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Biology subjects

Adler, M. R.

Publications and source records attributed to Adler, M. R..

3 recordsLinked to original sources

Carbenoxolone disrupts cell migration by inhibiting the SERCA pump

Collective cell migration is a fundamental process driving tissue repair, angiogenesis, and vascular homeostasis. This coordinated movement requires both intercellular communication via gap junctions and precise intracellular Ca{superscript 2} signaling, largely regulated by the sarco(endo)plasmic reticulum Ca2+ ATPase (SERCA) pump within the endoplasmic reticulum (ER). Historically, carbenoxolone (CBX)--a synthetic derivative of glycyrrhetinic acid--has been widely utilized as a pharmacological tool to inhibit gap junctions and dissect their role in collective cell motility. However, its molecular specificity remains highly controversial. In the present study, using different cellular models, we found that CBX drastically reduces collective cell migration by a previously undescribed function for CBX: a fast, potent, and reversible inhibition of the SERCA pump, which provokes a passive leak of the luminal ER Ca{superscript 2} store. Our findings suggest that the effect of CBX over many cellular responses including cell migration and communication, previously only attributed to gap junction blockade, are indeed the consequence of the disruption of intracellular Ca{superscript 2} homeostasis. One Sentence Summarycarbenoxolone blocks cell migration by inhibiting SERCA

physiology↗

Podocyte exopher-formation as a novel pathomechanism in membranous nephropathy

BackgroundMembranous nephropathy (MN) is caused by autoantibody binding to podocyte foot process antigens such as THSD7A and PLA2R1. The mechanisms of the glomerular antigen/autoantibody deposition and clearance are unknown. MethodsWe explore the origin and significance of glomerular accumulations in (1) diagnostic and follow-up biospecimens from THSD7A+ and PLA2R1+-MN patients compared to nephrotic non-MN patients, and (2) in experimental models of THSD7A+-MN. ResultsWe discovered podocyte exophers as correlates of histological antigen/autoantibody aggregates found in the glomerular urinary space of MN patients. Exopher vesicle formation represents a novel form of toxic protein aggregate removal in Caenorhabditis elegans neurons. In MN patients, podocytes released exophers to the urine. Enrichment of exophers from MN patient urines established them as a glomerular exit route for antigens and bound autoantibody. Exophers also carried disease-associated proteins such as complement and provided a molecular imprint of podocyte injury pathways. In experimental THSD7A+-MN, exophers were formed from podocyte processes and cell body. Their formation involved the translocation of antigen/autoantibody from the subepithelial to the urinary side of podocyte plasma membranes. Urinary exopher-release correlated with lower albuminuria and lower glomerular antigen/autoantibody burden. In MN patients the prospective monitoring of urinary exopher abundance and of exopher-bound autoantibodies was additive in the assessment of immunologic MN activity. ConclusionsExopher-formation and release is a novel pathomechanism in MN to remove antigen/autoantibody aggregates from the podocyte. Tracking exopher-release will add a non-invasive diagnostic tool with prognostic potential to clinical diagnostics and follow-up of MN patients.

cell biology↗

1D confinement mimicking microvessel geometry controls pericyte shape and motility

Pericytes are mural cells of the microvasculature, characterised by their elongated distinct shape. Pericytes span along the axis of the vessels they adhere to, therefore they experience extreme lateral and longitudinal confinement. Pericyte shape is key for their function during vascular regulation and their spatial distribution is established by cell migration during the embryonic stage and maintained through controlled motility in the adult. However, how pericyte morphology is associated with migration and function remains unknown. We use micropatterns to mimic pericyte adhesion to vessels, and to reproduce in vitro the shapes adopted by pericytes in vivo. We show that lateral confinement controls cell shape and produces in vivo-like phenotype. Modelling the pericyte as an incompressible linear elastic material predicts strain and shape of pericytes as a function of lateral confinement. Pericyte kinetics on both laterally confining lanes, and longitudinally constraining motifs is described by dry friction theory. Pericytes are capable of crossing gaps of different sizes. The percentage of crossings is correctly predicted by the likelihood of a fluctuating system to overcome an energy barrier. Our joint experimental and theoretical approach demonstrates the effect of in vivo-like geometrical confinement on pericyte morphology and migration which is accurately described by dry friction theory.

biophysics↗