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Boyer, C. K.

Publications and source records attributed to Boyer, C. K..

3 recordsLinked to original sources

Synchronized proinsulin trafficking reveals delayed Golgi export accompanies beta-cell secretory dysfunction in a rodent model of hyperglycemia

The pancreatic islet {beta}-cells preference for release of newly synthesized insulin requires careful coordination of insulin exocytosis with sufficient insulin granule production to ensure that insulin stores exceed peripheral demands for glucose homeostasis. Thus, the cellular mechanisms regulating insulin granule production are critical to maintaining {beta}-cell function. In this report, we utilized the synchronous protein trafficking system, RUSH, in primary {beta}-cells to evaluate proinsulin transit through the secretory pathway leading to insulin granule formation. We demonstrate that the trafficking, processing, and secretion of the proinsulin RUSH reporter, proCpepRUSH, are consistent with current models of insulin maturation and release. Using a rodent dietary model of hyperglycemia and {beta}-cell dysfunction, we show that proinsulin trafficking is impeded at the Golgi and coincides with the decreased appearance of nascent insulin granules at the plasma membrane. Ultrastructural analysis of {beta}-cells from diabetic leptin receptor deficient mice revealed gross morphological changes in Golgi structure, including shortened and swollen cisternae, and partial Golgi vesiculation, which are consistent with defects in secretory protein export. Collectively, this work highlights the utility of the proCpepRUSH reporter in studying proinsulin trafficking dynamics and suggests that altered Golgi export function contributes to {beta}-cell secretory defects in the pathogenesis of Type 2 diabetes.

cell biology↗

Liquid-liquid phase separation facilitates the biogenesis of secretory storage granules

Insulin is a key regulator of human metabolism, and its dysfunction leads to diseases such as type 2 diabetes. It remains unknown how proinsulin is targeted from the trans-Golgi network (TGN) to secretory storage granules as no cargo receptor has been identified. Chromogranin proteins (CGs) are central regulators of granule biosynthesis, and it was proposed that their aggregation is critical for this process. However, the molecular mechanism by which these molecules facilitate sorting at the TGN is poorly understood. Here, we show that CGs undergo liquid-liquid phase separation (LLPS) at low pH independently of divalent cations, such as calcium. Liquid CG condensates, but not aggregates, recruit and sort proinsulin and other granule-destined cargo molecules towards secretory granules. Cargo selectivity is independent of sequence or structural elements but is based on the size and concentration of the client molecules at the TGN. Finally, electrostatic interactions and the N-terminal intrinsically disordered domain of chromogranin B facilitate LLPS and are critical for granule formation. We propose that phase-separated CGs act as a "cargo sponge" within the TGN lumen, gathering soluble client proteins into the condensate independently of specific sequence or structural elements, facilitating receptor-independent sorting. These findings challenge the canonical TGN sorting models and provide insights into granule biosynthesis in insulin-secreting {beta}-cells. One sentence summaryLiquid Chromogranin condensates recruit cargo molecules at the TGN for their delivery to secretory storage granules.

cell biology↗

Hyperglycemia-induced alteration of ER redox homeostasis delays ER export of proinsulin

Defects in the pancreatic {beta}-cells secretion system are well-described in Type 2 diabetes (T2D) and include impaired proinsulin processing and a deficit in mature insulin-containing secretory granules; however, the cellular mechanisms underlying these defects and the contribution of hyperglycemia to this process remain poorly understood. Here, we used an in situ fluorescent pulse-chase strategy and proximity labeling-based quantitative proteomics analysis to study proinsulin trafficking and demonstrate a direct link to glucose metabolism via the production of redox intermediates that facilitate proinsulin export from the ER. We show that ER export of proinsulin is delayed in T2D models resulting in decreased insulin granule formation and further demonstrate this process can be regulated by NADPH and reducing equivalent availability. Together, these data highlight a critical role for nutrient metabolism and mitochondrial dysfunction in the maladaptive remodeling of the {beta}-cells secretory pathway in the decline of {beta}-cell function in T2D.

cell biology↗