mechanism of biosynthesis of cholesterylated Hh, the role of this unusual modification on protein functions and novel chemical probes, which could be used to specifically target this modification, both in vitro and in vivo.
Subject(s)
Cholesterol/metabolism , Hedgehog Proteins/metabolism , Lipoylation , Animals , Drosophila , Drosophila Proteins/metabolism , Hedgehog Proteins/biosynthesis , Hedgehog Proteins/genetics , Humans , Signal TransductionABSTRACT
Since the identification of the membrane-bound O-acyltransferase (MBOATs) protein family in the early 2000s, three distinct members [porcupine (PORCN), hedgehog (Hh) acyltransferase (HHAT) and ghrelin O-acyltransferase (GOAT)] have been shown to acylate specific proteins or peptides. In this review, topology determination, development of assays to measure enzymatic activities and discovery of small molecule inhibitors are compared and discussed for each of these enzymes.
Subject(s)
Acyltransferases/metabolism , Ghrelin/metabolism , Membrane Proteins/metabolism , Acylation/genetics , Acyltransferases/antagonists & inhibitors , Acyltransferases/genetics , Animals , Cell Membrane/enzymology , Cell Membrane/metabolism , Ghrelin/antagonists & inhibitors , Ghrelin/genetics , Humans , Lipoylation/genetics , Membrane Proteins/antagonists & inhibitors , Membrane Proteins/genetics , Small Molecule Libraries/pharmacologyABSTRACT
Hedgehog signaling is critical for correct embryogenesis and tissue development. However, on maturation, signaling is also found to be aberrantly activated in many cancers. Palmitoylation of the secreted signaling protein sonic hedgehog (Shh) by the enzyme hedgehog acyltransferase (Hhat) is required for functional signaling. To quantify this important posttranslational modification, many in vitro Shh palmitoylation assays employ radiolabeled fatty acids, which have limitations in terms of cost and safety. Here we present a click chemistry armed enzyme-linked immunosorbent assay (click-ELISA) for assessment of Hhat activity through acylation of biotinylated Shh peptide with an alkyne-tagged palmitoyl-CoA (coenzyme A) analogue. Click chemistry functionalization of the alkyne tag with azido-FLAG peptide allows analysis through an ELISA protocol and colorimetric readout. This assay format identified the detergent n-dodecyl ß-d-maltopyranoside as an improved solubilizing agent for Hhat activity. Quantification of the potency of RU-SKI small molecule Hhat inhibitors by click-ELISA indicated IC50 values in the low- or sub-micromolar range. A stopped assay format was also employed that allows measurement of Hhat kinetic parameters where saturating substrate concentrations exceed the binding capacity of the streptavidin-coated plate. Therefore, click-ELISA represents a nonradioactive method for assessing protein palmitoylation in vitro that is readily expandable to other classes of protein lipidation.
Subject(s)
Acyltransferases/metabolism , Hedgehog Proteins/metabolism , Protein Processing, Post-Translational , Acyltransferases/antagonists & inhibitors , Acyltransferases/chemistry , Acyltransferases/genetics , Biotinylation , Click Chemistry , Detergents/chemistry , Enzyme Inhibitors/pharmacology , Enzyme-Linked Immunosorbent Assay , Fatty Acids, Unsaturated/pharmacology , HEK293 Cells , Hedgehog Proteins/chemistry , Humans , Immobilized Proteins/chemistry , Immobilized Proteins/metabolism , Lipoylation/drug effects , Maltose/analogs & derivatives , Maltose/chemistry , Oligopeptides/chemistry , Oligopeptides/metabolism , Palmitoyl Coenzyme A/analogs & derivatives , Palmitoyl Coenzyme A/metabolism , Peptide Fragments/chemistry , Peptide Fragments/metabolism , Protein Processing, Post-Translational/drug effects , Recombinant Fusion Proteins/chemistry , Recombinant Fusion Proteins/metabolism , Solubility , Streptavidin/chemistry , Streptavidin/metabolism , Substrate SpecificityABSTRACT
2-Substituted N-acyl-piperidine is a widespread and important structural motif, found in approximately 500 currently available structures, and present in nearly 30 pharmaceutically active compounds. Restricted rotation of the acyl substituent in such molecules can give rise to two distinct chemical environments. Here we demonstrate, using NMR studies and density functional theory modeling of the lowest energy structures of 5-acyl-6,7-dihydrothieno[3,2-c]pyridine derivatives, that the amide E:Z equilibrium is affected by non-covalent interactions between the amide oxygen and adjacent aromatic protons. Structural predictions were used to design molecules that promote either the E- or Z-amide conformation, enabling preparation of compounds with a tailored conformational ratio, as proven by NMR studies. Analysis of the available X-ray data of a variety of published N-acyl-piperidine-containing compounds further indicates that these molecules are also clustered in the two observed conformations. This finding emphasizes that directed conformational isomerism has significant implications for the design of both small molecules and larger amide-containing molecular architectures.
