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1.
PLoS One ; 18(12): e0295047, 2023.
Article in English | MEDLINE | ID: mdl-38039321

ABSTRACT

Peroxisomes are membrane-enclosed organelles with important roles in fatty acid breakdown, bile acid synthesis and biosynthesis of sterols and ether lipids. Defects in peroxisomes result in severe genetic diseases, such as Zellweger syndrome and neonatal adrenoleukodystrophy. However, many aspects of peroxisomal biogenesis are not well understood. Here we investigated delivery of tail-anchored (TA) proteins to peroxisomes in mammalian cells. Using glycosylation assays we showed that peroxisomal TA proteins do not enter the endoplasmic reticulum (ER) in both wild type (WT) and peroxisome-lacking cells. We observed that in cells lacking the essential peroxisome biogenesis factor, PEX19, peroxisomal TA proteins localize mainly to mitochondria. Finally, to investigate peroxisomal TA protein targeting in cells with fully functional peroxisomes we used a proximity biotinylation approach. We showed that while ER-targeted TA construct was exclusively inserted into the ER, peroxisome-targeted TA construct was inserted to both peroxisomes and mitochondria. Thus, in contrast to previous studies, our data suggest that some peroxisomal TA proteins do not insert to the ER prior to their delivery to peroxisomes, instead, mitochondria can be involved.


Subject(s)
Membrane Proteins , Peroxisomes , Animals , Peroxisomes/metabolism , Membrane Proteins/metabolism , Endoplasmic Reticulum/metabolism , Intracellular Membranes/metabolism , Mitochondria/metabolism , Mammals/metabolism
2.
Bioinformatics ; 39(39 Suppl 1): i347-i356, 2023 06 30.
Article in English | MEDLINE | ID: mdl-37387131

ABSTRACT

MOTIVATION: Signal peptides (SPs) are short amino acid segments present at the N-terminus of newly synthesized proteins that facilitate protein translocation into the lumen of the endoplasmic reticulum, after which they are cleaved off. Specific regions of SPs influence the efficiency of protein translocation, and small changes in their primary structure can abolish protein secretion altogether. The lack of conserved motifs across SPs, sensitivity to mutations, and variability in the length of the peptides make SP prediction a challenging task that has been extensively pursued over the years. RESULTS: We introduce TSignal, a deep transformer-based neural network architecture that utilizes BERT language models and dot-product attention techniques. TSignal predicts the presence of SPs and the cleavage site between the SP and the translocated mature protein. We use common benchmark datasets and show competitive accuracy in terms of SP presence prediction and state-of-the-art accuracy in terms of cleavage site prediction for most of the SP types and organism groups. We further illustrate that our fully data-driven trained model identifies useful biological information on heterogeneous test sequences. AVAILABILITY AND IMPLEMENTATION: TSignal is available at: https://github.com/Dumitrescu-Alexandru/TSignal.


Subject(s)
Amino Acids , Protein Sorting Signals , Protein Transport , Benchmarking , Language
3.
Nat Chem Biol ; 19(9): 1054-1062, 2023 09.
Article in English | MEDLINE | ID: mdl-37169961

ABSTRACT

Preventing the biogenesis of disease-relevant proteins is an attractive therapeutic strategy, but attempts to target essential protein biogenesis factors have been hampered by excessive toxicity. Here we describe KZR-8445, a cyclic depsipeptide that targets the Sec61 translocon and selectively disrupts secretory and membrane protein biogenesis in a signal peptide-dependent manner. KZR-8445 potently inhibits the secretion of pro-inflammatory cytokines in primary immune cells and is highly efficacious in a mouse model of rheumatoid arthritis. A cryogenic electron microscopy structure reveals that KZR-8445 occupies the fully opened Se61 lateral gate and blocks access to the lumenal plug domain. KZR-8445 binding stabilizes the lateral gate helices in a manner that traps select signal peptides in the Sec61 channel and prevents their movement into the lipid bilayer. Our results establish a framework for the structure-guided discovery of novel therapeutics that selectively modulate Sec61-mediated protein biogenesis.


