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Biology subjects

Aronson, M.

Publications and source records attributed to Aronson, M..

3 recordsLinked to original sources

Comprehensively Testing the Function of Missense Variation in the STK11 Tumour Suppressor

The tumor suppressor gene STK11 encoding Serine/Threonine Kinase 11 (STK11) is associated with Peutz-Jeghers Syndrome (PJS), a heritable gastrointestinal disease that increases lifetime cancer risk, and with somatic variation that contributes to [~]30% of lung and 20% of cervical cancers. Although identifying pathogenic variants is clinically actionable, over 94% of STK11 missense variants that have been observed clinically lack a definitive classification. We therefore measured the impact of STK11 variants at scale in a mammalian cell-based assay, scoring 6,026 (73% of all possible) amino acid substitutions across the full-length gene. Functional scores--which were consistent with biochemical properties, smaller-scale assays, and pathogenicity annotations--identified a subset of PJS patients with germline STK11 variants diagnosed later in life, as well as somatic STK11 variants found in cancer patients that had comparable overall survival estimates to wild-type STK11. Our scores provided new evidence for 350 annotated VUS STK11 missense variants and [~]80% of missense variants that have not yet been reported clinically, but we might expect to observe in the future. Thus, our effect map provides a proactive resource for gaining sequence-structure-function insights and evidence for actionable interpretation of clinical missense variants.

cancer biology↗

Controlled decorin delivery from injectable microgels promotes scarless vocal fold repair

Vocal fold (VF) scarring is a leading cause of poor voice, yet no therapies exist to prevent its progression. Current treatments, such as intracordal steroid injections, offer limited efficacy and carry significant off-target toxicities. To identify targeted anti-scarring strategies, we performed transcriptomics of human VF myofibroblasts, the cellular drivers of VF scarring, and identified the proteoglycan decorin (DCN) as downregulated in activated myofibroblasts. We also show a time-dependent decrease in DCN during fibrotic wound healing in a preclinical rat model of VF scarring. Administration of DCN suppressed VF myofibroblast activation by reducing pro-fibrotic gene expression, -smooth muscle actin (-SMA) levels, and cell contractility. DCN was encapsulated in hyaluronic acid microgels for sustained protein release for 3-4 weeks. In a rat model of VF scarring, DCN-loaded microgels prevented hallmark features of scarring, including collagen deposition and myofibroblast activation. These findings highlight DCN as a promising therapeutic and provide a sustained delivery platform with translational potential against VF scarring. TeaserControlled decorin drug delivery from hyaluronic acid microgels attenuates myofibroblast activation to prevent vocal fold scarring, offering a translational strategy to improve post-injury voice outcomes.

bioengineering↗

A Translational Tissue Engineering Approach to Airway Reconstruction Leveraging Decellularized Meniscus and Cartilage Progenitor Cells

Severe subglottic stenosis develops in over 20,000 infants per year and requires laryngotracheal reconstruction (LTR) to enlarge the airway by implanting autologous cartilage from a rib graft. However, young children often lack sufficiently sized costal cartilage resulting in increased donor site morbidity and operative time, as well as an elevated risk for airway restenosis necessitating revision surgery. To overcome these limitations, we have created a first-of-its-kind scaffold based on porcine meniscal cartilage decellularization (MEND) by selectively digesting the elastin and blood vessels uniquely present in the meniscus to create microchannels that support cellular re-invasion. Here we demonstrated that MEND can be fully recellularized in 3 days with ear-derived cartilage progenitor cells (eCPCs) and reaches structural and functional maturation suitable for implant within 3 weeks of chondrogenic differentiation, a time frame compatible with clinical translation, a first in airway tissue engineering. To further this therapy toward clinical translation, we validated the eCPCs-MEND grafts in a New Zealand white rabbit LTR model. Our results demonstrated airway expansion, graft re-epitheliazation, neocartilage formation, and integration with adjacent native laryngotracheal cartilage, notably at a higher degree than the standard of care of autologous costal cartilage. No instances of adverse events of extrusion, granulation, infection, or calcification were observed in any of the 38 rabbits of our 3 months study. These results demonstrate the feasibility of our translational tissue engineering approach to laryngotracheal reconstruction and could overcome the autograft-associated limitations in pediatric patients and a decrease the risk of invasive revision surgery.

bioengineering↗