Subject(s)
Amides/chemistry , Pyridines/chemistry , Thiophenes/chemistry , Magnetic Resonance Spectroscopy , Molecular Structure , Quantum TheoryABSTRACT
Novel multifunctional reagents were applied in combination with a lipid probe for affinity enrichment of myristoylated proteins and direct detection of lipid-modified tryptic peptides by mass spectrometry. This method enables high-confidence identification of the myristoylated proteome on an unprecedented scale in cell culture, and allowed the first quantitative analysis of dynamic changes in protein lipidation during vertebrate embryonic development.
Subject(s)
Embryonic Development , Lipids/chemistry , Proteome/analysis , Proteome/metabolism , Proteomics/methods , HEK293 Cells , HeLa Cells , Humans , Indicators and Reagents/chemistry , MCF-7 Cells , Mass Spectrometry , Molecular Structure , Proteome/chemistryABSTRACT
Hedgehog signaling is involved in embryonic development and cancer growth. Functional activity of secreted Hedgehog signaling proteins is dependent on N-terminal palmitoylation, making the palmitoyl transferase Hedgehog acyltransferase (HHAT), a potential drug target and a series of 4,5,6,7-tetrahydrothieno[3,2-c]pyridines have been identified as HHAT inhibitors. Based on structural data, we designed and synthesized 37 new analogues which we profiled alongside 13 previously reported analogues in enzymatic and cellular assays. Our results show that a central amide linkage, a secondary amine, and (R)-configuration at the 4-position of the core are three key factors for inhibitory potency. Several potent analogues with low- or sub-µM IC50 against purified HHAT also inhibit Sonic Hedgehog (SHH) palmitoylation in cells and suppress the SHH signaling pathway. This work identifies IMP-1575 as the most potent cell-active chemical probe for HHAT function, alongside an inactive control enantiomer, providing tool compounds for validation of HHAT as a target in cellular assays.
Subject(s)
Hedgehog Proteins , Hedgehog Proteins/metabolism , Pyridines/chemistry , Pyridines/pharmacologyABSTRACT
T-cell development is critically dependent on the activities of the Src-family kinases p56(lck) and p59(fyn). While Lck plays a dominant role in the initiation of T-cell receptor (TCR) signaling and in thymocyte differentiation, Fyn plays a more subtle regulatory role. We sought to determine the role of intracellular localization in the differing functions of Lck and Fyn in T cells. By generating transgenic mice that express chimeric Lck-Fyn proteins, we showed that the N-terminal unique domain determines the intracellular localization and function of Lck in pre-TCR and mature αßTCR signaling in vivo. Furthermore, coexpression of a "domain-swap" Lck protein containing the Fyn unique domain with an inducible Lck transgene resulted in the development of thymomas. In contrast to previous reports of Lck-driven thymomas, tumor development was dependent on either pre-TCR or mature TCR signals, and was completely ablated when mice were crossed to a recombination activating gene 1 (Rag1)-deficient background. These data provide a mechanistic basis for the differing roles of Lck and Fyn in T-cell development, and show that intracellular localization as determined by the N-terminal unique domains is critical for Src-family kinase function in vivo.
Subject(s)
Cell Differentiation , Lymphocyte Specific Protein Tyrosine Kinase p56(lck)/physiology , Proto-Oncogene Proteins c-fyn/physiology , Thymoma/pathology , Thymus Gland/cytology , Animals , Blotting, Western , CD2 Antigens/genetics , Female , Flow Cytometry , Humans , Immunoprecipitation , Lymphocyte Activation , Mice , Mice, Inbred C57BL , Mice, Inbred CBA , Mice, Transgenic , RNA, Messenger/genetics , Receptors, Antigen, T-Cell/genetics , Receptors, Antigen, T-Cell/metabolism , Reverse Transcriptase Polymerase Chain Reaction , Signal Transduction , T-Lymphocytes/metabolism , Thymoma/metabolism , Thymus Gland/metabolismABSTRACT
Membrane lipid microdomains (lipid rafts) play an important role in T cell function by forming areas of high lipid order that facilitate activation. However, their role in regulating T cell differentiation and function remains controversial. In this study, by applying a new approach involving microscopy and flow cytometry, we characterize membrane lipid order in ex vivo primary human CD4(+) T cells. We reveal that differential membrane lipid order dictates the response to TCR stimulation. T cells with high membrane order formed stable immune synapses and proliferated robustly, intermediate order cells had reduced proliferative ability accompanied by unstable immune synapse formation, whereas low order T cells were profoundly unresponsive to TCR activation. We also observed that T cells from patients with autoimmune rheumatic disease had expanded intermediate order populations compared with healthy volunteers. This may be important in dictating the nature of the immune response since most IFN-γ(+)CD4(+) T cells were confined within intermediate membrane order populations, whereas IL-4(+)CD4(+) T cells were contained within the high order populations. Importantly, we were able to alter T cell function by pharmacologically manipulating membrane order. Thus, the results presented from this study identify that ex vivo CD4(+) T cells sustain a gradient of plasma membrane lipid order that influences their function in terms of proliferation and cytokine production. This could represent a new mechanism to control T cell functional plasticity, raising the possibility that therapeutic targeting of membrane lipid order could direct altered immune cell activation in pathology.
