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Biology subjects

Gotoh, S.

Publications and source records attributed to Gotoh, S..

4 recordsLinked to original sources

Human club cells derived from pluripotent stem cells reveal new insights into epithelial lineage plasticity through structural and functional validation

Airway epithelial homeostasis relies on multiple specialized cell types, with club cells playing central roles in maintaining epithelial integrity and regulating inflammation. Environmental insults such as allergens, viral infections, or pollutants preferentially damage club cells, impairing epithelial repair and contributing to pulmonary diseases. However, the functional properties of club cells remain incompletely defined, and tractable human models are lacking. Herein, we establish a robust platform to differentiate human pluripotent stem cells (hPSCs) into club cells exhibiting their hallmark secretory features, appropriate epithelial organization, and functional properties. Single-cell transcriptomic analyses and lineage trajectory inference revealed unexpected epithelial plasticity: hPSC-derived club cells give rise to multiciliated epithelial cells through a deuterosomal intermediate--a previously uncharacterized trajectory. Additionally, a distinct club cell subset exhibited transcriptional features indicative of neuroendocrine and goblet cell differentiation potential. This study uncovers club cell plasticity and establishes a hPSC-based platform for studying airway development, regeneration and disease modeling.

cell biology↗

RPL38 controls 60S ribosomal subunit homeostasis to regulate start-codon stringency and frame selection during C9ORF72 RAN translation

Translation initiation depends on stringent start-codon recognition, yet how ribosomal states modulate initiation stringency remains incompletely defined. Repeat-associated non-AUG (RAN) translation is a non-canonical initiation pathway that generates toxic dipeptide repeat proteins in C9ORF72-associated frontotemporal dementia and amyotrophic lateral sclerosis (FTD/ALS). Here, we performed a dual-luciferase reporter-based siRNA screen to identify factors that differentially regulate canonical AUG-initiated and C9ORF72 RAN translation. We identified the 60S ribosomal protein RPL38 as a key determinant of translational output. RPL38 depletion selectively suppressed AUG-dependent translation while relatively preserving near-cognate-initiated RAN translation, resulting in a dose-dependent increase in the RAN-to-AUG translation ratio. Polysome profiling showed a selective reduction in large ribosomal subunit abundance without impaired subunit joining, consistent with defective 60S subunit homeostasis. Substitution of a near-cognate CUG start codon with AUG rendered translation sensitive to RPL38 depletion, supporting a role for ribosomal subunit availability in modulating initiation stringency. Graded RPL38 depletion altered frame usage within C9ORF72 repeat RNA. Consistent with these findings, RPL38 knockdown in the Drosophila eye enhanced GR-frame RAN translation while suppressing canonical AUG-dependent translation. Collectively, these findings identify 60S ribosomal subunit availability as a key determinant of start-codon stringency and frame selection in pathological C9ORF72 RAN translation.

molecular biology↗

In vivo xenogenic reconstitution of human alveolar epithelial architecture and function

An urgent need exists for lung models that accurately replicate human physiological profiles. We developed a chimeric mouse model enabling targeted ablation of alveolar type 2 (AT2) cells and lung macrophages, creating niches for endoscopically transplanted human induced pluripotent stem cell (hiPSC)-derived lung progenitors (hLPs). These engrafted cells were retained for 24 weeks, demonstrating self-renewal and differentiation potential, surfactant protein secretion, and maintaining alveolar phosphate homeostasis, suggesting their maturation into AT2 cells. Furthermore, transplantation of hLPs derived from disease-specific hiPSCs recapitulated the phenotype of pulmonary alveolar microlithiasis. The architecture, function, and metabolism of human alveolar epithelium were accurately replicated in vivo. This model has the potential to link experimental models and first-in-human studies, facilitating the development of novel therapies for intractable lung diseases.

developmental biology↗

Isogenic iPSC-derived proximal and distal lung-on-chip models: Tissue- and virus-specific immune responses in human lungs

Micro-physiological systems (MPS) are set to play a vital role in preclinical studies, particularly in the context of future viral pandemics. Nonetheless, the development of MPS is often impeded by the scarcity of reliable cell sources, especially when seeking various organs or tissues from a single patient for comparative analysis of the host immune response. Herein, we developed human airway-on-chip and alveolus-on-chip models using induced pluripotent stem cell (iPSC)-derived isogenic lung progenitor cells. Both models demonstrated the replication of two different respiratory viruses, namely SARS-CoV-2 and Influenza, as well as related cellular damage and innate immune responses-on-chip. Our findings reveal distinct immune responses to SARS-CoV-2 in the proximal and distal lung-on-chip models. The airway chips exhibited a robust interferon (IFN)-dependent immune response, whereas the alveolus chips exhibited dysregulated IFN activation but a significantly upregulated chemokine pathway. In contrast, Influenza virus infection induced a more pronounced immune response and cellular damage in both chip models compared to SARS-CoV-2. Thus, iPSC-derived lung-on-chip models may aid in quickly gaining insights into viral pathology and screening potential drugs for future pandemics.

bioengineering↗