Subject(s)
Membrane Proteins , Protein Sorting Signals , Animals , Mice , Protein Transport , Membrane Proteins/metabolism , SEC Translocation Channels/chemistry , SEC Translocation Channels/genetics , SEC Translocation Channels/metabolism , Protein Biosynthesis
4.
Sci Adv ; 8(46): eabq5234, 2022 Nov 16.
Article in English | MEDLINE | ID: mdl-36399564

ABSTRACT

A stop codon within the mRNA facilitates coordinated termination of protein synthesis, releasing the nascent polypeptide from the ribosome. This essential step in gene expression is impeded with transcripts lacking a stop codon, generating nonstop ribosome complexes. Here, we use deep sequencing to investigate sources of nonstop mRNAs generated from the human mitochondrial genome. We identify diverse types of nonstop mRNAs on mitochondrial ribosomes that are resistant to translation termination by canonical release factors. Failure to resolve these aberrations by the mitochondrial release factor in rescue (MTRFR) imparts a negative regulatory effect on protein synthesis that is associated with human disease. Our findings reveal a source of underlying noise in mitochondrial gene expression and the importance of responsive ribosome quality control mechanisms for cell fitness and human health.

5.
Nat Struct Mol Biol ; 29(5): 420-429, 2022 05.
Article in English | MEDLINE | ID: mdl-35449234

ABSTRACT

The integrity of a cell's proteome depends on correct folding of polypeptides by chaperonins. The chaperonin TCP-1 ring complex (TRiC) acts as obligate folder for >10% of cytosolic proteins, including he cytoskeletal proteins actin and tubulin. Although its architecture and how it recognizes folding substrates are emerging from structural studies, the subsequent fate of substrates inside the TRiC chamber is not defined. We trapped endogenous human TRiC with substrates (actin, tubulin) and cochaperone (PhLP2A) at different folding stages, for structure determination by cryo-EM. The already-folded regions of client proteins are anchored at the chamber wall, positioning unstructured regions toward the central space to achieve their native fold. Substrates engage with different sections of the chamber during the folding cycle, coupled to TRiC open-and-close transitions. Further, the cochaperone PhLP2A modulates folding, acting as a molecular strut between substrate and TRiC chamber. Our structural snapshots piece together an emerging model of client protein folding within TRiC.


Subject(s)
Actins , Tubulin , Actins/metabolism , Chaperonin Containing TCP-1/metabolism , Chaperonins/chemistry , Chaperonins/metabolism , Humans , Male , Peptides , Protein Folding , Tubulin/metabolism
6.
EMBO Rep ; 22(4): e50145, 2021 04 07.
Article in English | MEDLINE | ID: mdl-33719157

ABSTRACT

Intracellular pH is a potent modulator of neuronal functions. By catalyzing (de)hydration of CO2 , intracellular carbonic anhydrase (CAi ) isoforms CA2 and CA7 contribute to neuronal pH buffering and dynamics. The presence of two highly active isoforms in neurons suggests that they may serve isozyme-specific functions unrelated to CO2 -(de)hydration. Here, we show that CA7, unlike CA2, binds to filamentous actin, and its overexpression induces formation of thick actin bundles and membrane protrusions in fibroblasts. In CA7-overexpressing neurons, CA7 is enriched in dendritic spines, which leads to aberrant spine morphology. We identified amino acids unique to CA7 that are required for direct actin interactions, promoting actin filament bundling and spine targeting. Disruption of CA7 expression in neocortical neurons leads to higher spine density due to increased proportion of small spines. Thus, our work demonstrates highly distinct subcellular expression patterns of CA7 and CA2, and a novel, structural role of CA7.


Subject(s)
Actins , Carbonic Anhydrases , Actin Cytoskeleton/metabolism , Actins/genetics , Actins/metabolism , Carbonic Anhydrases/genetics , Dendritic Spines/metabolism , Hippocampus/metabolism , Neurons/metabolism
7.
Biochem Pharmacol ; 183: 114317, 2021 01.
Article in English | MEDLINE | ID: mdl-33152346

