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64


Discovery of a novel inhibitor of macropinocytosis with antiviral activity

Porebski, Bartlomiej; Christ, Wanda; Corman, Alba; Haraldsson, Martin; Barz, Myriam; Lidemalm, Louise; Häggblad, Maria; Ilmain, Juliana; Wright, Shane C; Murga, Matilde; Schlegel, Jan; Jarvius, Malin; Lapins, Maris; Sezgin, Erdinc; Bhabha, Gira; Lauschke, Volker M; Carreras-Puigvert, Jordi; Lafarga, Miguel; Klingström, Jonas; Hühn, Daniela; Fernandez-Capetillo, Oscar
Several viruses hijack various forms of endocytosis in order to infect host cells. Here, we report the discovery of a molecule with antiviral properties that we named virapinib, which limits viral entry by macropinocytosis. The identification of virapinib derives from a chemical screen using high-throughput microscopy, where we identified chemical entities capable of preventing infection with a pseudotype virus expressing the spike (S) protein from SARS-CoV-2. Subsequent experiments confirmed the capacity of virapinib to inhibit infection by SARS-CoV-2, as well as by additional viruses, such as mpox virus and TBEV. Mechanistic analyses revealed that the compound inhibited macropinocytosis, limiting this entry route for the viruses. Importantly, virapinib has no significant toxicity to host cells. In summary, we present the discovery of a molecule that inhibits macropinocytosis, thereby limiting the infectivity of viruses that use this entry route such as SARS-CoV2.
PMID: 38956870
ISSN: 1525-0024
CID: 5687122

Modulation of FGF pathway signaling and vascular differentiation using designed oligomeric assemblies

Edman, Natasha I; Phal, Ashish; Redler, Rachel L; Schlichthaerle, Thomas; Srivatsan, Sanjay R; Ehnes, Devon Duron; Etemadi, Ali; An, Seong J; Favor, Andrew; Li, Zhe; Praetorius, Florian; Gordon, Max; Vincent, Thomas; Marchiano, Silvia; Blakely, Leslie; Lin, Chuwei; Yang, Wei; Coventry, Brian; Hicks, Derrick R; Cao, Longxing; Bethel, Neville; Heine, Piper; Murray, Analisa; Gerben, Stacey; Carter, Lauren; Miranda, Marcos; Negahdari, Babak; Lee, Sangwon; Trapnell, Cole; Zheng, Ying; Murry, Charles E; Schweppe, Devin K; Freedman, Benjamin S; Stewart, Lance; Ekiert, Damian C; Schlessinger, Joseph; Shendure, Jay; Bhabha, Gira; Ruohola-Baker, Hannele; Baker, David
Many growth factors and cytokines signal by binding to the extracellular domains of their receptors and driving association and transphosphorylation of the receptor intracellular tyrosine kinase domains, initiating downstream signaling cascades. To enable systematic exploration of how receptor valency and geometry affect signaling outcomes, we designed cyclic homo-oligomers with up to 8 subunits using repeat protein building blocks that can be modularly extended. By incorporating a de novo-designed fibroblast growth factor receptor (FGFR)-binding module into these scaffolds, we generated a series of synthetic signaling ligands that exhibit potent valency- and geometry-dependent Ca2+ release and mitogen-activated protein kinase (MAPK) pathway activation. The high specificity of the designed agonists reveals distinct roles for two FGFR splice variants in driving arterial endothelium and perivascular cell fates during early vascular development. Our designed modular assemblies should be broadly useful for unraveling the complexities of signaling in key developmental transitions and for developing future therapeutic applications.
PMID: 38861993
ISSN: 1097-4172
CID: 5668982

scRNA-seq reveals transcriptional dynamics of Encephalitozoon intestinalis parasites in human macrophages

Jaroenlak, Pattana; McCarty, Kacie L; Xia, Bo; Lam, Cherry; Zwack, Erin E; Yanai, Itai; Bhabha, Gira; Ekiert, Damian C
Microsporidia are single-celled intracellular parasites that cause opportunistic diseases in humans. Encephalitozoon intestinalis is a prevalent human-infecting species that invades the small intestine. Dissemination to other organ systems is also observed, and is potentially facilitated by macrophages. The macrophage response to infection and the developmental trajectory of the parasite are not well studied. Here we use single cell RNA sequencing to investigate transcriptional changes in both the host and parasite during infection. While a small population of infected macrophages mount a response, most remain transcriptionally unchanged, suggesting that the majority of parasites may avoid host detection. The parasite transcriptome reveals large transcriptional changes throughout the life cycle, providing a blueprint for parasite development. The stealthy microsporidian lifestyle likely allows these parasites to harness macrophages for replication and dissemination. Together, our data provide insights into the host response in primary human macrophages and the E. intestinalis developmental program.
PMCID:11160751
PMID: 38853846
CID: 5668742

