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Genomic and transcriptomic quality control for an autologous iPSC-derived cell therapy for Parkinson's disease.

Toward development of an autologous, induced pluripotent stem cell (iPSC)-based cell therapy for Parkinson's disease (PD), we demonstrate successful, reproducible genomic and transcriptomic qualification of patient-derived dopaminergic neuron precursor cells (DANPCs) across multiple donors. Our analysis includes whole-genome sequencing data from fibroblasts, iPSCs, and DANPCs and the development of NeuriTest, an RNAseq-based bioinformatic analysis of DANPCs designed to predict cell quality based on empirical animal data. Autologous cell therapies are immune matched to the patient, potentially augmenting durability of benefit compared to allogeneic cells while negating the need for immunosuppression and accompanying side effects. Patient-specific iPSCs are an autologous cell source that can be differentiated to dopaminergic neurons, the cell type lost in PD. We report here our preclinical manufacturing strategy and results demonstrating efficacy in a PD rodent model and safety in a 9-month GLP toxicology study.

Parkinson’s disease

Frataxin deficiency drives cardiac dysfunction and transcriptional dysregulation in Friedreich ataxia iPSC model.

Friedreich ataxia (FRDA) is a progressive neuromuscular degenerative disorder caused by GAA repeat expansions in the FXN gene, leading to frataxin deficiency and multisystem pathology. Cardiomyopathy is the leading cause of mortality in individuals with FRDA. To investigate the cellular and molecular mechanisms underlying FRDA-associated cardiac dysfunction, we employed induced pluripotent stem cell (iPSC) lines derived from three individuals with FRDA, each paired with an isogenic control line generated through CRISPR/Cas9-mediated excision of the pathogenic GAA repeat expansion. Correction of the mutation restored FXN expression to levels comparable to healthy donor iPSCs, and all lines differentiated efficiently into cardiomyocytes. Functional analysis revealed significant contractile abnormalities in FRDA cardiomyocytes and multicellular cardiac microtissues, including prolonged contraction and relaxation times and faster beating rates, consistent with clinical observations of cardiac contractile dysfunction. FRDA cardiomyocytes also exhibited pathological features such as increased cell size, irregular calcium transients, elevated mitochondrial reactive oxygen species levels, increased mitochondrial fission and increased cell death. These phenotypes were exacerbated by pathological levels of iron supplementation in culture media, highlighting the heightened sensitivity of frataxin-deficient cardiomyocytes to iron-induced metabolic stress. RNA sequencing revealed a distinct transcriptional profile associated with frataxin deficiency. MEG3 and PCDHGA10 were consistently dysregulated across all three FRDA-iPSC lines and may represent early molecular markers of FRDA cardiomyopathy. Functional interrogation of these candidates demonstrated that targeted silencing of MEG3 or PCDHGA10 in FRDA cardiomyocytes significantly reduced disease‑associated cell death without affecting FXN expression. Notably, PCDHGA10 silencing also normalized elevated mitochondrial reactive oxygen species, whereas MEG3 silencing did not, highlighting gene‑specific contributions to FRDA cardiomyocyte survival. Collectively, these findings identify MEG3 and PCDHGA10 as functionally relevant regulators of FRDA cardiomyocyte pathology.

Friedreich Ataxia

Proteome Dynamics in iPSC-Derived Human Dopaminergic Neurons.

Dopaminergic neurons participate in fundamental physiological processes and are the cell type primarily affected in Parkinson's disease. Their analysis is challenging due to the intricate nature of their function, involvement in diverse neurological processes, and heterogeneity and localization in deep brain regions. Consequently, most of the research on the protein dynamics of dopaminergic neurons has been performed in animal cells ex vivo. Here we use iPSC-derived human mid-brain-specific dopaminergic neurons to study general features of their proteome biology and provide datasets for protein turnover and dynamics, including a human axonal translatome. We cover the proteome to a depth of 9409 proteins and use dynamic SILAC to measure the half-life of more than 4300 proteins. We report uniform turnover rates of conserved cytosolic protein complexes such as the proteasome and map the variable rates of turnover of the respiratory chain complexes in these cells. We use differential dynamic SILAC labeling in combination with microfluidic devices to analyze local protein synthesis and transport between axons and soma. We report 105 potentially novel axonal markers and detect translocation of 269 proteins between axons and the soma in the time frame of our analysis (120 h). Importantly, we provide evidence for local synthesis of 154 proteins in the axon and their retrograde transport to the soma, among them several proteins involved in RNA editing such as ADAR1 and the RNA helicase DHX30, involved in the assembly of mitochondrial ribosomes. Our study provides a workflow and resource for the future applications of quantitative proteomics in iPSC-derived human neurons.

