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Biology subjects

Mathers, K.

Publications and source records attributed to Mathers, K..

2 recordsLinked to original sources

Genetic interaction between Adgrg6 and Sox9 reveals a feedforward mechanism for postnatal spinal stability

Adolescent idiopathic scoliosis (AIS) is the most common spinal disorder in children and is best understood as a complex polygenic condition. Genome-wide association studies (GWAS) have identified several AIS risk loci, including regions near ADGRG6 and SOX9, yet the functional mechanisms underlying AIS heritability remain poorly defined. Here, we use spatial transcriptomics to characterize altered gene expression in the spine of a conditional Adgrg6 mutant mouse model of AIS (Adgrg6-cKO), revealing reduced expression of Sox9 and several components of extracellular matrix organization in the intervertebral disc. We further show that SOX9 occupies regions of open chromatin within the Adgrg6 locus in cells isolated from the mouse intervertebral disc. Finally, we demonstrate a strong genetic interaction between Adgrg6-cKO and a hypomorphic Sox9 allele that increases both the penetrance and severity of AIS-like pathology in mice. Collectively, these findings support a self-reinforcing feedforward regulatory circuit, where Adgrg6 and Sox9 are co-regulated to maintain extracellular matrix gene expression in the annulus fibrosus and paraspinal tissues. These findings provide mechanistic insight into the functional significance of AIS-associated GWAS loci near ADGRG6 and SOX9 and establish combined Adgrg6-Sox9 insufficiency as a tractable model of polygenic scoliosis susceptibility. O_LIAdgrg6 maintains Sox9 and extracellular matrix gene expression in the intervertebral disc C_LIO_LISOX9 directly occupies open chromatin at the Adgrg6 locus in SOX9 skeletal cells C_LIO_LIAdgrg6 and Sox9 genetically interact to increase scoliosis incidence and severity C_LIO_LICombined loss of Adgrg6 and Sox9 drives ectopic cartilage formation and reduced vertebral bone mineral density in the thoracic spine C_LI

developmental biology↗

A widely-occurring family of pore-forming effectors broadens the impact of the Serratia Type VI secretion system

The ability to compete with diverse competitors is essential for bacteria to succeed in microbial communities. A widespread strategy for inter-bacterial competition is the delivery of antibacterial toxins, or effector proteins, directly into rival cells using the Type VI secretion system (T6SS). Whilst a large number of broad-spectrum enzymatic T6SS effectors have been described, relatively few which form pores in target cell membranes have been reported. Here, we describe a widely-occurring new family of T6SS-dependent pore-forming effectors, exemplified by Ssp4 of Serratia marcescens Db10. We show in vitro that Ssp4 forms regulated pores that have higher selectivity for cations and use molecular dynamics simulations to support a high resolution structural model of a tetrameric membrane pore formed by Ssp4. Notably, Ssp4 displays a distinct ion selectivity, phylogenetic distribution and impact on intoxicated cells compared with Ssp6, the other cation-selective pore-forming toxin delivered by the same T6SS. Ssp4 is also active against a wider range of target species than Ssp6, highlighting that T6SS effectors are not always broad-spectrum. Finally, use of Tn-seq to identify Ssp4-resistant mutants reveals that a mucA mutant of Pseudomonas fluorescens, which overproduces extracellular polysaccharide, provides resistance to T6SS attacks. We conclude that possession of two distinct T6SS-dependent pore-forming toxins may be a common strategy to ensure effective de-energisation of closely- and distantly-related competitors.

microbiology↗