The Endoplasmic Reticulum (ER)-Golgi Intermediate Compartment (ERGIC) is a network of tubules and vesicles known for producing COPI vesicles and receiving COPII vesicles from the ER. Much about its identity, stability, and regulation remains unknown. Here, we show that TUG (UBXN9, Aspscr1) protein, a central regulator of GLUT4 trafficking, localizes to the ERGIC, and that its deletion enhances anterograde flux of a model soluble cargo protein. TUG deletion redistributes ERGIC markers to the cis-Golgi and alters Golgi morphology. TUG forms biomolecular condensates in vitro and contains a central disordered region that mediates its recruitment to ERGIC membranes. A distinct N-terminal region mediates its oligomerization in cells. TUG deletion disrupts ERGIC-dependent processes, including autophagy and collagen secretion, and alters the targeting of the CFTR chloride channel. We conclude that TUG organizes and stabilizes ERGIC membranes to support their roles in diverse secretory and degradative membrane trafficking pathways.
Cell surface acidification has key roles in both cell migration and bone resorption. A study now identifies a pathway whereby growth factor signalling induces local acidification, driving sialic acid removal and galectin-3-mediated integrin internalization.
Mapping the intricate spatial relationships between the many different molecules inside a cell is essential to understanding cellular functions in all their complexity. Super-resolution fluorescence microscopy offers the required spatial resolution but struggles to reveal more than four different targets simultaneously. Exchanging labels in subsequent imaging rounds for multiplexed imaging extends this number but is limited by its low throughput. Here, we present a method for rapid multiplexed super-resolution microscopy that can, in principle, be applied to a nearly unlimited number of molecular targets by leveraging fluorogenic labeling in conjunction with transient adapter-mediated switching for high-throughput DNA-PAINT (FLASH-PAINT). We demonstrate the versatility of FLASH-PAINT with four applications: mapping nine proteins in a single mammalian cell, elucidating the functional organization of primary cilia by nine-target imaging, revealing the changes in proximity of thirteen different targets in unperturbed and dissociated Golgi stacks, and investigating and quantifying inter-organelle contacts at 3D super-resolution.
Neurotransmitter release is a highly orchestrated process that involves calcium-induced vesicle fusion to the plasma membrane. Synaptotagmin-1 (Syt1) is a major vesicular calcium-sensor required for calcium-triggered exocytosis. It binds calcium, lipids, and SNARE proteins via its two tandem cytosolic C2 domains. Syt1 has well-established roles in docking vesicles to the plasma membrane and coupling calcium entry to rapid membrane fusion, but the mechanisms are poorly understood. Here we investigated the roles of polybasic patches on the C2A and C2B domains, on the fusion of secretory granules (SGs) in human neuroendocrine BON cells.
For mitochondrial metabolism to occur in the matrix, multiple proteins must be imported across the two (inner and outer) mitochondrial membranes. Classically, two protein import channels, TIM/TOM, are known to perform this function, but whether other protein import channels exist is not known. Here, using super-resolution microscopy, proteomics, and electrophysiological techniques, we identify CALHM2 as the import channel for the ECHA subunit of the mitochondrial trifunctional protein (mTFP), which catalyzes β-oxidation of fatty acids in the mitochondrial matrix. We find that CALHM2 sits specifically at the inner mitochondrial and cristae membranes and is critical for membrane morphology. Depletion of CALHM2 leads to a mislocalization of ECHA outside of the mitochondria leading to severe cellular metabolic defects. These defects include cytosolic accumulation of fatty acids, depletion of tricarboxylic acid cycle enzymes and intermediates, and reduced cellular respiration. Our data identify CALHM2 as an essential protein import channel that is critical for fatty acid- and glucose-dependent aerobic metabolism.
Synaptotagmin-1 (Syt1) is a major calcium sensor for rapid neurotransmitter release in neurons and hormone release in many neuroendocrine cells. It possesses two tandem cytosolic C2 domains that bind calcium, negatively charged phospholipids, and the neuronal SNARE complex. Calcium binding to Syt1 triggers exocytosis, but how this occurs is not well understood. Syt1 has additional roles in docking dense core vesicles (DCV) and synaptic vesicles (SV) to the plasma membrane (PM) and in regulating fusion pore dynamics. Thus, Syt1 perturbations could affect release through vesicle docking, fusion triggering, fusion pore regulation, or a combination of these. Here, using a human neuroendocrine cell line, we show that neutralization of highly conserved polybasic patches in either C2 domain of Syt1 impairs both DCV docking and efficient release of serotonin from DCVs. Interestingly, the same mutations resulted in larger fusion pores and faster release of serotonin during individual fusion events. Thus, Syt1's roles in vesicle docking, fusion triggering, and fusion pore control may be functionally related.