Subject(s)
CD4-Positive T-Lymphocytes/immunology , CD4-Positive T-Lymphocytes/metabolism , Membrane Lipids/metabolism , Membrane Microdomains/metabolism , Adult , CD4-Positive T-Lymphocytes/cytology , Cells, Cultured , Coculture Techniques , Female , Humans , Immunological Synapses/immunology , Lymphocyte Activation/immunology , Male , Membrane Lipids/physiology , Membrane Microdomains/physiology , Molecular Probes , Pyridinium Compounds , Th1 Cells/cytology , Th1 Cells/immunology , Th1 Cells/metabolism , Th2 Cells/cytology , Th2 Cells/immunology , Th2 Cells/metabolismABSTRACT
Hedgehog (Hh) proteins are morphogens that mediate many developmental processes. Hh signaling is significant for many aspects of embryonic development, whereas dysregulation of this pathway is associated with several types of cancer. Hh proteins require heparan sulfate proteoglycans (HSPGs) for their normal distribution and signaling activity. Here, we have used molecular modeling to examine the heparin-binding domain of sonic hedgehog (Shh). In biochemical and cell biological assays, the importance of specific residues of the putative heparin-binding domain for signaling was assessed. It was determined that key residues in human (h) Shh involved in heparin and HSPG syndecan-4 binding and biological activity included the well known cationic Cardin-Weintraub motif (lysines 32-38) but also a previously unidentified major role for lysine 178. The activity of Shh mutated in these residues was tested by quantitation of alkaline phosphatase activity in C3H10T1/2 cells differentiating into osteoblasts and hShh-inducible gene expression in PANC1 human pancreatic ductal adenocarcinoma cells. Mutated hShhs such as K37S/K38S, K178S, and particularly K37S/K38S/K178S that could not interact with heparin efficiently had reduced signaling activity compared with wild type hShh or a control mutation (K74S). In addition, the mutant hShh proteins supported reduced proliferation and invasion of PANC1 cells compared with control hShh proteins, following endogenous hShh depletion by RNAi knockdown. The data correlated with reduced Shh multimerization where the Lys-37/38 and/or Lys-178 mutations were examined. These studies provide a new insight into the functional roles of hShh interactions with HSPGs, which may allow targeting this aspect of hShh biology in, for example, pancreatic ductal adenocarcinoma.
Subject(s)
Hedgehog Proteins/metabolism , Heparitin Sulfate/metabolism , Protein Multimerization , Signal Transduction/physiology , Adenocarcinoma/genetics , Adenocarcinoma/metabolism , Amino Acid Motifs , Amino Acid Substitution , Cell Line, Tumor , Hedgehog Proteins/genetics , Heparitin Sulfate/genetics , Humans , Mutation, Missense , Osteoblasts , Pancreatic Neoplasms/genetics , Pancreatic Neoplasms/metabolism , Protein Structure, Tertiary , Syndecan-4/genetics , Syndecan-4/metabolismABSTRACT
Whether RET is able to directly phosphorylate and activate downstream targets independently of the binding of proteins that contain Src homology 2 or phosphotyrosine binding domains and whether mechanisms in trans by cytoplasmic kinases can modulate RET function and signaling remain largely unexplored. In this study, oligopeptide arrays were used to screen substrates directly phosphorylated by purified recombinant wild-type and oncogenic RET kinase domain in the presence or absence of small molecule inhibitors. The results of the peptide array were validated by enzyme kinetics, in vitro kinase, and cell-based experiments. The identification of focal adhesion kinase (FAK) as a direct substrate for RET kinase revealed (i) a RET-FAK transactivation mechanism consisting of direct phosphorylation of FAK Tyr-576/577 by RET and a reciprocal phosphorylation of RET by FAK, which crucially is able to rescue the kinase-impaired RET K758M mutant and (ii) that FAK binds RET via its FERM domain. Interestingly, this interaction is abolished upon RET phosphorylation, indicating that RET binding to the FERM domain of FAK is a priming step for RET-FAK transactivation. Finally, our data indicate that FAK inhibitors could be used as potential therapeutic agents for patients with multiple endocrine neoplasia type 2 tumors because both, treatment with the FAK kinase inhibitor NVP-TAE226 and FAK down-regulation by siRNA reduced RET phosphorylation and signaling as well as the proliferation and survival of tumor and transfected cell lines expressing oncogenic RET.
