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Schweitzer, R.

Publications and source records attributed to Schweitzer, R..

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Limb- and tendon-specific Adamtsl2 deletion identifies a soft tissue mechanism modulating bone length

Disproportionate distal limb shortening is the hallmark of acromelic dysplasias. Among them, geleophysic dysplasia is a rare, frequently lethal condition characterized by severe short stature, musculoskeletal, cardiac, pulmonary, and skin anomalies. Geleophysic dysplasia results from dominant fibrillin-1 (FBN1) or recessive ADAMTSL2 mutations, suggesting a functional link between ADAMTSL2 and FBN1. Mice lacking ADAMTSL2 die at birth, precluding analysis of postnatal skeletal growth and mechanisms underlying the skeletal anomalies of geleophysic dysplasia. We show that Adamtsl2 is expressed in limb soft tissues, predominantly in tendon. Expression in developing bones is limited to their terminal cell layers that are destined to become articular cartilage and is absent in growth plate cartilage. Adamtsl2 conditional deletion in limb mesenchyme using Prxl-Cre led to an acromelic dysplasia, providing a suitable model for investigation of geleophysic dysplasia. Unexpectedly, conditional Adamtsl2 deletion using Scx-Cre, a tendon-specific deleter, also impaired skeletal growth. Specific morphogenetic anomalies were seen in Achilles tendon, along with FBN1 accumulation. Thus, ADAMTSL2, shown here to bind fibrillin microfibrils in vitro, limits fibrillin microfibril formation in tendons and promotes tendon growth. The findings suggest that reduced bone growth in geleophysic dysplasia results from external tethering by short tendons rather than intrinsic growth plate anomalies.

developmental biology

Development of migrating entheses involves replacement of progenitor populations

Attachment sites of tendons to bones, called entheses, are essential for proper musculoskeletal function. They are formed embryonically by Sox9+ progenitors and undergo a developmental process that continues into the postnatal period and involves Gli1 lineage cells. During bone elongation, some entheses maintain their relative positions by actively migrating along the bone shaft, while others, located at the bones extremities, remain stationary. Despite their importance, we lack information on the developmental transition from embryonic to mature enthesis and on the relation between Sox9+ progenitors and Gli1 lineage cells. Here, by performing a series of lineage tracing experiments, we identify the onset of Gli1 lineage contribution to different entheses during embryogenesis. We show that Gli1 expression is regulated by SHH signaling during embryonic development, whereas postnatally it is maintained by IHH signaling. Interestingly, we found that unlike in stationary entheses, where Sox9+ cells differentiate into the Gli1 lineage, in migrating entheses the Sox9 lineage is replaced by Gli1 lineage and do not contribute to the mature enthesis. Moreover, we show that these Gli1+ progenitors are pre-specified embryonically to form the different cellular domains of the mature enthesis.\n\nOverall, these findings demonstrate a developmental strategy whereby one progenitor population establishes a simple, embryonic tissue, whereas another population is responsible for its maturation into a complex structure during its migration. Moreover, they suggest that different cell populations may be considered for cell-based therapy of enthesis injuries.

developmental biology