ABSTRACT

Coibamide A is a potent cancer cell toxin and one of a select group of natural products that inhibit protein entry into the secretory pathway via a direct inhibition of the Sec61 protein translocon. Many Sec61 client proteins are clinically relevant drug targets once trafficked to their final destination in or outside the cell, however the use of Sec61 inhibitors to block early biosynthesis of specific proteins is at a pre-clinical stage. In the present study we evaluated the action of coibamide A against human epidermal growth factor receptor (HER, ErbB) proteins in representative breast and lung cancer cell types. HERs were selected for this study as they represent a family of Sec61 clients that is frequently dysregulated in human cancers, including coibamide-sensitive cell types. Although coibamide A inhibits biogenesis of a broad range of Sec61 substrate proteins in a presumed substrate-nonselective manner, endogenous HER3 (ErbB-3) and EGFR (ErbB-1) proteins were more sensitive to coibamide A, and the related Sec61 inhibitor apratoxin A, than HER2 (ErbB-2). Despite this rank order of sensitivity (HER3 > EGFR > HER2), Sec61-dependent inhibition by coibamide A was sufficient to decrease cell surface expression of HER2. We report that coibamide A- or apratoxin A-mediated block of HER3 entry into the secretory pathway is unlikely to be mediated by the HER3 signal peptide alone. HER3 (G11L/S15L), that is fully resistant to the highly substrate-selective cotransin analogue CT8, was more resistant than wild-type HER3 but only at low coibamide A (3 nM) concentrations; HER3 (G11L/S15L) expression was inhibited by higher concentrations of either natural product. Time- and concentration-dependent decreases in HER protein expression induced a commensurate reduction in AKT/MAPK signaling in breast and lung cancer cell types and loss in cell viability. Coibamide A potentiated the cytotoxic efficacy of small molecule kinase inhibitors lapatinib and erlotinib in breast and lung cancer cell types, respectively. These data indicate that natural product modulators of Sec61 function have value as chemical probes to interrogate HER/ErbB signaling in treatment-resistant human cancers.


Subject(s)
Depsipeptides/administration & dosage , Drug Delivery Systems/methods , SEC Translocation Channels/antagonists & inhibitors , Cell Survival/drug effects , Cell Survival/physiology , Dose-Response Relationship, Drug , ErbB Receptors/antagonists & inhibitors , ErbB Receptors/metabolism , HEK293 Cells , Humans , MCF-7 Cells , SEC Translocation Channels/metabolism
8.
ACS Chem Biol ; 15(8): 2125-2136, 2020 08 21.
Article in English | MEDLINE | ID: mdl-32608972

ABSTRACT

Coibamide A (CbA) is a marine natural product with potent antiproliferative activity against human cancer cells and a unique selectivity profile. Despite promising antitumor activity, the mechanism of cytotoxicity and specific cellular target of CbA remain unknown. Here, we develop an optimized synthetic CbA photoaffinity probe (photo-CbA) and use it to demonstrate that CbA directly targets the Sec61α subunit of the Sec61 protein translocon. CbA binding to Sec61 results in broad substrate-nonselective inhibition of ER protein import and potent cytotoxicity against specific cancer cell lines. CbA targets a lumenal cavity of Sec61 that is partially shared with known Sec61 inhibitors, yet profiling against resistance conferring Sec61α mutations identified from human HCT116 cells suggests a distinct binding mode for CbA. Specifically, despite conferring strong resistance to all previously known Sec61 inhibitors, the Sec61α mutant R66I remains sensitive to CbA. A further unbiased screen for Sec61α resistance mutations identified the CbA-resistant mutation S71P, which confirms nonidentical binding sites for CbA and apratoxin A and supports the susceptibility of the Sec61 plug region for channel inhibition. Remarkably, CbA, apratoxin A, and ipomoeassin F do not display comparable patterns of potency and selectivity in the NCI60 panel of human cancer cell lines. Our work connecting CbA activity with selective prevention of secretory and membrane protein biogenesis by inhibition of Sec61 opens up possibilities for developing new Sec61 inhibitors with improved drug-like properties that are based on the coibamide pharmacophore.