Humans

Base editing rescues a hereditary motor neuron disease in mouse and patient-derived iPSC organoid models.

In hereditary motor neuron diseases (MNDs), including forms of amyotrophic lateral sclerosis (ALS) caused by single-nucleotide variants, effective therapeutic strategies need to address both gain- and loss-of-function mechanisms. Genome editing-based gene therapy represents a promising approach for simultaneously targeting these mechanisms. To establish proof-of-concept for base editing in a hereditary MND, we targeted the P285L variant in the TRK-fused gene (TFG), which causes hereditary motor and sensory neuropathy with proximal dominant involvement (HMSN-P), a disorder that shares clinical and histopathological features with ALS. We identified the optimal adenine base editor by comparing candidate editors in HMSN-P patient-derived induced pluripotent stem cells (iPSCs). We then generated a transgenic mouse model expressing human TFG P285L and evaluated the selected editor by subpial delivery of adeno-associated virus (AAV) vectors to the spinal cord. AAV-mediated base editing prolonged survival, preserved motor neurons, and attenuated axon loss in ventral nerve roots. Treatment with the selected base editing vector reduced TFG aggregation and suppressed neuronal death in HMSN-P iPSC-derived neuromuscular organoids. Collectively, these findings support the therapeutic potential of base editing for hereditary MNDs.

AAV

CRISPR/Cas9-mediated editing of ERCC6 in iPSCs: A disease model for Cockayne Syndrome type B.

Cockayne Syndrome type B (CSB) is caused by mutations in the ERCC6 gene, which encodes a key protein involved in transcription-coupled nucleotide excision repair (TC-NER) and chromatin remodeling. Deficiency in CSB leads to defective transcriptional recovery after DNA damage, oxidative stress accumulation, and progressive neurodegeneration. In this work, we generated a CRISPR/Cas9-engineered human induced pluripotent stem cell (iPSC) line, IUFi004-A-12, carrying a homozygous mutation in ERCC6 causing a premature stop codon in its 10th exon. The modified iPSCs displayed normal morphology, expressed pluripotency markers, and differentiated into all three germ layers. This model enables mechanistic studies of CSB dysfunction and facilitates therapeutic development for Cockayne Syndrome.

Humans

Generation and characterization of two iPSC lines INDBi002-A and INDBi002-B from human keratinocytes of a healthy female using Sendai Virus reprogramming.

We established two fully characterized induced pluripotent stem cell (iPSC) lines from human keratinocytes via Sendai virus-mediated reprogramming. This non-integrating approach maintains genomic integrity, facilitating the generation of pluripotent cell lines with stable self-renewal and multilineage differentiation potential. Characterization confirmed the expression of stemness markers, the capacity for trilineage differentiation, and a normal karyotype. The iPSC lines are a valuable platform for applications in disease modeling, pharmacological screening, and regenerative medicine.

Humans

Generation of two iPSC lines from ALS patients harboring C9orf72 hexanucleotide repeat expansions.

The GGGGCC hexanucleotide repeat expansion (HRE) within the C9orf72 gene constitutes the leading genetic driver of amyotrophic lateral sclerosis (ALS). This fatal neurodegenerative disorder is characterized by the systematic loss of both the upper and lower motor neurons across both the central and peripheral nervous systems. This work describes the successful reprogramming of two human induced pluripotent stem cell (iPSC) lines originating from two independent ALS patients, both of whom carry a C9orf72 HRE mutation. Validation of the two established iPSC lines confirmed the expression of pluripotency markers, normal karyotypes, and successful trilineage differentiation. Consequently, these lines provide a robust in vitro platform to model ALS and study C9orf72-mediated disease mechanisms.