De novo design of proteins housing excitonically coupled chlorophyll special pairs

Ennist, Nathan M; Wang, Shunzhi; Kennedy, Madison A; Curti, Mariano; Sutherland, George A; Vasilev, Cvetelin; Redler, Rachel L; Maffeis, Valentin; Shareef, Saeed; Sica, Anthony V; Hua, Ash Sueh; Deshmukh, Arundhati P; Moyer, Adam P; Hicks, Derrick R; Swartz, Avi Z; Cacho, Ralph A; Novy, Nathan; Bera, Asim K; Kang, Alex; Sankaran, Banumathi; Johnson, Matthew P; Phadkule, Amala; Reppert, Mike; Ekiert, Damian; Bhabha, Gira; Stewart, Lance; Caram, Justin R; Stoddard, Barry L; Romero, Elisabet; Hunter, C Neil; Baker, David
Natural photosystems couple light harvesting to charge separation using a 'special pair' of chlorophyll molecules that accepts excitation energy from the antenna and initiates an electron-transfer cascade. To investigate the photophysics of special pairs independently of the complexities of native photosynthetic proteins, and as a first step toward creating synthetic photosystems for new energy conversion technologies, we designed C2-symmetric proteins that hold two chlorophyll molecules in closely juxtaposed arrangements. X-ray crystallography confirmed that one designed protein binds two chlorophylls in the same orientation as native special pairs, whereas a second designed protein positions them in a previously unseen geometry. Spectroscopy revealed that the chlorophylls are excitonically coupled, and fluorescence lifetime imaging demonstrated energy transfer. The cryo-electron microscopy structure of a designed 24-chlorophyll octahedral nanocage with a special pair on each edge closely matched the design model. The results suggest that the de novo design of artificial photosynthetic systems is within reach of current computational methods.
PMID: 38831036
ISSN: 1552-4469
CID: 5665102

Blueprinting extendable nanomaterials with standardized protein blocks

Huddy, Timothy F; Hsia, Yang; Kibler, Ryan D; Xu, Jinwei; Bethel, Neville; Nagarajan, Deepesh; Redler, Rachel; Leung, Philip J Y; Weidle, Connor; Courbet, Alexis; Yang, Erin C; Bera, Asim K; Coudray, Nicolas; Calise, S John; Davila-Hernandez, Fatima A; Han, Hannah L; Carr, Kenneth D; Li, Zhe; McHugh, Ryan; Reggiano, Gabriella; Kang, Alex; Sankaran, Banumathi; Dickinson, Miles S; Coventry, Brian; Brunette, T J; Liu, Yulai; Dauparas, Justas; Borst, Andrew J; Ekiert, Damian; Kollman, Justin M; Bhabha, Gira; Baker, David
A wooden house frame consists of many different lumber pieces, but because of the regularity of these building blocks, the structure can be designed using straightforward geometrical principles. The design of multicomponent protein assemblies, in comparison, has been much more complex, largely owing to the irregular shapes of protein structures1. Here we describe extendable linear, curved and angled protein building blocks, as well as inter-block interactions, that conform to specified geometric standards; assemblies designed using these blocks inherit their extendability and regular interaction surfaces, enabling them to be expanded or contracted by varying the number of modules, and reinforced with secondary struts. Using X-ray crystallography and electron microscopy, we validate nanomaterial designs ranging from simple polygonal and circular oligomers that can be concentrically nested, up to large polyhedral nanocages and unbounded straight 'train track' assemblies with reconfigurable sizes and geometries that can be readily blueprinted. Because of the complexity of protein structures and sequence-structure relationships, it has not previously been possible to build up large protein assemblies by deliberate placement of protein backbones onto a blank three-dimensional canvas; the simplicity and geometric regularity of our design platform now enables construction of protein nanomaterials according to 'back of an envelope' architectural blueprints.
PMID: 38480887
ISSN: 1476-4687
CID: 5644332