Subject(s)
Depsipeptides/pharmacology , Membrane Proteins/antagonists & inhibitors , SEC Translocation Channels/drug effects , Binding Sites , Cells, Cultured , Depsipeptides/metabolism , Humans , Membrane Proteins/biosynthesis , Photoaffinity Labels/chemistry , SEC Translocation Channels/metabolism
9.
J Nat Prod ; 83(4): 965-971, 2020 04 24.
Article in English | MEDLINE | ID: mdl-32182062

ABSTRACT

Kendomycin is a small-molecule natural product that has gained significant attention due to reported cytotoxicity against pathogenic bacteria and fungi as well as a number of cancer cell lines. Despite significant biomedical interest and attempts to reveal its mechanism of action, the cellular target of kendomycin remains disputed. Herein it is shown that kendomycin induces cellular responses indicative of cation stress comparable to the effects of established iron chelators. Furthermore, addition of excess iron and copper attenuated kendomycin cytotoxicity in bacteria, yeast, and mammalian cells. Finally, NMR analysis demonstrated a direct interaction with cations, corroborating a close link between the observed kendomycin polypharmacology across different species and modulation of iron and/or copper levels.


Subject(s)
Anti-Bacterial Agents/pharmacology , Antibiotics, Antineoplastic/pharmacology , Antifungal Agents/pharmacology , Bacteria/drug effects , Chelating Agents/pharmacology , Fungi/drug effects , Rifabutin/analogs & derivatives , Cations , Cell Line , Copper/metabolism , Iron/metabolism , Leupeptins/pharmacology , Microbial Sensitivity Tests , Mutagenesis , Rifabutin/pharmacology , Yeasts/drug effects
10.
Cytokine ; 129: 154944, 2020 05.
Article in English | MEDLINE | ID: mdl-32146280

ABSTRACT

Effector CD4+ T cells can be classified by the cytokines they secrete, with T helper 1 (Th1) cells generating interferon (IFN)γ and Th17 cells secreting interleukin (IL)-17. Both Th1 and Th17 cells are strongly implicated in the initiation and chronicity of autoimmune diseases such as multiple sclerosis. The endoplasmic reticulum (ER) has been implicated as a potentially crucial site in regulating CD4+ T cell function. Secretory and transmembrane proteins are shuttled into the ER via the Sec61 translocon, where they undergo appropriate folding; misfolded proteins are retro-translocated from the ER in a p97-dependent manner. Here, we provide evidence that both processes are crucial to the secretion of inflammatory cytokines from effector CD4+ T cells. The pan-ER inhibitor eeeyarestatin-1 (ESI), which interferes with both Sec61 translocation and p97 retro-translocation, inhibited secretion of interferon (IFN)γ, interleukin (IL)-2 and tumor necrosis factor (TNF)α from Th1 cells in a dose-dependent manner. Selective inhibition of Sec61 by Apratoxin A (ApraA) revealed that ER translocation is crucial for Th1 cytokine secretion, while inhibition of p97 by NMS-873 also inhibited Th1 function, albeit to a lesser degree. By contrast, none of ESI, ApraA or NMS-873 could significantly reduce IL-17 secretion from Th17 cells. ApraA, but not NMS-873, reduced phosphorylation of Stat1 in Th1 cells, indicating the involvement of ER translocation in Th1 differentiation pathways. ApraA had modest effects on activation of the Th17 transcription factor Stat3, while NMS-873 had no effect. Interestingly, NMS-873 was able to reduce disease severity in CD4+ T cell-driven experimental autoimmune encephalomyelitis (EAE). Together, our data indicate that CD4+ T cell function, and Th1 cell function in particular, is dependent on protein translocation and dislocation across the ER.


Subject(s)
CD4-Positive T-Lymphocytes/immunology , Endoplasmic Reticulum/immunology , Inflammation/immunology , Protein Transport/immunology , Animals , Cell Differentiation/immunology , Central Nervous System/immunology , Cytokines/immunology , Encephalomyelitis, Autoimmune, Experimental/immunology , Interferon-gamma/immunology , Interleukin-17/immunology , Mice , Mice, Inbred C57BL , Multiple Sclerosis/immunology , Th1 Cells/immunology , Th17 Cells/immunology
11.
Nat Prod Rep ; 37(5): 717-736, 2020 05 01.
Article in English | MEDLINE | ID: mdl-32067014

ABSTRACT

Covering: up to the end of 2019Diverse natural product small molecules have allowed critical insights into processes that govern eukaryotic cells' ability to secrete cytosolically synthesized secretory proteins into their surroundings or to insert newly synthesized integral membrane proteins into the lipid bilayer of the endoplasmic reticulum. In addition, many components of the endoplasmic reticulum, required for protein homeostasis or other processes such as lipid metabolism or maintenance of calcium homeostasis, are being investigated for their potential in modulating human disease conditions such as cancer, neurodegenerative conditions and diabetes. In this review, we cover recent findings up to the end of 2019 on natural products that influence protein secretion or impact ER protein homeostasis, and serve as powerful chemical tools to understand protein flux through the mammalian secretory pathway and as leads for the discovery of new therapeutics.


