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Biology subjects

ASSOU, S.

Publications and source records attributed to ASSOU, S..

3 recordsLinked to original sources

Human pluripotent stem cell-derived bronchial airway organoids provide insights into differential innate immune and long-term responses to SARS-CoV-2 infection in healthy and COPD.

Respiratory infections are a major global health concern, as underscored by the COVID-19 pandemic. To better understand bronchial tissue responses to viral infection, we have developed a preclinical in vitro model mimicking the multiciliated airway epithelium, from induced pluripotent stem cell (iPSC) and cultured in an air-liquid interface (iALI). By using iPSCs reprogrammed from patients with chronic obstructive pulmonary disease (COPD), we successfully generated a fully differentiated and functional bronchial epithelium exhibiting key COPD features with goblet and basal cell hyperplasia and tissue inflammation. SARS-CoV-2 could infected and replicated for several weeks in both healthy and COPD models, with a recurrent peak at 3 days after infection. Infected iALI exhibited cilia destruction and increased mucus secretion. Innate immune response of different infected iALI reveals a differential expression of interferon-stimulated genes (ISGs) and pro-inflammatory cytokine secretion. Notably, COPD iALI displayed an earlier innate immune response to SARS-CoV-2 infection as compared to healthy iALI, suggesting a genetic susceptibility of COPD iALI towards inflammation induced by SARS-CoV-2 infection, and a less efficient response to antivirals. In conclusion, our study demonstrates that the iALI bronchial organoid model is a powerful tool for investigating bronchial tissue responses to long term respiratory viral infections, antivirals, and patients with COPD or other airway pathology. Grapical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=151 SRC="FIGDIR/small/662440v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@9e5ef7org.highwire.dtl.DTLVardef@16ccf60org.highwire.dtl.DTLVardef@a2b29dorg.highwire.dtl.DTLVardef@17c6f14_HPS_FORMAT_FIGEXP M_FIG C_FIG HighLightsO_LIhiPSC-derived COPD airway organoids C_LIO_LISARS-CoV-2 productively infects induced pluripotent stem-cell derived bronchial organoids iALI and persisted over the long term C_LIO_LISARS-CoV-2 iALI infection results in cilia destruction, increased mucus secretion and a strong innate immune response C_LIO_LISARS-CoV-2 infection elicited a higher and earlier innate immune response in iCOPD C_LIO_LISARS-CoV-2 infection in iCOPD respond less to antivirals C_LI Short AbstractSARS-CoV-2 causes severe lower respiratory tract infection in COVID-19 patients, which can persist over time. Here, we used an in-house developed in vitro airway organoid derived from induced human pluripotent stem cells (iALI) to study SARS-CoV-2 infection over long term in healthy or COPD patients whom respiratory failure is at risk during infection. Our results show that SARS-CoV-2 infection results in high and lethal infection of bronchial epithelial cells, that persist over time, inducing mucus secretion, destruction of ciliated cells and specific cytokine release. A late innate immune response is observed in the healthy iALI, while in iCOPD, it appears earlier and stronger, suggesting a different sensing of SARS-CoV-2 in COPD patients, accompanied by a reduce sensitivity to antivirals. In conclusion, our study demonstrates that the iALI organoid model is a powerful tool for investigating bronchial tissue responses to long term respiratory viral infections, from healthy to pathologic patients.

cell biology↗

Transdifferentiation of Human Dental Pulp Mesenchymal Stem Cells into Spiral Ganglion-like Neurons

Spiral ganglion neurons (SGN) carry auditory information from sensory hair cells (HCs) to the brain. These auditory neurons, which are the target neurons of cochlear implants, degenerate following sensorineural hearing loss (SNHL). Prosthetic devices such as cochlear implants function by bypassing lost HCs and stimulating the residual SGNs, allowing restoration of hearing in deaf patients. Emerging cell-replacement therapies for SNHL include replacing damaged SGNs using stem cell-derived otic neuronal progenitors (ONPs). However, the availability of renewable, accessible, and patient-matched sources of human stem cells constitutes a major prerequisite towards cell replacement for auditory nerve recovery. Human dental pulp stem cells (hDPSCs) extracted from human wisdom teeth are self-renewing stem cells that originate from the neural crest during development. In this study, we developed a stepwise in vitro guidance procedure to differentiate hDPSCs into ONPs and then to SGNs. The procedure relies on the modulation of BMP and TGF-{beta} pathways for neurosphere formation as a first step, then a differentiation step based on two culture paradigms exploiting major signaling pathways (Wnt, Shh, RA) and neurotrophic factors involved in early otic neurogenesis. Gene and protein expression analyses revealed efficient induction of a comprehensive panel of known ONP and SGN-like cell markers over the course of in vitro differentiation. The use of atomic force microscopy revealed that hDPSC-derived SGN-like cells exhibit similar nanomechanical properties compared to their in vivo SGN counterparts. Furthermore, neurites extended between hDPSC-derived ONPs and rat SGN explants 4-6 days after co-culturing, suggesting the formation of neuronal contacts. These data indicate that the in vitro differentiated cells closely replicate the phenotypic and nanomechanical characteristics of human SGNs, advancing our culture differentiation system to the level to be used in next-generation cochlear implants and/or inner ear cell-based strategies for SNHL.

bioengineering↗

Force-mediated recruitment and reprogramming of healthy endothelial cells drive vascular lesion growth

Force-driven cellular interactions are known to play a critical role in cancer cell invasion, but have remained largely unexplored in the context of vascular abnormalities, partly due to a lack of suitable genetic and cellular models. One such vascular abnormality, cerebral cavernous malformation (CCM) is characterized by leaky, tumor-like vessels in the brain, where CCM mutant cells recruit wild-type cells from the surrounding endothelium to form mosaic lesions and promote lesion growth; however the mechanisms underlying this recruitment remain poorly understood. Here, we use 3D traction force microscopy in a in-vitro model of early angiogenic invasion to reveal that hyper-angiogenic CCM2-silenced endothelial cells enhance angiogenic invasion of neighboring wild-type cells through force and extracellular matrix-guided mechanisms. We show that mechanically hyperactive CCM2-silenced tips guide wild-type cells by exerting and transmitting pulling forces and by leaving degraded paths in the matrix as cues promoting invasion in a ROCKs-dependent manner. This transmission of forces is associated with a reinforcement of {beta}1 integrin-dependent adhesive sites and actin cytoskeleton in the wild-type followers. We also show that during this process wild-type cells are reprogrammed into stalk cells through activation of matrisome and DNA replication programs, eventually leading to cell proliferation. These observations unveil a novel vascular lesion growth mechanism where CCM2 mutants hijack the function of wild-type cells to fuel CCM lesion growth. By integrating biophysical computational methodologies to quantify cellular forces with advanced molecular techniques, we provide new insights in the etiology of vascular malformations, and open up avenues to study the role of cell mechanics in tissue heterogeneity and disease progression.

bioengineering↗