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Vahdat, D.

Publications and source records attributed to Vahdat, D..

4 recordsLinked to original sources

Structural basis of diverse antibody recognition of conserved coronavirus spike S2 epitopes that contribute to protective immunity

Conserved epitopes within the coronavirus spike S2 domain elicit broadly reactive antibodies, yet many characterized responses show limited neutralizing and variable protective activity, leaving their contribution to antiviral immunity unclear. Building on our previous mapping of evolutionarily conserved spike coldspots, we isolated human monoclonal antibodies targeting four conserved epitopes in the spike S2 domain: the internal fusion peptide (iFP), the central helix (CH), the connector domain (CD), and a membrane-proximal epitope in the heptad repeat 2 that we term the lower stalk (LS). A crystal structure of an LS-directed antibody defined a previously unresolved mode of antibody recognition of this membrane-proximal epitope, while cryogenic electron microscopy (cryo-EM) structures revealed that genetically diverse CH-specific antibodies use distinct binding modes to converge on conserved features of the prefusion S2 apex. Despite minimal neutralizing activity, CH- and LS-directed antibodies exhibited distinct antiviral functions. LS-directed antibodies mediated Fc{gamma} receptor-dependent effector activity in vitro, whereas the broadly reactive CH-directed antibody ch.007 lacked detectable antibody-dependent cellular cytotoxicity (ADCC) or cellular phagocytosis (ADCP) activity yet protected mice from lethal SARS-CoV-2 MA10 challenge, with protection abrogated by Fc{gamma} receptor-silencing mutations. Together, these findings expand the genetic, structural and functional landscape of human antibody responses to conserved coronavirus S2 epitopes and demonstrate that CH-directed antibodies can contribute to protective immunity through Fc-dependent mechanisms not predicted by in vitro neutralization or conventional in vitro Fc effector assays.

biophysics↗

Structural and mutational analyses define distinct molecular routes to broad SARS-CoV-2 receptor-binding domain recognition

Broadly reactive antibodies elicited by SARS-CoV-2 infection or vaccination can reveal conserved viral vulnerabilities and inform vaccines with broad coronavirus coverage. Here, we characterize two human-derived monoclonal antibodies, B2014 and C5078, that recognize conserved epitopes on the SARS-CoV-2 RBD and retain activity across antigenically distinct variants. Notably, C5078 also recognizes diverse sarbecoviruses and remains active against currently circulating variants, including XFG and NB.1.8.1. Cryo-EM structures reveal that B2014 recognizes an epitope adjacent to the class 3 antibody site, whereas C5078 targets the highly conserved, cryptic site V epitope. Structural analysis defines how C5078 uses affinity-matured interactions to engage conserved RBD residues, providing a molecular basis for its exceptional breadth. Deep mutational scanning across multiple SARS-CoV-2 variant backgrounds further defines potential pathways of antibody escape, explaining the loss of B2014 activity against antigenically evolved variants while revealing a high barrier to escape from C5078. Together, these findings define distinct structural solutions for broad RBD recognition and highlight conserved, mutationally constrained epitopes that may serve as targets for vaccines designed to elicit antibody responses resilient to ongoing SARS-CoV-2 evolution and future sarbecovirus emergence.

biophysics↗

Altering cell size asymmetry in Drosophila neural stem cells creates supernumerary stem cells with limited lineage expansion potential

Asymmetrically dividing invertebrate and vertebrate stem cells can generate unequal sized sibling cells. However, the functional implications of cell size asymmetry (CSA) are underexplored. Here, we use Drosophila neural stem cells (NSCs) to investigate how changes in CSA impact NSC proliferation and cell fate decisions. Using live cell imaging, NSC lineage analysis, and gene expression profiling, we find that altering CSA increases the NSC pool but decreases lineage size and the number of differentiating progeny cells. Modeling CSA in silico with a volume-sensitivity and NSC self-inhibition model can recapitulate these findings. Gene expression profiling further revealed that the NSC growth regulator Imp and the G1-S cell cycle regulator CycE are upregulated in NSCs with altered CSA, providing a potential molecular link to the volume-sensitivity model. We propose that cell size and position regulate NSC proliferation and differential potential, impacting lineage progression and progeny cell differentiation in the developing Drosophila brain.

cell biology↗

Protein phosphatase 4 is required for centrosome asymmetry in fly neural stem cells

Asymmetric cell division is used by stem cells to create diverse cell types while self-renewing the stem cell population. Biased segregation of molecularly distinct centrosomes could provide a mechanism to maintain stem cell fate, induce cell differentiation or both. However, the molecular mechanisms generating molecular and functional asymmetric centrosomes remain incompletely understood. Here, we show that in asymmetrically dividing fly neural stem cells, Protein phosphatase 4 (Pp4) is necessary for correct centrosome asymmetry establishment during mitosis, and microtubule organizing center (MTOC) maintenance in interphase. Using in-vivo live cell imaging we show that while wild type neural stem cells always maintain one active MTOC, Pp4 mutant neuroblasts contain two inactive centrioles in interphase. Furthermore, centrosomes of Pp4 mutant neural stem cells mature in mitosis but fail to correctly transfer the centriolar protein Centrobin (Cnb) from the mother to the daughter centriole. Using superresolution imaging, we find that phosphomimetic Centrobin fails to accurately relocalize in mitosis. We propose that Pp4 regulates the timely relocalization of Cnb in mitosis to establish two molecularly distinct centrosomes. In addition, Pp4 is also necessary to maintain MTOC activity in interphase, ensuring biased centrosome segregation. Mechanistically, Pp4 could regulate centrosome asymmetry by dephosphorylating both Cnb and gamma-Tubulin. SIGNIFICANCE STATEMENTO_LIAsymmetric centrosome segregation occurs in stem cells and has been linked with cell fate decisions. C_LIO_LIProtein phosphatase 4 (Pp4), a conserved Serine/Threonine phosphatase, regulates centrosome asymmetry in Drosophila neural stem cells by acting upon gamma tubulin and Centrobin. C_LIO_LIPp4 regulates centrosome asymmetry establishment in mitosis and interphase, necessary for biased centrosome segregation. C_LI

cell biology↗