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Biology subjects

Bakey, Z.

Publications and source records attributed to Bakey, Z..

3 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↗

A homozygous human WNT11 loss-of-function variant associated with laterality, heart and renal defects

Wnt signaling plays important roles during vertebrate development, including left-right axis specification as well as heart and kidney organogenesis. We identified a homozygous human WNT11 variant in an infant with Situs inversus totalis, complex heart defects and renal hypodysplasia, and we used Xenopus embryos to functionally characterize this variant. WNT11c.814delG encodes a loss-of-function protein with reduced stability that lost signaling activity in vivo. This is remarkable, because the variant encodes a truncated ligand with nearly identical length and predicted structure to dominant-negative Wnts. Furthermore, we demonstrate that alteration of the truncated C-terminal end can restore stability and dominant-negative signaling activity. Our study also suggests similar functions for WNT11 in human development as described in model organisms. Therefore, biallelic WNT11 dysfunction should be considered as novel genetic cause in syndromal human phenotypes presenting with congenital heart defects and renal hypoplasia, with or without laterality defects. The work presented here enhances our understanding of human development and structure-function relationships in Wnt ligands.

developmental biology↗

Base editing derived models of human WDR34 and WDR60 disease alleles replicate retrograde IFT and hedgehog signaling defects and suggest disturbed Golgi protein transport

Cytoplasmic Dynein-2 or IFT-dynein is the only known retrograde motor for intraflagellar transport, enabling protein trafficking from the ciliary tip to the base. Dysfunction of WDR34 and WDR60, the two intermediate chains of this complex, causes Short Rib Thoracic Dystrophy (SRTD), human skeletal chondrodysplasias with high lethality. Complete loss of function of WDR34 or WDR60 is lethal in vertebrates and individuals with SRTD carry at least one putative hypomorphic missense allele. Gene knockout is therefore not suitable to study the effect of these human missense disease alleles. Using CRISPR single base editors, we recreated three different patient missense alleles in cilia-APEX-IMCD3 cells. Consistent with previous findings in dynein-2 full loss of function models and patient fibroblasts, mutant cell lines showed hedgehog signaling defects as well as disturbed retrograde IFT. Transcriptomics analysis revealed differentially regulated expression of genes associated with various biological processes, including G-protein-coupled receptor signaling as well extracellular matrix composition, endochondral bone growth and chondrocyte development. Further, we also observed differential regulation of genes associated with Golgi intracellular transport, including downregulation of Rab6b, a GTPase involved in Golgi-ER retrograde protein trafficking and interacting with components of cytoplasmic dynein-1, in mutant ciliated and non-ciliated clones compared to controls. In addition to providing cellular model systems enabling investigations of the effect of human SRTD disease alleles, our findings indicate non-ciliary functions for WDR34 and WDR60 in addition to the established roles as components of the retrograde IFT motor complex in cilia.

genetics↗