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Topcheva, O.

Publications and source records attributed to Topcheva, O..

2 recordsLinked to original sources

pH-dependent trapping of cationic amphiphilic drugs perturbs insulin granule homeostasis

Pancreatic {beta}-cells store insulin in acidic secretory granules (SGs), specialized organelles that also contain monoamine neurotransmitters such as serotonin. Many neuroactive drugs with monoaminergic activity are cationic amphiphilic drugs (CADs) that accumulate in acidic compartments by pH-dependent trapping. Yet, whether insulin SGs represent a site of CAD accumulation and if this affects their properties such as monoamine storage and pH remain unclear. Here, we show that Slc18a1/VMAT1 is required for vesicular monoamine uptake and maintenance of cellular serotonin levels in insulinoma INS-1 cells. In contrast, neuroactive CADs accumulate via pH-dependent trapping at luminal pH values characteristic of insulin SGs. CADs inhibit VMAT-mediated uptake of the fluorescent monoamine probe FFN206 and induce its efflux to the extracellular space without detectable changes in SG luminal pH. Conversely, natural VMAT substrates such as serotonin and dopamine increase SG pH in a VMAT-dependent manner. These findings identify insulin SGs as acidic organelles susceptible to CAD accumulation and uncover distinct mechanisms regulating secretory granule homeostasis.

cell biology↗

Structure, interaction, and nervous connectivity of beta cell primary cilia

Primary cilia are sensory organelles present in many cell types. Based on an array of microtubules termed axoneme they form a specialized membrane compartment partaking in various signaling processes. Primary cilia of pancreatic islet beta cells play a role in autocrine and paracrine signaling and are linked to diabetes. Yet, the structural basis for their functions is unclear. We present three-dimensional reconstructions of complete mouse and human beta cell cilia, revealing a disorganized 9+0 axoneme structure. Within the islet, cilia are spatially confined within deep ciliary pockets or squeezed into narrow extracellular spaces between adjacent cells. Beta and alpha cell cilia physically interact with neighboring islet cells pushing and strongly bending their plasma membranes. Furthermore, beta cells can contain multiple cilia that can meet with other islet cell cilia in the extracellular space. Additionally, beta cell cilia establish connections with islet-projecting nerves. These findings highlight the pivotal role of beta cell primary cilia in islet cell connectivity, pointing at their potential functional role in integrating islet intrinsic and extrinsic signals. These novel insights contribute to understanding their significance in health and diabetes.

cell biology↗