Structured illumination microscopy (SIM) is a versatile super-resolution technique known for its compatibility with a wide range of probes and fast implementation. While 3D SIM is capable of achieving a spatial resolution of ∼120 nm laterally and ∼300 nm axially, attempting to further enhance the resolution through methods such as nonlinear SIM or 4-beam SIM introduces complexities in optical configurations, increased phototoxicity, and reduced temporal resolution. Here, we have developed a novel method that combines SIM with augmented super-resolution radial fluctuations (aSRRF) utilizing a single image through image augmentation. By applying aSRRF reconstruction to SIM images, we can enhance the SIM resolution to ∼50 nm isotopically, without requiring any modifications to the optical system or sample acquisition process. Additionaly, we have incorporated the aSRRF approach into an ImageJ plugin and demonstrated its versatility across various fluorescence microscopy images, showcasing a remarkable two-fold resolution increase.
Background: B-cell receptor (BCR) signals are essential determinants of survival and proliferation throughout normal B-cell development. In B-cell malignancies, these signals are frequently generated by oncogenic mimics of the BCR signaling pathway. For instance, oncogenes in B-ALL, derived from B-cell precursors, typically mimic survival signals from a constitutively active pre-BCR, while tonic and chronic active BCR signaling were identified in mature B-cell lymphomas. Oncogenic BCR-signaling represents an important target of therapeutic intervention: for instance, small molecule inhibitors of SYK (e.g. entospletinib) and BTK (e.g. ibrutinib) have been developed to disrupt oncogenic BCR signaling in mature B-cell lymphomas. Besides SYK and BTK tyrosine kinases, oncogenic BCR-signaling leads to activation of PLCG2, which initiates the release of Ca 2+ from the ER into the cytoplasm. Thereby, calcium flux is decoded by NFATC1 or NF-kB based on fast (NFATC1) or slow (NF-kB) frequencies of Ca 2+-signals. Significance: To interrogate Ca 2+-signals as critical integration point of oncogenic BCR-signaling, we engineered cell lines and PDX with a GCaMP6s-biosensor, which allows tracing of calcium signaling in single cells over time ( Figure A). To cover B-cell malignancies from multiple stages of B-cell development, we engineered B-ALL (pro- and pre-B cells), mantle cell lymphoma (MCL, naïve B-cells), Burkitt's lymphoma (germinal center), DLBCL (post-GC), multiple myeloma (terminally differentiated plasma cells) and Hodgkin's disease (“crippled” BCR-deficient GC-B cells). Strikingly, B-cell malignancies exhibit autonomous Ca 2+-oscillations, which decreased in their frequency from 20 mHz (pro- and pre-B), 11 mHz (naïve), 4 mHz (germinal center) to 0 mHz in post-GC and terminally differentiated plasma cells based on the differentiation stage of their cell of origin ( Figure A). Results: Given the striking differences in oncogenic BCR-signaling as measured by autonomous Ca 2+ oscillations, we developed an optogenetic system to control the frequency and amplitude of Ca 2+ oscillations by blue light pulses ( Figure B). To model frequency-modulated Ca 2+ signaling in B-cells, we engineered murine pre-B cells carrying an optogenetic tool termed OptoCRAC, which enables reversible activation and inactivation of the plasma membrane Ca 2+ channel Orai1 by intermittent blue light irradiation. Time-lapse imaging of a fluorescent Ca 2+ reporter (R-CaMP1.07) confirmed rapid and reversible Ca 2+ influx in response to intermittent blue light pulses. To assess the phenotypic consequence of high-frequency Ca 2+ oscillations, we developed an LED-array-based optogenetic platform for cell culture plates. While low-frequency Ca 2+ oscillations (0.5 mHz) did not impact cell viability, high-frequency Ca 2+ oscillations (20 mHz) rapidly induced NFAT activation (5 min), and eventually cell death within 72 h ( Figure B). Mechanism and conclusions: To elucidate the mechanistic contribution of NFATC1 in B-cell death induced by fast Ca 2+ oscillations, we tested whether genetic deletion of Nfatc1 is sufficient to rescue B-cell death upon fast Ca 2+ oscillation induced by 20 mHz intermittent blue light pulses. As expected, while B-ALL cells retaining intact Nfatc1 rapidly decreased cell viability, the cells with Cre-mediated deletion persistently remained in cell culture upon 20 mHz Ca 2+ oscillation. In addition to genetic deletion of Nfatc1, we also found that inducible expression of mutant activators of NF-kB signaling were able to rescue B-cells from cell death induced by high-frequency oscillations: Concurrent expression of Card11 L232LI, MYD88 L265P and IKK2 S177E/S181E not only reduced the frequency of autonomous Ca 2+ oscillations but also enabled B-cell survival despite delivery of light-pulses and Ca 2+ oscillations at a fast 20 mHz frequency. We conclude that autonomous Ca 2+ oscillations represent a critical integration point of oncogenic BCR-signaling in B-cell malignancies and that optogenetic control of BCR-downstream Ca 2+ oscillations will reveal previously unrecognized vulnerabilities that can be exploited to increase efficacy of BCR-signaling inhibitors (e.g. ibrutinib, entospletinib, idelalisib) that are currently being used for the treatment of B-cell lymphomas.