Humans

Two iPSC lines with frameshift mutations in FTSJ1 as models for X-linked non-syndromic intellectual disability.

CRISPR/Cas9 was used to introduce two different FTSJ1 frameshift mutations into an existing human male iPSC line (UMGWi004-B). No additional genomic or chromosomal changes were detected. The modified iPSC express different stem cell markers and can be induced to differentiate into cells from all three germ layers. FTSJ1 is ubiquitously expressed and mutations in this X-chromosomal gene are involved in an intellectual developmental disorder (OMIM: #309549). These cells can be used to model the disease at the cellular and organoid level in their original state or after differentiation into cell types of interest.

Journal Article

Diversifying the reference iPSC line concept.

We discuss how to diversify the reference iPSC line concept. We highlight workflows for generating diverse iPSC lines. We ask whether reference lines can act as inclusive sources of human diversity for use in benchmarking controls for disease models or drug screens, or as clinical grade lines for cell therapies.

Induced Pluripotent Stem Cells

Cryopreservable dopaminergic progenitors derived from human iPSCs with accelerated loss of pluripotency and early functional restoration in Parkinsonian rats.

Midbrain dopaminergic progenitors (mDAp) derived from human pluripotent stem cells have demonstrated promising safety and efficacy in Phase I clinical transplantation trials for Parkinson's disease (PD). To further improve the translational potential of this approach, strategies that accelerate the loss of pluripotency, increase the yield of in vitro mDA progenitors, and promote post-transplantation neurite outgrowth may be beneficial. Here, we developed an optimized protocol building upon our previously established neural induction method, with further refinements, to efficiently convert induced pluripotent stem cells (iPSCs) into mDA neurons. Additionally, we applied n-butylidenephthalide, which selectively reduced pluripotency-associated gene expression and enhanced neurite outgrowth during differentiation. With these improved techniques, 71% of iPSCs differentiated into mDA neurons, showing burst dopamine secretion and phasic electrophysiological activities with external stimuli. To evaluate the safety, cryopreserved mDAp were transplanted into immunodeficient mice. No teratoma or neural tumor was observed within 24 weeks post-implantation. In 6-OHDA PD rats, mDAp survived and differentiated into mDA neurons in the host striatum within eight weeks post-transplantation, leading to significant functional recovery. The current differentiation process, therefore, enables the generation of cryopreservable, off-the-shelf mDAp, with accelerated loss of the pluripotency marker OCT4 in vitro and early functional recovery following transplantation.

Journal Article

Human iPSC-derived alveolar macrophages reveal macrophage subtype functions of itaconate in M. tuberculosis defense.

Mycobacterium tuberculosis (Mtb) survives within multiple macrophage populations during infection, including alveolar macrophages (AMs) and recruited inflammatory macrophages. In mice, itaconate, produced in macrophages by ACOD1-mediated decarboxylation of aconitate, has direct antimicrobial activity, modulates inflammatory cytokines, and is required for resistance to Mtb infection. The role of itaconate in human macrophages is less clear, and it is unknown whether itaconate mediates distinct effects in macrophage subtypes. Here, we investigated the role of itaconate in macrophages derived from human induced pluripotent stem cells (iPSCs), induced by either GM-CSF to resemble AMs (AM-like cells, hereafter ipAM-Ls) or M-CSF to resemble monocyte-derived macrophages (MDM-like cells, hereafter ipMDM-Ls). Both human macrophage types produced substantially less itaconate than mouse macrophages, and ipAM-Ls produced 4-fold less itaconate than ipMDM-Ls. Surprisingly, ACOD1-deficient ipAM-Ls, but not ipMDM-Ls, were permissive for Mtb growth. Moreover, itaconate functioned to dampen the Mtb-induced inflammatory response in ipMDM-Ls, but not ipAM-Ls, affecting both the type I IFN and TNF pathways. These results indicate that itaconate is involved in human macrophage responses to tuberculosis, with distinct roles in different macrophage subsets. These results also show that genetically tractable iPSC-derived macrophages are a useful model to dissect cellular host-pathogen interactions in human macrophages.

