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Chichkov, V.

Publications and source records attributed to Chichkov, V..

2 recordsLinked to original sources

The Short Isoform of the Mouse Actin Adaptor Protein Synaptopodin-2 Activates Actin-Responsive Transcription Factors and Enhances Myoblast Fusion

Expression of synaptopodin-2 (SYNPO2), an actin cytoskeleton adaptor protein, is up-regulated following myoblast differentiation into myocytes and subsequently myotubes but no functional role in muscle development has been attributed to SYNPO2. We now show that of the three known mouse SYNPO2 isoforms, only the shortest isoform, SYNPO2As, is upregulated following differentiation of C2C12 myoblasts and primary mouse muscle satellite cells. Consistent with the differentiation-dependent expression pattern of these different isoforms, ectopic expression of SYNPO2As significantly increased myotube formation while the two large SYNPO2 isoforms (SYNPO2A or SYNPO2B) inhibited myocyte fusion into multinucleated myotubes. Irrespective of the fusion phenotype, all three isoforms enhanced migration of differentiating myoblasts. Knockdown studies using shRNA confirmed a pro-myogenic role for the short SYNPO2As isoform. Interestingly, SYNPO2As-transduced cells increased the transcript levels of late myogenic differentiation markers in the STARS (striated muscle activator of Rho signaling) and SRF (serum response factor) pathways that correlated with the enhanced fusion phenotype. These results identify the actin adaptor protein SYNPO2As as a new pro-myogenic factor that upregulates late myogenic differentiation markers and myotube formation.

developmental biology↗

AHR activation accelerates the resolution of TGF-β1 induced fibroblast activation and promotes alveolar type 1 cell regeneration in alveolar organoids

Regeneration of the alveolar epithelium is necessary to restore tissue architecture and gas exchange capabilities in chronic pulmonary diseases such as fibrosing interstitial lung disease. While it is known alveolar type 2 (AT2) cells give rise to alveolar type 1 (AT1) cells to repair the alveolar epithelium after injury, methods to promote this process under pathological settings are poorly understood. Here, using a complex 3D organoid culture with TGF-{beta}1 dependent impaired AT1 spheroid formation, we performed a high-throughput screen (HTS) with [~]16,800 compounds to identify small molecules that increase number of AT1 spheroids. Longitudinal single cell RNA sequencing (scRNA-seq) revealed that DB-11-BE87 increased AT1 regeneration by reducing TGF-{beta}1 induced fibroblast activation, concurrently with AHR activation in those cells. These studies highlight a novel HTS system to identify factors that can promote AT1 differentiation and suggest AHR activation as a method to counteract pathological TGF-{beta}1 signaling in pulmonary disease.

cell biology↗