Controlled exocytosis and endocytosis of integrin adhesion receptors is required for normal cell adhesion, migration, and signaling. In this chapter, we describe the design of functional β1 integrins carrying extracellular fluorescent or chemically traceable tags (ecto-tag) and methods for their use to image β1 integrin trafficking in cells. We provide approaches to generate cells in which endogenous β1 integrins are replaced by ecto-tagged integrins containing a pH-sensitive fluorophore pHluorin or a HaloTag and describe strategies using photobleaching, selective extracellular/intracellular labeling, and chase, quenching, and blocking to reveal β1 integrin exocytosis, endocytosis, and recycling by live total internal reflection fluorescence (TIRF) microscopy.
Phospholipase D(PLD)and its product phosphatidic acid(PA)function as pleiotropic factors in the regulation of cancer progression,which includes the promotion of cell growth,survival,cell migration,and angiogenesis.1 Chem-ical inhibition of the enzymatic activity of PLD1 and PLD2,or genetic down-regulation of their expression both induce tumor suppression,1 while the compounds for PLD expres-sion inhibition are barely reported.Here,we astonishingly found that the anti-hyperglycemic agents biguanides decreased PLD1 protein expression in cancer cells and further investigated its underlying regulatory mechanism.
Regulation of endothelial barrier function is critical to physiological function of the vasculature, which must dynamically change in many physiologic and pathologic settings. A new study emphasizes the complex relationship between VE-cadherin phosphorylation and vascular leak and the critical role of the tyrosine kinase Yes in this process.
Total internal reflection fluorescence microscopy (TIRFM) provides extremely thin optical sectioning with excellent signal-to-noise ratios, which allows for visualization of membrane dynamics at the cell surface with superb spatiotemporal resolution. In this chapter, TIRFM is used to record and analyze exocytosis of single glucose transporter-4 (GLUT4) containing vesicles in 3T3-L1 adipocytes.
Fibronectin (FN) is an essential structural and regulatory component of the extracellular matrix (ECM), and its binding to integrin receptors supports cell adhesion, migration, and signaling. Here, using live-cell microscopy of fibroblasts expressing FN tagged with a pH-sensitive fluorophore, we show that FN is secreted predominantly at the ventral surface of cells in an integrin-independent manner. Locally secreted FN then undergoes β1 integrin-dependent fibrillogenesis. We find that the site of FN secretion is regulated by cell polarization, which occurs in bursts under stabilized lamellipodia at the leading edge. Moreover, analysis of FN secretion and focal adhesion dynamics suggest that focal adhesion formation precedes FN deposition and that deposition continues during focal adhesion disassembly. Lastly, we show that the polarized FN deposition in spreading and migrating cells requires both intact microtubules and myosin II-mediated contractility. Thus, while FN secretion does not require integrin binding, the site of exocytosis is regulated by membrane and cytoskeletal dynamics with secretion occurring after new adhesion formation.