Humans

Proteomics of Duchenne Muscular Dystrophy Patient iPSC-Derived Skeletal Muscle Cells Reveal Differential Expression of Cytoskeletal and Extracellular Matrix Proteins.

Proteomics of dystrophic muscle samples is limited by the amount of protein that can be extracted from patient biopsies. Cells and tissues derived from patient-derived induced pluripotent stem cells (iPSCs) can be an expandable alternative source. We have patterned iPSCs from three Duchenne muscular dystrophy (DMD) patient lines into skeletal muscle cells using a two-dimensional as well as our three-dimensional organoid differentiation system. Probes with sufficient protein amounts could be extracted and prepared for mass spectrometry. In total, 3007 proteins in 2D and 2709 proteins in 3D were detected in DMD patient probes. A total of 83 proteins in 2D and 338 proteins in 3D can be described as differentially expressed between DMD and control patient probes in a post hoc test. We have identified and we propose Myosin-9, Collagen 18A, Tropomyosin 1, BASP1, RUVBL1, and NCAM1 as proteins specifically altered in their expression in DMD for further investigation. Proteomics of skeletal muscle organoids resulted in greater consistency of results between cell lines in comparison to the two-dimensional myogenic differentiation protocol.

Humans

Biallelic rescue of CTG18.1 in two Fuchs endothelial corneal dystrophy-derived iPSC lines (SCTCi047-A-2, SCTCi046-A-2) following a two-step gene editing strategy.

Fuchs endothelial corneal dystrophy (FECD) is an age-related condition distinguished by the degeneration of the corneal endothelium. An intronic CTG18.1 repeat in the transcription factor 4 (TCF4) gene has been associated with a 78-fold increased risk of developing the disease when at least one copy of the CTG18.1 expands above 50 repeats. Employing patient-derived material, we applied a dual CRISPR/Cas9-mediated editing approach to rescue the expansion. Combining non-homologous end-joining (NHEJ) and homologous direct repair (HDR) events, we generated two FECD-derived +/+(CTG)8 induced pluripotent stem cell (iPSC) lines, which were then successfully characterized, providing relevant isogenic controls for disease-modelling purposes.

Humans

Dual CRISPR/Cas9 correction of compound heterozygous MARS2 mutations in the iPSC line ISMMSi060-A from a patient with COXPD25.

We previously described the induced pluripotent stem cell (iPSC) line ISMMSi060-A derived from a patient with Combined Oxidative Phosphorylation Deficiency 25 (COXPD25) carrying compound heterozygous pathogenic variants in the mitochondrial methionyl-tRNA synthetase gene, MARS2. Here, we report the generation of the isogenic control line ISMMSi060-A-1 by CRISPR/Cas9-mediated correction of the MARS2 variants c.424C>T (p.Arg142Trp) and c.550C>T (p.Gln184*). The corrected line retained normal morphology, pluripotency, genomic integrity, and differentiation capacity, providing a valuable resource to study MARS2-related mitochondrial dysfunction and therapeutic strategies for COXPD25.

Humans

Generation of an NKX2-1-EGFP reporter iPSC line with inducible Cas9 for lung progenitor cell tracing.

NK2 homeobox 1 (NKX2-1), a master regulator robustly expressed in lung, thyroid, and forebrain, is indispensable for specifying lung epithelial fate and serves as a definitive marker of lung progenitors. Here, we generated a human induced Pluripotent Stem Cell (iPSC) line harboring a doxycycline (dox)-inducible Cas9 and an NKX2-1-EGFP-puro reporter via CRISPR/Cas9-mediated homology-directed repair. This dual-function line combines inducible genome editing with real-time tracing of early lung progenitors, enabling their prospective isolation and screening for stage-specific maturation regulators. Therefore, this engineered iCas9-NKX2-1 EGFP line is a key resource for dissecting human lung development, modeling pulmonary disease, and advancing regenerative therapies.

