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Lotz, S.

Publications and source records attributed to Lotz, S..

5 recordsLinked to original sources

Improved Protocol for Reproducible Human Cortical Organoids Reveals Early Alterations in Metabolism with MAPT Mutations

Human pluripotent stem cell (hPSC)-derived cortical organoids are powerful models but are often limited by low efficiency, variability, and stress-related artifacts. To address these challenges, we developed a scalable organoid platform with end-to-end quality control (QC) metrics spanning manufacturing and single-cell RNA-sequencing (scRNA-seq), developed using eight MAPT mutation isogenic line sets relevant to frontotemporal dementia (FTD-tau). Using a 96 slit-well format, we achieved [~]100% production efficiency across 64 lines. Controlled-release FGF2 enhanced iPSC pluripotency and reduced mesendodermal contaminants, while optimized SB431542 dosing enhanced cortical patterning across lines with variable TGFBR1/ALK5 expression. The resulting organoids displayed transcriptomic profiles and low-stress signatures closely aligned with the developing human cortex. Applying a cortical organoid scRNA-seq index (CortiCOSI), we identified early dysregulation of phosphatase regulators (PPP2CA, ANP32A) and the prefoldin subunit PFDN6 in MAPT V337M excitatory neurons before tau hyperphosphorylation and oligomerization. This platform improves scalability, reproducibility, and mechanistic insight in cortical organoid studies.

neuroscience↗

Single Cell Profiling of CD45+ Spinal Cord Cells Reveals Microglial and B Cell Heterogeneity and Crosstalk Following Spinal Cord Injury

It is well established that immune cells play crucial roles after spinal cord injury (SCI). However, our knowledge of the contributions of various immune cells to injury progression and repair is incomplete. These gaps in understanding hamper development of SCI therapeutics. In the current study, using single-cell RNA sequencing, and transcriptomic analysis, the populations of resident and circulating CD45+ immune cells present within the uninjured and injured mouse spinal cord were identified. In the uninjured and subacutely-injured (7 day) spinal cord, most CD45+ cells were microglia while in chronic SCI (60 day) B cells predominated. Examination of microglia and B cell clusters showed subtype-specific alterations after SCI, including the presence of both immature and mature B cells chronically. Analysis of the expression of signaling partners in B cells and microglia identified injury-related microglia-B-cell interactions. This sequencing resource establishes unidentified interactions revealing new mechanisms to target inflammatory responses for SCI repair.

neuroscience↗

Atomic-Resolution Prediction of Degrader-mediated Ternary Complex Structures by Combining Molecular Simulations with Hydrogen Deuterium Exchange

Targeted protein degradation (TPD) has emerged as a powerful approach in drug discovery for removing (rather than inhibiting) proteins implicated in diseases. A key step in this approach is the formation of an induced proximity complex, where a degrader molecule recruits an E3 ligase to the protein of interest (POI), facilitating the transfer of ubiquitin to the POI and initiating the proteasomal degradation process. Here, we address three critical aspects of the TPD process: 1) formation of the ternary complex induced by a degrader molecule, 2) conformational heterogeneity of the ternary complex, and 3) assessment of ubiquitination propensity via the full Cullin Ring Ligase (CRL) macromolecular assembly. The novel approach presented here combines experimental biophysical data--in this case hydrogen-deuterium exchange mass spectrometry (HDX-MS, which measures the solvent exposure of protein residues)--with all-atom explicit solvent molecular dynamics (MD) simulations aided by enhanced sampling techniques to predict structural ensembles of ternary complexes at atomic resolution. We present results demonstrating the efficiency, accuracy, and reliability of our approach to predict ternary structure ensembles using the bromodomain of SMARCA2 (SMARCA2BD) with the E3 ligase VHL as the system of interest. The simulations reproduce X-ray crystal structures - including prospective simulations validated on a new structure that we determined in this work (PDB ID: 7S4E) - with root mean square deviations (RMSD) of 1.1 to 1.6 [A]. The simulations also reveal a structural ensemble of low-energy conformations of the ternary complex within a broad energy basin. To further characterize the structural ensemble, we used snapshots from the aforementioned simulations as seeds for Hamiltonian replica exchange molecular dynamics (HREMD) simulations, and then perform 7.1 milliseconds of aggregate simulation time using Folding@home. The resulting free energy surface identifies the crystal structure conformation within a broad low-energy basin and the dynamic ensemble is consistent with solution-phase biophysical experimental data (HDX-MS and small-angle x-ray scattering, SAXS). Finally, we graft structures from the ternary complexes onto the full CRL and perform enhanced sampling simulations, where we find that differences in degradation efficiency can be explained by the proximity distribution of lysine residues on the POI relative to the E2-loaded ubiquitin. Several of the top predicted ubiquitinated lysine residues are validated prospectively through a ubiquitin mapping proteomics experiment.

biophysics↗

Glutamatergic dysfunction precedes neuron loss in cerebral organoids with MAPT mutation.

Frontotemporal dementia (FTD) due to MAPT mutation causes pathological accumulation of tau and glutamatergic cortical neuronal death by unknown mechanisms. We used human induced pluripotent stem cell (iPSC)-derived cerebral organoids expressing tau-V337M and isogenic corrected controls to discover early alterations due to the mutation that precede neurodegeneration. At 2 months, mutant organoids show upregulated expression of MAPT, and glutamatergic signaling pathways and regulators including the RNA-binding protein ELAVL4. Over the following 4 months, mutant organoids accumulate splicing changes, disruption of autophagy function and build-up of tau and P-tau S396. By 6 months, tau-V337M organoids show specific loss of glutamatergic neurons of layers affected in patients. Mutant neurons are susceptible to glutamate toxicity which was rescued pharmacologically by treatment with the PIKFYVE kinase inhibitor apilimod. Our results demonstrate a sequence of events that precede cell death, revealing molecular pathways associated with glutamate signaling as potential targets for therapeutic intervention in FTD.

neuroscience↗

Cell-type specific gene expression profiling in heterogeneous in vitro cultures using epitope-tagged RPL22

Genetic and genomic studies of brain disease increasingly demonstrate disease-associated interactions between the cell types of the brain. Increasingly complex and more physiologically relevant human induced pluripotent stem cell (hiPSC)-based models better explore the molecular mechanisms underlying disease, but also challenge our ability to resolve cell-type specific perturbations. Here we report an extension of the RiboTag system, first developed to achieve cell-type restricted expression of epitope-tagged ribosomal protein (RPL22) in mouse tissue, to a variety of in vitro applications, including immortalized cell lines, primary mouse astrocytes, and hiPSC-derived neurons. RiboTag expression enables efficient depletion of off-target RNA in mixed species primary co-cultures and in hiPSC-derived neural progenitor cells, motor neurons, and GABAergic neurons. Nonetheless, depletion efficiency varies across independent experimental replicates. The challenges and potential of implementing RiboTags in complex in vitro cultures are discussed.

molecular biology↗