Energetics of the microsporidian polar tube invasion machinery

Chang, Ray; Davydov, Ari; Jaroenlak, Pattana; Budaitis, Breane; Ekiert, Damian C; Bhabha, Gira; Prakash, Manu
Microsporidia are eukaryotic, obligate intracellular parasites that infect a wide range of hosts, leading to health and economic burdens worldwide. Microsporidia use an unusual invasion organelle called the polar tube (PT), which is ejected from a dormant spore at ultra-fast speeds, to infect host cells. The mechanics of PT ejection are impressive. Anncaliia algerae microsporidia spores (3-4 μm in size) shoot out a 100-nm-wide PT at a speed of 300 μm/s, creating a shear rate of 3000 s-1. The infectious cargo, which contains two nuclei, is shot through this narrow tube for a distance of ∼60-140 μm (Jaroenlak et al, 2020) and into the host cell. Considering the large hydraulic resistance in an extremely thin tube and the low-Reynolds-number nature of the process, it is not known how microsporidia can achieve this ultrafast event. In this study, we use Serial Block-Face Scanning Electron Microscopy to capture 3-dimensional snapshots of A. algerae spores in different states of the PT ejection process. Grounded in these data, we propose a theoretical framework starting with a systematic exploration of possible topological connectivity amongst organelles, and assess the energy requirements of the resulting models. We perform PT firing experiments in media of varying viscosity, and use the results to rank our proposed hypotheses based on their predicted energy requirement. We also present a possible mechanism for cargo translocation, and quantitatively compare our predictions to experimental observations. Our study provides a comprehensive biophysical analysis of the energy dissipation of microsporidian infection process and demonstrates the extreme limits of cellular hydraulics.
PMID: 38381133
ISSN: 2050-084x
CID: 5634292

Unlatching of the stem domains in the Staphylococcus aureus pore-forming leukocidin LukAB influences toxin oligomerization

Ilmain, Juliana K; Perelman, Sofya S; Panepinto, Maria C; Irnov, Irnov; Coudray, Nicolas; Samhadaneh, Nora; Pironti, Alejandro; Ueberheide, Beatrix; Ekiert, Damian C; Bhabha, Gira; Torres, Victor J
Staphylococcus aureus (S. aureus) is a serious global pathogen that causes a diverse range of invasive diseases. S. aureus utilizes a family of pore-forming toxins, known as bi-component leukocidins, to evade the host immune response and promote infection. Among these is LukAB (leukocidin A/leukocidin B), a toxin that assembles into an octameric β-barrel pore in the target cell membrane, resulting in host cell death. The established cellular receptor for LukAB is CD11b of the Mac-1 complex. Here, we show that hydrogen voltage-gated channel 1 is also required for the cytotoxicity of all major LukAB variants. We demonstrate that while each receptor is sufficient to recruit LukAB to the plasma membrane, both receptors are required for maximal lytic activity. Why LukAB requires two receptors, and how each of these receptors contributes to pore-formation remains unknown. To begin to resolve this, we performed an alanine scanning mutagenesis screen to identify mutations that allow LukAB to maintain cytotoxicity without CD11b. We discovered 30 mutations primarily localized in the stem domains of LukA and LukB that enable LukAB to exhibit full cytotoxicity in the absence of CD11b. Using crosslinking, electron microscopy, and hydroxyl radical protein footprinting, we show these mutations increase the solvent accessibility of the stem domain, priming LukAB for oligomerization. Together, our data support a model in which CD11b binding unlatches the membrane penetrating stem domains of LukAB, and this change in flexibility promotes toxin oligomerization.
PMCID:10665946
PMID: 37802313
ISSN: 1083-351x
CID: 5614202