Subject(s)
Biological Products/pharmacology , Eukaryotic Cells/drug effects , Proteins/metabolism , Animals , Biological Products/chemistry , Calcium/metabolism , Endoplasmic Reticulum Stress/drug effects , Endoplasmic Reticulum Stress/physiology , Eukaryotic Cells/metabolism , Humans , Protein Transport/drug effects , RNA Splicing/drug effects , RNA Splicing/physiology
12.
Curr Opin Genet Dev ; 58-59: 9-16, 2019 10.
Article in English | MEDLINE | ID: mdl-31476715

ABSTRACT

Many functions of eukaryotic cells are compartmentalized within membrane-bound organelles. One or more cis-encoded signals within a polypeptide sequence typically govern protein targeting to and within destination organelles. Perhaps unexpectedly, organelle targeting does not occur with high specificity, but instead is characterized by considerable degeneracy and inefficiency. Indeed, the same peptide signals can target proteins to more than one location, randomized sequences can easily direct proteins to organelles, and many enzymes appear to traverse different subcellular settings across eukaryotic phylogeny. We discuss the potential benefits provided by flexibility in organelle targeting, with a special emphasis on horizontally transferred and de novo proteins. Moreover, we consider how these new organelle residents can be protected and maintained before they contribute to the needs of the cell and promote fitness.


Subject(s)
Eukaryota/genetics , Gene Transfer, Horizontal/genetics , Mitochondria/metabolism , Protein Sorting Signals/genetics , Amino Acid Sequence/genetics , Amoeba/genetics , Amoeba/metabolism , Endoplasmic Reticulum/metabolism , Eukaryota/metabolism , Evolution, Molecular , Mitochondria/genetics , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , Phylogeny , Protein Sorting Signals/physiology , Protein Transport/genetics , Protein Transport/physiology
13.
SLAS Discov ; 24(10): 953-968, 2019 12.
Article in English | MEDLINE | ID: mdl-31503511

ABSTRACT

Physiological nucleosides are used for the synthesis of DNA, RNA, and ATP in the cell and serve as universal mammalian signaling molecules that regulate physiological processes such as vasodilation and platelet aggregation by engaging with cell surface receptors. The same pathways that allow uptake of physiological nucleosides mediate the cellular import of synthetic nucleoside analogs used against cancer, HIV, and other viral diseases. Physiological nucleosides and nucleoside drugs are imported by two families of nucleoside transporters: the SLC28 concentrative nucleoside transporters (CNTs) and SLC29 equilibrative nucleoside transporters (ENTs). The four human ENT paralogs are expressed in distinct tissues, localize to different subcellular sites, and transport a variety of different molecules. Here we provide an overview of the known structure-function relationships of the ENT family with a focus on ligand binding and transport in the context of a new hENT1 homology model. We provide a generic residue numbering system for the different ENTs to facilitate the interpretation of mutational data produced using different ENT homologs. The discovery of paralog-selective small-molecule modulators is highly relevant for the design of new therapies and for uncovering the functions of poorly characterized ENT family members. Here, we discuss recent developments in the discovery of new paralog-selective small-molecule ENT inhibitors, including new natural product-inspired compounds. Recent progress in the ability to heterologously produce functional ENTs will allow us to gain insight into the structure and functions of different ENT family members as well as the rational discovery of highly selective inhibitors.


