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Biology subjects

Annes, J.

Publications and source records attributed to Annes, J..

2 recordsLinked to original sources

An shRNA screen in primary human beta cells identifies the serotonin 1F receptor as a negative regulator of survival during transplant

Islet transplantation can cure type 1 diabetes, but peri-transplant beta cell death limits this procedure to those with low insulin requirements. Improving human beta cell survival or proliferation may make islet transplantation a possibility for more type 1 patients. To identify novel regulators of beta cell survival and proliferation, we conducted a pooled small hairpin RNA (shRNA) screen in primary human beta cells transplanted into immunocompromised mice. shRNAs targeting several cyclin dependent kinase inhibitors were enriched after transplant. Here, we focused on the Gi/o-coupled GPCR, serotonin 1F receptor (HTR1F, 5-HT1F) which our screen identified as a negative regulator of beta cell numbers after transplant. In vitro, 5-HT1F knockdown induced human beta cell proliferation but only when combined with harmine and exendin-4. In vivo, knockdown of 5-HT1F reduced beta cell death during transplant. To demonstrate the feasibility of targeting 5-HT1F in islet transplant, we identified and validated a small molecule 5-HT1F antagonist. This antagonist increased glucose stimulated insulin secretion from primary human islets and cAMP accumulation in primary human beta cells. Finally, the 5-HT1F antagonist improved glycemia in marginal mass, human islet transplants into immunocompromised mice. We identify 5-HT1F as a novel druggable target to improve human beta cell survival in the setting of islet transplantation. One Sentence SummarySerotonin 1F receptor (5-HT1F) negatively regulates insulin secretion and beta cell survival during transplant.

cell biology↗

β-Cells as a Cell Factory for On-Demand Recombinant Protein Dosing: Harnessing the Neuroendocrine Cell Secretory Pathway for Controlled Release

This study explores the potential of utilizing {beta}-cells, exemplified with R7T1 {beta}-cell pseudoislets, as a transplantable cell factory for on-demand recombinant protein therapeutic delivery. While mammalian cell lines are widely used for in vitro protein production, the commonly utilized constitutive secretion pathway poses challenges to in vivo cell therapy, especially for delivering proteins requiring precise exposure kinetics. The proposed approach capitalizes on unique aspects of {beta}-cells, including substantial vesicular protein storage capacity and electrochemically-regulated protein release, to facilitate timely and titratable in vivo therapeutic delivery. Examining a variety of strategies to acheive {beta}-cell glucagon or glucagon-like peptide 1 (GLP-1) storage and secretion, we devised a flexible {beta}-cell-based expression platform for efficient cellular peptide production and on-demand release. This platform utilizes the preproinsulin coding sequence as a template, wherein therapeutic peptides of interest (glucagon or GLP-1) are substituted for C-peptide while the A- and B-peptide insulin chains are mutated to prevent bio-active insulin production. This approach overcomes the challenge of efficient bio-active peptide expression by leveraging the endogenous {beta}-cell peptide expression, translation, processing, storage and secretion machinery. Furthermore, {beta}-cells provide a mechanism for scalable electyrochemnically-triggered peptide delivery. This transformative strategy, which may be extended to other proteins and peptide expression cassettes, holds significant promise for targeted and temporally controlled in vivo production and release of recombinant protein therapeutics. The study suggests potential applications in addressing challenges in metabolic disorders, blood disorders, and oncology. Future refinements may focus on optimizing vector design, peptide production, and in vivo adaptation.

bioengineering↗