Subject(s)
Focal Adhesion Protein-Tyrosine Kinases/metabolism , Gene Expression Regulation, Enzymologic , Proto-Oncogene Proteins c-ret/metabolism , Transcriptional Activation , Antineoplastic Agents/pharmacology , Cell Proliferation , Focal Adhesion Protein-Tyrosine Kinases/genetics , Glutathione Transferase/metabolism , Humans , Kinetics , Oligopeptides/chemistry , Phenotype , Phosphorylation , Protein Interaction Mapping , Protein Structure, Tertiary , Proto-Oncogene Proteins c-ret/genetics , Signal TransductionABSTRACT
Signalling molecules integrate, codify and transport information in cells. Organisation of these molecules in complexes and clusters improves the efficiency, fidelity and robustness of cellular signalling. Here, we summarise current views on how signalling molecules assemble into macromolecular complexes and clusters and how they use their physical properties to transduce environmental information into a variety of cellular processes. In addition, we discuss recent innovations in live-cell imaging at the sub-micrometer scale and the challenges of object (particle) tracking, both of which help us to observe signalling complexes and clusters and to examine their dynamic character.
Subject(s)
Macromolecular Substances/metabolism , Animals , Humans , Models, Biological , Molecular Imaging/methods , Signal TransductionABSTRACT
Lck is a non-receptor tyrosine kinase of the Src family that is essential for T cell activation. Dual N-terminal acylation of Lck with myristate (N-acylation) and palmitate (S-acylation) is essential for its membrane association and function. Reversible S-acylation of Lck is observed in vivo and may function as a control mechanism. Here we identify the DHHC family protein S-acyltransferase DHHC2 as an enzyme capable of palmitoylating of Lck in T cells. Reducing the DHHC2 level in Jurkat T cells using siRNA causes decreased Lck S-acylation and partial dislocation from membranes, and conversely overexpression of DHHC2 increases S-acylation of an Lck surrogate, LckN10-GFP. DHHC2 localizes primarily to the endoplasmic reticulum and Golgi apparatus suggesting that it is involved in S-acylation of newly-synthesized or recycling Lck involved in T cell signalling.
Subject(s)
Acyltransferases/metabolism , Endoplasmic Reticulum/enzymology , Golgi Apparatus/enzymology , Lymphocyte Specific Protein Tyrosine Kinase p56(lck)/metabolism , T-Lymphocytes/enzymology , Tumor Suppressor Proteins/metabolism , Acylation , Acyltransferases/chemistry , Endoplasmic Reticulum/chemistry , Gene Expression , Golgi Apparatus/chemistry , HEK293 Cells , HeLa Cells , Humans , Jurkat Cells , Lipoylation , Lymphocyte Specific Protein Tyrosine Kinase p56(lck)/chemistry , Myristic Acid/chemistry , Myristic Acid/metabolism , Palmitates/chemistry , Palmitates/metabolism , RNA, Small Interfering/genetics , Tumor Suppressor Proteins/chemistryABSTRACT
Cholesterol- and glycosphingolipid-enriched membrane lipid microdomains, frequently called lipid rafts, are thought to play an important role in the spatial and temporal organization of immunological synapses. Higher ordering of lipid acyl chains was suggested for these entities and imaging of membrane order in living cells during activation can therefore help to understand the mechanisms responsible for the supramolecular organization of molecules involved in the activation of T cells. Here, we employ the phase-sensitive membrane dye di-4-ANEPPDHQ together with a variety of spectrally-resolved microscopy techniques, including 2-channel ratiometric TIRF microscopy and fluorescence lifetime imaging, to characterize membrane order at the T cell immunological synapse at high spatial and temporal resolution in live cells at physiological temperature. We find that higher membrane order resides at the immunological synapse periphery where proximal signalling through the immunoreceptors and accessory proteins in microclusters has previously been shown to take place. The observed spatial patterning of membrane order in the immunological synapse depends on active receptor signalling.
