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Biology subjects

Tsukui, T.

Publications and source records attributed to Tsukui, T..

2 recordsLinked to original sources

Gli1+ mesenchymal stromal cells modulate epithelial metaplasia in lung fibrosis

Organ fibrosis is often accompanied by aberrant epithelial reprogramming, culminating in a transformed barrier composed of scar and metaplastic epithelium. Understanding how the scar promotes an abnormal epithelial response could better inform strategies to reverse the fibrotic damage. Here we show that Gli1+ mesenchymal stromal cells (MSCs), previously shown to contribute to myofibroblasts in the scar, promote metaplastic differentiation of airway progenitors into KRT5+ basal cells in vitro and in vivo. During fibrotic repair, Gli1+ MSCs integrate hedgehog activation to promote metaplastic KRT5 differentiation by upregulating BMP antagonism in the progenitor niche. Restoring the balance towards BMP activation attenuated metaplastic KRT5+ differentiation while promoting adaptive alveolar differentiation. Finally, fibrotic human lungs demonstrate altered BMP activation in the metaplastic epithelium. These findings show that Gli1+ MSCs integrate hedgehog signaling as a rheostat to control BMP activation in the progenitor niche to determine regenerative outcome in fibrosis. HighlightsO_LIGli1+ MSCs are required for metaplastic airway progenitor differentiation into KRT5+ basal cells. C_LIO_LIHedgehog activation of MSCs promotes KRT5 differentiation of airway progenitors by suppressing BMP activation. C_LIO_LIRestoring BMP activation attenuates metaplastic KRT5 differentiation C_LIO_LIMetaplastic KRT5+ basal cells in human fibrotic lungs demonstrate altered BMP activation. C_LI

cell biology

Broadly Conserved Roles of TMEM-131 Family Proteins in Intracellular Collagen Assembly and Secretory Cargo Trafficking

Collagen is the most abundant protein in animals. Its dysregulation contributes to ageing and human disorders including tissue fibrosis in major organs. How premature collagens in the endoplasmic reticulum (ER) assemble and route for secretion remains molecularly undefined. From an RNAi screen, we identified an uncharacterized C. elegans gene tmem-131, deficiency of which impairs collagen production and activates ER stress response. TMEM-131 N-termini contain bacterial PapD chaperone-like (PapD-L) domains essential for collagen assembly and secretion. Human TMEM131 binds to COL1A2 and TRAPPC8 via N-terminal PapD-L and C-terminal domain, respectively, to drive collagen production. We provide evidence that previously undescribed roles of TMEM131 in collagen recruitment and secretion are evolutionarily conserved in C. elegans, Drosophila and humans.

cell biology