Abstract Modulation of endothelial cell behavior and phenotype by hemodynamic forces involves many signaling components, including cell surface receptors, intracellular signaling intermediaries, transcription factors, and epigenetic elements. Many of the signaling mechanisms that underlie mechanotransduction by endothelial cells are inadequately defined. Here we sought to better understand how β‐arrestins, intracellular proteins that regulate agonist‐mediated desensitization and integration of signaling by transmembrane receptors, may be involved in the endothelial cell response to shear stress. We performed both in vitro studies with primary endothelial cells subjected to β‐arrestin knockdown, and in vivo studies using mice with endothelial specific deletion of β‐arrestin 1 and β‐arrestin 2. We found that β‐arrestins are localized to primary cilia in endothelial cells, which are present in subpopulations of endothelial cells in relatively low shear states. Recruitment of β‐arrestins to cilia involved its interaction with IFT81, a component of the flagellar transport protein complex in the cilia. β‐arrestin knockdown led to marked reduction in shear stress response, including induction of NOS3 expression. Within the cilia, β‐arrestins were found to associate with the type II bone morphogenetic protein receptor (BMPR‐II), whose disruption similarly led to an impaired endothelial shear response. β‐arrestins also regulated Smad transcription factor phosphorylation by BMPR‐II. Mice with endothelial specific deletion of β‐arrestin 1 and β‐arrestin 2 were found to have impaired retinal angiogenesis. In conclusion, we have identified a novel role for endothelial β‐arrestins as key transducers of ciliary mechanotransduction that play a central role in shear signaling by BMPR‐II and contribute to vascular development.
The phosphoinositide-3 kinase (PI-3K)/AKT cell survival pathway is an important pathway activated by EGFR signaling. Here we show, that in addition to previously described critical components of this pathway, i.e., the docking protein Gab1, the PI-3K/AKT pathway in epithelial cells is regulated by the exocyst complex, which is a vesicle tether that is essential for exocytosis. Using live-cell imaging, we demonstrate that PI(3,4,5)P3 levels fluctuate at the membrane on a minutes time scale and that these fluctuations are associated with local PI(3,4,5)P3 increases at sites where recycling vesicles undergo exocytic fusion. Supporting a role for exocytosis in PI(3,4,5)P3 generation, acute promotion of exocytosis by optogenetically driving exocyst-mediated vesicle tethering up-regulates PI(3,4,5)P3 production and AKT activation. Conversely, acute inhibition of exocytosis using Endosidin2, a small-molecule inhibitor of the exocyst subunit Exo70 (also designated EXOC7), or inhibition of exocyst function by siRNA-mediated knockdown of the exocyst subunit Sec15 (EXOC6), impairs PI(3,4,5)P3 production and AKT activation induced by EGF stimulation of epithelial cells. Moreover, prolonged inhibition of EGF signaling by EGFR tyrosine kinase inhibitors results in spontaneous reactivation of AKT without a concomitant relief of EGFR inhibition. However, this reactivation can be negated by acutely inhibiting the exocyst. These experiments demonstrate that exocyst-mediated exocytosis-by regulating PI(3,4,5)P3 levels at the plasma membrane-subserves activation of the PI-3K/AKT pathway by EGFR in epithelial cells.
A complete understanding of synaptic-vesicle recycling requires the use of multiple microscopy methods to obtain complementary information. However, many currently available probes are limited to a specific microscopy modality, which necessitates the use of multiple probes and labeling paradigms. Given the complexity of vesicle populations and recycling pathways, having new single-vesicle probes that could be used for multiple microscopy techniques would complement existing sets of tools for studying vesicle function. Here, we present a probe based on the membrane-binding C2 domain of cytosolic phospholipase A2 (cPLA2) that fulfills this need. By conjugating the C2 domain with different detectable tags, we demonstrate that a single, modular probe can allow synaptic vesicles to be imaged at multiple levels of spatial and temporal resolution. Moreover, as a general endocytic marker, the C2 domain may also be used to study membrane recycling in many cell types.
A central problem in the COVID-19 pandemic is that there is not enough testing to prevent infectious spread of SARS-CoV-2, causing surges and lockdowns with human and economic toll. Molecular tests that detect viral RNAs or antigens will be unable to rise to this challenge unless testing capacity increases by at least an order of magnitude while decreasing turnaround times. Here, we evaluate an alternative strategy based on the monitoring of olfactory dysfunction, a symptom identified in 76-83% of SARS-CoV-2 infections—including those with no other symptoms—when a standardized olfaction test is used. We model how screening for olfactory dysfunction, with reflexive molecular tests, could be beneficial in reducing community spread of SARS-CoV-2 by varying testing frequency and the prevalence, duration, and onset time of olfactory dysfunction. We find that monitoring olfactory dysfunction could reduce spread via regular screening, and could reduce risk when used at point-of-entry for single-day events. In light of these estimated impacts, and because olfactory tests can be mass produced at low cost and self-administered, we suggest that screening for olfactory dysfunction could be a high impact and cost-effective method for broad COVID-19 screening and surveillance.