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Sakamaki, J.-I.

Publications and source records attributed to Sakamaki, J.-I..

2 recordsLinked to original sources

Role of the G-Protein Coupled Receptor 3-Salt Inducible Kinase 2 Pathway in Human β CellProliferation

Loss of pancreatic {beta} cells is the hallmark of type 1 diabetes (T1D) 1, for which provision of insulin is the standard of care. While regenerative and stem cell therapies hold the promise of generating single-source or host-matched tissue to obviate immune-mediated complications2-4, these will still require surgical intervention and immunosuppression. Thus, methods that harness the innate capacity of {beta}-cells to proliferate to increase {beta} cell mass in vivo are considered vital for future T1D treatment5, 6. However, early in life {beta} cells enter what appears to be a permanent state of quiescence 7-10, directed by an evolutionarily selected genetic program that establishes a {beta} cell mass setpoint to guard against development of fatal endocrine tumours. Here we report the development of a high-throughput RNAi screening approach to identify upstream pathways that regulate adult human {beta} cell quiescence and demonstrate in a screen of the GPCRome that silencing G-protein coupled receptor 3 (GPR3) leads to human pancreatic {beta} cell proliferation. Loss of GPR3 leads to activation of Salt Inducible Kinase 2 (SIK2), which is necessary and sufficient to drive cell cycle entry, increase {beta} cell mass, and enhance insulin secretion in mice. Taken together, targeting the GPR3-SIK2 pathway represents a novel avenue to stimulate the regeneration of {beta} cells.

cell biology↗

BRD4-mediated repression of p53 is a target for combination therapy in AML

Acute Myeloid Leukemia (AML) is a typically-lethal molecularly heterogeneous disease, with few broad-spectrum therapeutic targets. Unusually, most AML retain wild-type TP53, encoding the pro-apoptotic tumor suppressor p53. MDM2 inhibitors (MDM2i), which activate wild-type p53, and BET inhibitors (BETi), targeting the BET-family co-activator BRD4, both show encouraging pre-clinical activity, but limited clinical activity as single agents. Here, we report synergistic toxicity of combined MDM2i and BETi towards AML cell lines, primary human blasts and mouse models, resulting from BETis ability to evict an unexpected repressive form of BRD4 from p53 target genes, and hence potentiate MDM2i-induced p53 activation. These results indicate that wild-type TP53 and a transcriptional repressor function of BRD4 together represent a potential broad-spectrum synthetic therapeutic vulnerability for AML.

cell biology↗