Subject(s)
Immunological Synapses/chemistry , Membrane Lipids/chemistry , Membrane Microdomains/chemistry , T-Lymphocytes/cytology , 1,2-Dipalmitoylphosphatidylcholine/chemistry , 1,2-Dipalmitoylphosphatidylcholine/metabolism , Animals , Antigen-Presenting Cells/metabolism , Humans , Immunological Synapses/immunology , Immunological Synapses/metabolism , Jurkat Cells , Ketocholesterols/chemistry , Ketocholesterols/metabolism , Membrane Lipids/blood , Membrane Lipids/immunology , Membrane Microdomains/immunology , Membrane Microdomains/metabolism , Microscopy, Fluorescence , Phosphatidylcholines/chemistry , Phosphatidylcholines/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolismABSTRACT
The mammalian membrane-bound O-acyltransferase (MBOAT) superfamily is involved in biological processes including growth, development and appetite sensing. MBOATs are attractive drug targets in cancer and obesity; however, information on the binding site and molecular mechanisms underlying small-molecule inhibition is elusive. This study reports rational development of a photochemical probe to interrogate a novel small-molecule inhibitor binding site in the human MBOAT Hedgehog acyltransferase (HHAT). Structure-activity relationship investigation identified single enantiomer IMP-1575, the most potent HHAT inhibitor reported to-date, and guided design of photocrosslinking probes that maintained HHAT-inhibitory potency. Photocrosslinking and proteomic sequencing of HHAT delivered identification of the first small-molecule binding site in a mammalian MBOAT. Topology and homology data suggested a potential mechanism for HHAT inhibition which was confirmed by kinetic analysis. Our results provide an optimal HHAT tool inhibitor IMP-1575 (K i=38â nM) and a strategy for mapping small molecule interaction sites in MBOATs.
ABSTRACT
CD1 proteins are a family of major histocompatibility complex (MHC) class I-like antigen-presenting molecules that present lipids to T cells. The cytoplasmic tails (CTs) of all human CD1 isoforms, with the exception of CD1a, contain tyrosine-based sorting motifs, responsible for the internalization of proteins by the clathrin-mediated pathway. The role of the CD1a CT, which does not possess any sorting motifs, as well as its mode of internalization are not known. We investigated the internalization and recycling pathways followed by CD1a and the role of its CT. We found that CD1a can be internalized by a clathrin- and dynamin-independent pathway and that it follows a Rab22a- and ADP ribosylation factor (ARF)6-dependent recycling pathway, similar to other cargo internalized independent of clathrin. We also found that the CD1a CT is S-acylated. However, this posttranslational modification does not determine the rate of internalization or recycling of the protein or its localization to detergent-resistant membrane microdomains (DRMs) where we found CD1a to be enriched. We also show that plasma membrane DRMs are essential for efficient CD1a-mediated antigen presentation. These findings place CD1a closer to MHC class I in its trafficking and potential antigen-loading compartments among CD1 isoforms. Furthermore, we identify CD1a as a new marker for the clathrin- and dynamin-independent and DRM-dependent pathway of internalization as well as the Rab22a- and ARF6-dependent recycling pathway.
Subject(s)
Antigens, CD1/metabolism , Endocytosis/physiology , Histocompatibility Antigens Class I/metabolism , ADP-Ribosylation Factor 6 , ADP-Ribosylation Factors/metabolism , ADP-Ribosylation Factors/physiology , Animals , Antigen Presentation , Antigens, CD1/genetics , Antigens, CD1/immunology , Clathrin/metabolism , Clathrin/physiology , Cytoplasm/immunology , Cytoplasm/metabolism , Dendritic Cells/immunology , Dendritic Cells/metabolism , Endosomes/immunology , Endosomes/metabolism , HeLa Cells , Histocompatibility Antigens Class I/genetics , Histocompatibility Antigens Class I/immunology , Humans , Leukocytes, Mononuclear/immunology , Leukocytes, Mononuclear/metabolism , Membrane Microdomains/immunology , Membrane Microdomains/metabolism , Mutation , Protein Modification, Translational , Protein Subunits , Protein Transport , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Transfection , rab GTP-Binding Proteins/metabolism , rab GTP-Binding Proteins/physiologyABSTRACT
Lipids and lipid domains are suggested to play an essential role in the heterogeneous organization of the plasma membrane in eukaryotic cells, including cells of the immune system. We summarize the results of advanced imaging and physical studies of membrane organization with special focus on the plasma membrane of lymphocytes. We provide a comprehensive up-to-date view on the existence of membrane lipid and protein clusters such as lipid rafts and suggest research directions to better understand these highly dynamic entities on the surface of immune cells.