Subject(s)
Drug Design , Drug Discovery , Equilibrative Nucleoside Transport Proteins/chemistry , Amino Acid Sequence , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacology , Drug Discovery/methods , Equilibrative Nucleoside Transport Proteins/antagonists & inhibitors , Equilibrative Nucleoside Transport Proteins/genetics , Humans , Ligands , Molecular Structure , Mutation , Protein Binding , Structure-Activity Relationship
14.
J Am Chem Soc ; 141(21): 8450-8461, 2019 05 29.
Article in English | MEDLINE | ID: mdl-31059257

ABSTRACT

Ipomoeassin F is a potent natural cytotoxin that inhibits growth of many tumor cell lines with single-digit nanomolar potency. However, its biological and pharmacological properties have remained largely unexplored. Building upon our earlier achievements in total synthesis and medicinal chemistry, we used chemical proteomics to identify Sec61α (protein transport protein Sec61 subunit alpha isoform 1), the pore-forming subunit of the Sec61 protein translocon, as a direct binding partner of ipomoeassin F in living cells. The interaction is specific and strong enough to survive lysis conditions, enabling a biotin analogue of ipomoeassin F to pull down Sec61α from live cells, yet it is also reversible, as judged by several experiments including fluorescent streptavidin staining, delayed competition in affinity pulldown, and inhibition of TNF biogenesis after washout. Sec61α forms the central subunit of the ER protein translocation complex, and the binding of ipomoeassin F results in a substantial, yet selective, inhibition of protein translocation in vitro and a broad ranging inhibition of protein secretion in live cells. Lastly, the unique resistance profile demonstrated by specific amino acid single-point mutations in Sec61α provides compelling evidence that Sec61α is the primary molecular target of ipomoeassin F and strongly suggests that the binding of this natural product to Sec61α is distinctive. Therefore, ipomoeassin F represents the first plant-derived, carbohydrate-based member of a novel structural class that offers new opportunities to explore Sec61α function and to further investigate its potential as a therapeutic target for drug discovery.


Subject(s)
Glycoconjugates/pharmacology , SEC Translocation Channels/antagonists & inhibitors , Binding Sites/drug effects , Glycoconjugates/chemistry , Humans , Molecular Structure , Protein Transport/drug effects , SEC Translocation Channels/metabolism
15.
Nat Chem ; 11(3): 254-263, 2019 03.
Article in English | MEDLINE | ID: mdl-30532015

ABSTRACT

Rapamycin and FK506 are macrocyclic natural products with an extraordinary mode of action, in which they form binary complexes with FK506-binding protein (FKBP) through a shared FKBP-binding domain before forming ternary complexes with their respective targets, mechanistic target of rapamycin (mTOR) and calcineurin, respectively. Inspired by this, we sought to build a rapamycin-like macromolecule library to target new cellular proteins by replacing the effector domain of rapamycin with a combinatorial library of oligopeptides. We developed a robust macrocyclization method using ring-closing metathesis and synthesized a 45,000-compound library of hybrid macrocycles (named rapafucins) using optimized FKBP-binding domains. Screening of the rapafucin library in human cells led to the discovery of rapadocin, an inhibitor of nucleoside uptake. Rapadocin is a potent, isoform-specific and FKBP-dependent inhibitor of the equilibrative nucleoside transporter 1 and is efficacious in an animal model of kidney ischaemia reperfusion injury. Together, these results demonstrate that rapafucins are a new class of chemical probes and drug leads that can expand the repertoire of protein targets well beyond mTOR and calcineurin.


Subject(s)
Drug Discovery/methods , Macrolides/chemistry , Macrolides/metabolism , Protective Agents/chemistry , Protective Agents/metabolism , Acute Kidney Injury/metabolism , Acute Kidney Injury/prevention & control , Animals , Cell Line , Human Umbilical Vein Endothelial Cells , Humans , Mice , Proteome/metabolism , Reperfusion Injury/metabolism , Reperfusion Injury/prevention & control , Sirolimus/chemistry , Sirolimus/metabolism , Swine , TOR Serine-Threonine Kinases/chemistry , TOR Serine-Threonine Kinases/metabolism , Tacrolimus/chemistry , Tacrolimus/metabolism , Tacrolimus Binding Proteins/chemistry , Tacrolimus Binding Proteins/metabolism
16.
Front Cell Neurosci ; 12: 217, 2018.
Article in English | MEDLINE | ID: mdl-30123108