Protein target highlights in CASP15: Analysis of models by structure providers

Alexander, Leila T; Durairaj, Janani; Kryshtafovych, Andriy; Abriata, Luciano A; Bayo, Yusupha; Bhabha, Gira; Breyton, Cécile; Caulton, Simon G; Chen, James; Degroux, Séraphine; Ekiert, Damian C; Erlandsen, Benedikte S; Freddolino, Peter L; Gilzer, Dominic; Greening, Chris; Grimes, Jonathan M; Grinter, Rhys; Gurusaran, Manickam; Hartmann, Marcus D; Hitchman, Charlie J; Keown, Jeremy R; Kropp, Ashleigh; Kursula, Petri; Lovering, Andrew L; Lemaitre, Bruno; Lia, Andrea; Liu, Shiheng; Logotheti, Maria; Lu, Shuze; Markússon, Sigurbjörn; Miller, Mitchell D; Minasov, George; Niemann, Hartmut H; Opazo, Felipe; Phillips, George N; Davies, Owen R; Rommelaere, Samuel; Rosas-Lemus, Monica; Roversi, Pietro; Satchell, Karla; Smith, Nathan; Wilson, Mark A; Wu, Kuan-Lin; Xia, Xian; Xiao, Han; Zhang, Wenhua; Zhou, Z Hong; Fidelis, Krzysztof; Topf, Maya; Moult, John; Schwede, Torsten
We present an in-depth analysis of selected CASP15 targets, focusing on their biological and functional significance. The authors of the structures identify and discuss key protein features and evaluate how effectively these aspects were captured in the submitted predictions. While the overall ability to predict three-dimensional protein structures continues to impress, reproducing uncommon features not previously observed in experimental structures is still a challenge. Furthermore, instances with conformational flexibility and large multimeric complexes highlight the need for novel scoring strategies to better emphasize biologically relevant structural regions. Looking ahead, closer integration of computational and experimental techniques will play a key role in determining the next challenges to be unraveled in the field of structural molecular biology.
PMID: 37493353
ISSN: 1097-0134
CID: 5607612

3D reconstructions of parasite development and the intracellular niche of the microsporidian pathogen Encephalitozoon intestinalis

Antao, Noelle V; Lam, Cherry; Davydov, Ari; Riggi, Margot; Sall, Joseph; Petzold, Christopher; Liang, Feng-Xia; Iwasa, Janet H; Ekiert, Damian C; Bhabha, Gira
Microsporidia are an early-diverging group of fungal pathogens with a wide host range. Several microsporidian species cause opportunistic infections in humans that can be fatal. As obligate intracellular parasites with highly reduced genomes, microsporidia are dependent on host metabolites for successful replication and development. Our knowledge of microsporidian intracellular development remains rudimentary, and our understanding of the intracellular niche occupied by microsporidia has relied on 2D TEM images and light microscopy. Here, we use serial block-face scanning electron microscopy (SBF-SEM) to capture 3D snapshots of the human-infecting species, Encephalitozoon intestinalis, within host cells. We track E. intestinalis development through its life cycle, which allows us to propose a model for how its infection organelle, the polar tube, is assembled de novo in developing spores. 3D reconstructions of parasite-infected cells provide insights into the physical interactions between host cell organelles and parasitophorous vacuoles, which contain the developing parasites. The host cell mitochondrial network is substantially remodeled during E. intestinalis infection, leading to mitochondrial fragmentation. SBF-SEM analysis shows changes in mitochondrial morphology in infected cells, and live-cell imaging provides insights into mitochondrial dynamics during infection. Our data provide insights into parasite development, polar tube assembly, and microsporidia-induced host mitochondria remodeling.
PMID: 37996434
ISSN: 2041-1723
CID: 5608812

Structure of an endogenous mycobacterial MCE lipid transporter

Chen, James; Fruhauf, Alice; Fan, Catherine; Ponce, Jackeline; Ueberheide, Beatrix; Bhabha, Gira; Ekiert, Damian C
To replicate inside macrophages and cause tuberculosis, Mycobacterium tuberculosis must scavenge a variety of nutrients from the host1,2. The mammalian cell entry (MCE) proteins are important virulence factors in M. tuberculosis1,3, where they are encoded by large gene clusters and have been implicated in the transport of fatty acids4-7 and cholesterol1,4,8 across the impermeable mycobacterial cell envelope. Very little is known about how cargos are transported across this barrier, and it remains unclear how the approximately ten proteins encoded by a mycobacterial mce gene cluster assemble to transport cargo across the cell envelope. Here we report the cryo-electron microscopy (cryo-EM) structure of the endogenous Mce1 lipid-import machine of Mycobacterium smegmatis-a non-pathogenic relative of M. tuberculosis. The structure reveals how the proteins of the Mce1 system assemble to form an elongated ABC transporter complex that is long enough to span the cell envelope. The Mce1 complex is dominated by a curved, needle-like domain that appears to be unrelated to previously described protein structures, and creates a protected hydrophobic pathway for lipid transport across the periplasm. Our structural data revealed the presence of a subunit of the Mce1 complex, which we identified using a combination of cryo-EM and AlphaFold2, and name LucB. Our data lead to a structural model for Mce1-mediated lipid import across the mycobacterial cell envelope.
PMID: 37495693
ISSN: 1476-4687
CID: 5594732