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Klawonn, A.

Publications and source records attributed to Klawonn, A..

2 recordsLinked to original sources

Distinct effects of hypomorphic IFT and dynein-2 skeletal ciliopathy disease alleles on chondrogenic differentiation, ECM composition and wnt signalling in ATDC5 derived cartilage-like organoids

Dysfunction of ciliary intraflagellar transport (IFT) and dynein-2 genes causes severe developmental defects, including skeletal phenotypes characterized by shortened ribs and long bones and polydactyly. Specific gene-phenotype associations suggest individual functions of the different IFT/dynein-2 proteins in development. Since null models disrupt ciliogenesis and hence are not suitable to study individual protein functions, we recreated human hypomorphic disease alleles in IFT-A (IFT43 p.M1V), IFT-B (IFT74 deletion of exon 2), and dynein-2 (WDR60 p.A911V), alongside a WDR60 null model in ATDC5 chondrocyte precursor cells. Hypomorphic mutants did not show alterations in ciliation efficiency or cilia length but displayed distinct defects in IFT88 localization, indicating impaired intraflagellar transport. Despite altered IFT, Hedgehog signalling responses were variably affected across the different genotypes. Transcriptomic analysis revealed concurrent increases in canonical Wnt signalling and expression of genes related to late skeletal development in WDR60 A911V and IFT74 del ex 2 mutants, but not in IFT43 M1V or WDR60 loss-of-function mutants. These changes were accompanied by alterations in ECM composition. In addition, all hypomorphic mutants showed reduced levels of the non-canonical Wnt ligand WNT5A in ECM proteomic analyses. Interestingly, loss of cilia in WDR60 loss-of-function mutants had only modest effects on chondrogenic differentiation and ECM composition. Overall, our data provide new evidence of genotype-dependent altered ECM composition as well as dysregulation of canonical and non-canonical Wnt signalling and accelerated chondrocyte differentiation in skeletal ciliopathies. Furthermore, our findings suggest a modulatory rather than essential role of the primary cilium for ATDC5 cell differentiation.

cell biology↗

Deep phenotyping of ATDC5-derived in vitro cartilage organoids

Cartilage is characterized by a highly specialized extracellular matrix (ECM) secreted by chondrocytes and limited self-regenerative capacity. In vivo investigations of chondrogenesis are limited by difficult and traumatic access, especially in humans. While it is known for decades that disturbances of chondrocyte differentiation and changed cartilage ECM composition cause severe skeletal phenotypes in vertebrates, a detailed molecular understanding of chondrogenesis and cartilage ECM formation is still missing, especially in the context of human genetic skeletal diseases. ATDC5 cells, derived from AT805 mouse teratocarcinoma cells, have been used in the past to model chondrogenic differentiation, however, most studies have investigated few major cellular differentiation markers only so that the composition of the secreted ECM as well as effects on the ATDC5 transcriptome upon differentiation are still unclear. Here, we performed time-resolved transcriptomic and ECM proteomic analyses of differentiating ATDC5 cells. Both datasets confirmed the formation of a cartilage-like matrix with increasing expression of key chondrocyte genes over the course of differentiation. ECM proteomics further revealed a number of ECM components not previously reported in ATDC5 cells or the secreted ECM, encompassing collagens, proteoglycans, glycoproteins and other secreted factors. Overall, our findings provide a more detailed molecular characterization of ATDC5 chondrogenesis and highlight the potential of this model system for ECM-focused studies.

cell biology↗