ABSTRACT

Many actin cytoskeleton-regulating proteins control dendritic spine morphology and density, which are cellular features often altered in autism spectrum disorder (ASD). Recent studies using animal models show that autism-related behavior can be rescued by either manipulating actin regulators or by reversing dendritic spine density or morphology. Based on these studies, the actin cytoskeleton is a potential target pathway for developing new ASD treatments. Thus, it is important to understand how different ASD-associated actin regulators contribute to the regulation of dendritic spines and how ASD-associated mutations modulate this regulation. For this study, we selected five genes encoding different actin-regulating proteins and induced ASD-associated de novo missense mutations in these proteins. We assessed the functionality of the wild-type and mutated proteins by analyzing their subcellular localization, and by analyzing the dendritic spine phenotypes induced by the expression of these proteins. As the imbalance between excitation and inhibition has been suggested to have a central role in ASD, we additionally evaluated the density, size and subcellular localization of inhibitory synapses. Common for all the proteins studied was the enrichment in dendritic spines. ASD-associated mutations induced changes in the localization of α-actinin-4, which localized less to dendritic spines, and for SWAP-70 and SrGAP3, which localized more to dendritic spines. Among the wild-type proteins studied, only α-actinin-4 expression caused a significant change in dendritic spine morphology by increasing the mushroom spine density and decreasing thin spine density. We hypothesized that mutations associated with ASD shift dendritic spine morphology from mushroom to thin spines. An M554V mutation in α-actinin-4 (ACTN4) resulted in the expected shift in dendritic spine morphology by increasing the density of thin spines. In addition, we observed a trend toward higher thin spine density with mutations in myosin IXb and SWAP-70. Myosin IIb and myosin IXb expression increased the proportion of inhibitory synapses in spines. The expression of mutated myosin IIb (Y265C), SrGAP3 (E469K), and SWAP-70 (L544F) induced variable changes in inhibitory synapses.

17.
Mol Cell Proteomics ; 17(9): 1750-1765, 2018 09.
Article in English | MEDLINE | ID: mdl-29915147

ABSTRACT

Mycolactone is a bacteria-derived macrolide that blocks the biogenesis of a large array of secretory and integral transmembrane proteins (TMP) through potent inhibition of the Sec61 translocon. Here, we used quantitative proteomics to delineate the direct and indirect effects of mycolactone-mediated Sec61 blockade in living cells. In T lymphocytes, dendritic cells and sensory neurons, Sec61 substrates downregulated by mycolactone were in order of incidence: secretory proteins (with a signal peptide but no transmembrane domain), TMPs with a signal peptide (Type I) and TMPs without signal peptide and a cytosolic N terminus (Type II). TMPs without a signal peptide and the opposite N terminus topology (Type III) were refractory to mycolactone inhibition. This rule applied comparably to single- and multi-pass TMPs, and extended to exogenous viral proteins. Parallel to its broad-spectrum inhibition of Sec61-mediated protein translocation, mycolactone rapidly induced cytosolic chaperones Hsp70/Hsp90. Moreover, it activated an atypical endoplasmic reticulum stress response, differing from conventional unfolded protein response by the down-regulation of Bip. In addition to refining our mechanistic understanding of Sec61 inhibition by mycolactone, our findings thus reveal that Sec61 blockade induces proteostatic stress in the cytosol and the endoplasmic reticulum.


Subject(s)
Macrolides/pharmacology , Proteomics/methods , SEC Translocation Channels/metabolism , Stress, Physiological , Animals , Endoplasmic Reticulum Stress/drug effects , Membrane Proteins/metabolism , Mice , Stress, Physiological/drug effects , Substrate Specificity/drug effects , Transcription Factors/metabolism , Transcription, Genetic/drug effects , Up-Regulation/drug effects , Viral Proteins/metabolism
18.
Biochim Biophys Acta Biomembr ; 1859(5): 1059-1065, 2017 May.
Article in English | MEDLINE | ID: mdl-28254415

