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Franzmeier, S.

Publications and source records attributed to Franzmeier, S..

2 recordsLinked to original sources

Multi-modal analysis of satellite cells reveals early impairments at pre-contractile stages of myogenesis in Duchenne muscular dystrophy

Recent studies on the role of myogenic satellite cells (SC) in Duchenne muscular dystrophy (DMD) documented altered division capacities and impaired regeneration potential of SC in DMD patients and animal models. It remains unknown, however, if SC-intrinsic effects trigger these deficiencies at pre-contractile stages of myogenesis rather than resulting from the pathologic environment. Addressing this, we isolated SC from muscle biopsies of a porcine DMD model for characterization. Traction force microscopy (TFM) revealed that DMD SC produce a significantly higher strain energy than wild-type cells (WT; 0.136 {+/-} 0.016 {micro}J vs. 0.057 {+/-} 0.008 {micro}J). By RNA-seq, we identified 1,390 differentially expressed genes and proteomics measurements detected 1,261 proteins with altered abundance in DMD vs. WT. Dysregulated pathways uncovered by Gene Ontology (GO) enrichment analysis included sarcomere organization, focal adhesion, and response to hypoxia. We integrated the data using multi-omics factor analysis (MOFA) and identified five factors accounting for the variance with an overall higher contribution of the transcriptomic (61.95 %) than the proteomic data (54.02 %). Our findings suggest SC impairments result from their inherent genetic abnormality rather than environmental influences. The observed biological changes are independent and not reactive to the pathological surrounding of DMD muscle.

pathology↗

At-RS31 orchestrates hierarchical cross-regulation of splicing factors and integrates alternative splicing with TOR-ABA pathways

O_LIAlternative splicing is essential for plants, enabling a single gene to produce multiple transcript variants to boost functional diversity and fine-tune responses to environmental and developmental cues. At-RS31, a plant-specific splicing factor in the Serine/Arginine (SR)-rich protein family, responds to light and the Target of Rapamycin (TOR) signaling pathway, yet its downstream targets and regulatory impact remain unknown. C_LIO_LITo identify At-RS31 targets, we applied individual-nucleotide resolution crosslinking and immunoprecipitation (iCLIP) and RNAcompete assays. Transcriptomic analyses of At-RS31 mutant and overexpressing plants further revealed its effects on alternative splicing. C_LIO_LIiCLIP identified 4,034 At-RS31 binding sites across 1,421 genes, enriched in CU-rich and CAGA RNA motifs. Comparative iCLIP and RNAcompete data indicate that the RS domain of At-RS31 may influence its binding specificity in planta, underscoring the value of combining in vivo and in vitro approaches. Transcriptomic analysis showed that At-RS31 modulates diverse splicing events, particularly intron retention and exitron splicing, and influences other splicing modulators, acting as a hierarchical regulator. C_LIO_LIBy regulating stress-response genes and genes in both TOR and abscisic acid (ABA) signaling pathways, At-RS31 may help integrate these signals, balancing plant growth with environmental adaptability through alternative splicing. C_LI

plant biology↗