Humans

ARID5A RNA-binding coordinates microglial defense and ferroptosis in iPSC-derived models.

RNA-binding proteins (RBPs) are key regulators of gene expression that shape cellular function in health and disease. However, the roles of RBPs in immune cells within the central nervous system (CNS) remain poorly understood. Here, we identify ARID5A as an RBP highly expressed in microglia and uncover its RNA-mediated regulatory functions using integrated multi-omics analyses of its RNA, DNA, and protein interactions. ARID5A regulates the splicing and translation of its RNA targets, many of which are integral to lysosomal, immune, and iron metabolism pathways. We confirm the functional relevance of this ARID5A-dependent RNA regulatory network by demonstrating that ARID5A modulates lysosomal activity, cytokine secretion, iron accumulation, and ferroptosis in iPSC-derived microglia. We further demonstrate that knockdown of microglial ARID5A reduces neuronal ferroptosis in co-cultures, underscoring the interconnected nature of these pathways. Moreover, in microglia harboring the TREM2-T66M mutation, ARID5A depletion restores dysregulated lysosomal and metabolic functions. Our results highlight the importance of protein-RNA interactions in regulating microglial cell biology.

Microglia

Mapping key mitochondrial genes in Alzheimer's disease through human tissue and iPSC derived neurons.

Alzheimer's disease (AD) is a progressive neurodegenerative condition that has become a global health challenge due to an aging world population and no available effective treatment. Mitochondrial dysfunction plays a crucial role in the development of AD due to its critical role in neuronal survival and function. However, the specific mitochondrial genes and pathways involved in AD pathogenesis remain poorly defined. In this study, we incorporated seven AD human postmortem and three AD iPSC-derived neurons (iNs) gene expression datasets to identify mitochondria-related Differentially Expressed Genes (mitoDEGs) between AD and control. The Gene Ontology (GO) analysis is conducted to investigate the AD biological mechanisms, and a random forest model is developed to assess how well the key mitoDEGs differentiate AD and control groups. Through our analysis, we identified fourteen key mitochondria related genes that show significant dysregulation in both postmortem brain tissues and iNs derived from AD patients. These genes have strong connections to oxidative stress, indicating mitochondrial dysfunction plays a crucial role in Alzheimer's disease pathology. Our study identified the key genes and pathways as promising targets for future research and therapeutic interventions, highlighting the importance of mitigating oxidative stress and restoring mitochondrial function in AD.

Humans

Multi-omic phenotyping of iPSC-derived neurons harboring the MAPT V337M mutation reveals tau hypophosphorylation and perturbed axon morphology pathways.

Tau aggregation is a hallmark of several neurodegenerative diseases, including Alzheimer's disease and frontotemporal dementia. There are disease-causing variants of the tau-encoding gene, MAPT, and the presence of tau aggregates is highly correlated with disease progression. However, the molecular mechanisms linking pathological tau to neuronal dysfunction are not well understood. This is in part due to an incomplete understanding of the normal functions of tau in development and aging, and how the associated molecular and cellular processes change in the context of causal disease variants of tau. To address these questions in an unbiased manner, we conducted multi-omic characterization of iPSC-derived neurons harboring the MAPT V337M mutation or MAPT knockdown. RNA-seq and phosphoproteomics revealed that both V337M mutation and tau knockdown perturbed levels of transcripts and phosphorylation of proteins related to axonogenesis or axon morphology. Surprisingly, we found that neurons with V337M tau had much lower tau phosphorylation than neurons with WT tau. Functional genomics screens uncovered regulators of tau phosphorylation in neurons and found that factors involved in axonogenesis modified tau phosphorylation in both MAPT WT and MAPT V337M neurons. Intriguingly, the p38 MAPK pathway specifically modified tau phosphorylation in MAPT V337M neurons. We propose that V337M tau perturbs tau phosphorylation and axon morphology pathways that are relevant to the normal function of tau, which could contribute to previously reported cognitive changes in preclinical MAPT variant carriers.

Journal Article