ABSTRACT

The human equilibrative nucleoside transporter-1 (hENT1) is important for the entry of anti-cancer and anti-viral nucleoside analog therapeutics into the cell, and thus for their efficacy. Understanding of hENT1 structure-function relationship could assist with development of nucleoside analogs with better cellular uptake properties. However, structural and biophysical studies of hENT1 remain challenging as the hydrophobic nature of the protein leads to complete aggregation upon detergent-based membrane isolation. Here we report detergent-free reconstitution of the hENT1 transporter into styrene maleic acid co-polymer lipid particles (SMALPs) that form a native lipid disc. SMALP-purified hENT1, expressed in Sf9 insect cells binds a variety of ligands with a similar affinity as the protein in native membrane, and exhibits increased thermal stability compared to detergent-solubilized hENT1. hENT1-SMALPs purified using FLAG affinity M2 resin yielded ~0.4mg of active and homogenous protein per liter of culture as demonstrated by ligand binding, size-exclusion chromatography and SDS-PAGE analyses. Electrospray ionization mass spectrometry (ESI-MS) analysis showed that each hENT1 lipid disc contains 16 phosphatidylcholine (PC) and 2 phosphatidylethanolamine (PE) lipid molecules. Polyunsaturated lipids are specifically excluded from the hENT1 lipid discs, possibly reflecting a functional requirement for a dynamic lipid environment. Our work demonstrates that human nucleoside transporters can be extracted and purified without removal from their native lipid environment, opening up a wide range of possibilities for their biophysical and structural studies.


Subject(s)
Equilibrative Nucleoside Transporter 1/chemistry , Maleates/chemistry , Polystyrenes/chemistry , Animals , Equilibrative Nucleoside Transporter 1/physiology , Humans , Membrane Lipids/chemistry , Protein Stability , Sf9 Cells , Solubility
19.
J Exp Med ; 213(13): 2885-2896, 2016 12 12.
Article in English | MEDLINE | ID: mdl-27821549

ABSTRACT

Mycolactone, an immunosuppressive macrolide released by the human pathogen Mycobacterium ulcerans, was previously shown to impair Sec61-dependent protein translocation, but the underlying molecular mechanism was not identified. In this study, we show that mycolactone directly targets the α subunit of the Sec61 translocon to block the production of secreted and integral membrane proteins with high potency. We identify a single-amino acid mutation conferring resistance to mycolactone, which localizes its interaction site near the lumenal plug of Sec61α. Quantitative proteomics reveals that during T cell activation, mycolactone-mediated Sec61 blockade affects a selective subset of secretory proteins including key signal-transmitting receptors and adhesion molecules. Expression of mutant Sec61α in mycolactone-treated T cells rescued their homing potential and effector functions. Furthermore, when expressed in macrophages, the mycolactone-resistant mutant restored IFN-γ receptor-mediated antimicrobial responses. Thus, our data provide definitive genetic evidence that Sec61 is the host receptor mediating the diverse immunomodulatory effects of mycolactone and identify Sec61 as a novel regulator of immune cell functions.


Subject(s)
Macrolides/pharmacology , Receptors, Interferon/immunology , SEC Translocation Channels/antagonists & inhibitors , Signal Transduction/drug effects , T-Lymphocytes/immunology , Cell Adhesion/drug effects , Cell Adhesion/genetics , Cell Adhesion/immunology , Humans , Jurkat Cells , Receptors, Interferon/genetics , SEC Translocation Channels/genetics , SEC Translocation Channels/immunology , Signal Transduction/genetics , Signal Transduction/immunology , Interferon gamma Receptor
20.
Cell Chem Biol ; 23(5): 561-566, 2016 05 19.
Article in English | MEDLINE | ID: mdl-27203376

ABSTRACT

Apratoxin A is a cytotoxic natural product that prevents the biogenesis of secretory and membrane proteins. Biochemically, apratoxin A inhibits cotranslational translocation into the ER, but its cellular target and mechanism of action have remained controversial. Here, we demonstrate that apratoxin A prevents protein translocation by directly targeting Sec61α, the central subunit of the protein translocation channel. Mutagenesis and competitive photo-crosslinking studies indicate that apratoxin A binds to the Sec61 lateral gate in a manner that differs from cotransin, a substrate-selective Sec61 inhibitor. In contrast to cotransin, apratoxin A does not exhibit a substrate-selective inhibitory mechanism, but blocks ER translocation of all tested Sec61 clients with similar potency. Our results suggest that multiple structurally unrelated natural products have evolved to target overlapping but non-identical binding sites on Sec61, thereby producing distinct biological outcomes.


Subject(s)
Depsipeptides/pharmacology , SEC Translocation Channels/antagonists & inhibitors , Cell Death/drug effects , Depsipeptides/chemistry , Dose-Response Relationship, Drug , HCT116 Cells , Humans , Molecular Structure , Protein Transport/drug effects , SEC Translocation Channels/metabolism , Structure-Activity Relationship
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