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The type 2 diabetes gene product STARD10 is a phosphoinositide-binding protein that controls insulin secretory granule biogenesis
- Source :
- Molecular Metabolism, Molecular metabolism, Molecular metabolism, Elsevier, 2020, 40, pp.101015. ⟨10.1016/j.molmet.2020.101015⟩, bioRxiv, Molecular metabolism, 2020, 40, pp.101015. ⟨10.1016/j.molmet.2020.101015⟩, Molecular Metabolism, Vol 40, Iss, Pp 101015-(2020), Carrat, G, Haythorne, E, Tomas, A, Haataja, L, Muller, A, Arvan, P, Piunti, A, Cheng, K, Huang, M, Pullen, T J, Georgiadou, E, Stylianides, T, Amirruddin, N S, Salem, V, Distaso, W, Cakebread, A, Heesom, K J, Lewis, P A, Hodson, D J, Briant, L J B, Fung, A, Sessions, R B, Alpy, F, Kong, A, Benke, P, Torta, F, Keong Teo, A K, Leclerc, I, Solimena, M, Wigley, DB & Rutter, G A 2020, ' The type 2 diabetes gene product STARD10 is a phosphoinositide binding protein that controls insulin secretory granule biogenesis ', Molecular metabolism, vol. 40, 101015 . https://doi.org/10.1016/j.molmet.2020.101015
- Publication Year :
- 2020
- Publisher :
- Elsevier, 2020.
-
Abstract
- Objective Risk alleles for type 2 diabetes at the STARD10 locus are associated with lowered STARD10 expression in the β-cell, impaired glucose-induced insulin secretion, and decreased circulating proinsulin:insulin ratios. Although likely to serve as a mediator of intracellular lipid transfer, the identity of the transported lipids and thus the pathways through which STARD10 regulates β-cell function are not understood. The aim of this study was to identify the lipids transported and affected by STARD10 in the β-cell and the role of the protein in controlling proinsulin processing and insulin granule biogenesis and maturation. Methods We used isolated islets from mice deleted selectively in the β-cell for Stard10 (βStard10KO) and performed electron microscopy, pulse-chase, RNA sequencing, and lipidomic analyses. Proteomic analysis of STARD10 binding partners was executed in the INS1 (832/13) cell line. X-ray crystallography followed by molecular docking and lipid overlay assay was performed on purified STARD10 protein. Results βStard10KO islets had a sharply altered dense core granule appearance, with a dramatic increase in the number of “rod-like” dense cores. Correspondingly, basal secretion of proinsulin was increased versus wild-type islets. The solution of the crystal structure of STARD10 to 2.3 Å resolution revealed a binding pocket capable of accommodating polyphosphoinositides, and STARD10 was shown to bind to inositides phosphorylated at the 3’ position. Lipidomic analysis of βStard10KO islets demonstrated changes in phosphatidylinositol levels, and the inositol lipid kinase PIP4K2C was identified as a STARD10 binding partner. Also consistent with roles for STARD10 in phosphoinositide signalling, the phosphoinositide-binding proteins Pirt and Synaptotagmin 1 were amongst the differentially expressed genes in βStard10KO islets. Conclusion Our data indicate that STARD10 binds to, and may transport, phosphatidylinositides, influencing membrane lipid composition, insulin granule biosynthesis, and insulin processing.<br />Highlights • βStard10KO β-cells show altered granule morphology. • Deletion of Stard10 increased basal secretion of newly synthesised proinsulin. • βStard10KO islets had an altered lipidomics profile, including phosphatidylinositols. • STARD10 bound to phosphoinositides in a lipid overlay assay. • STARD10 structure reveals that its cavity readily accommodates phosphatidylinositols.
- Subjects :
- Male
Proteomics
0301 basic medicine
medicine.medical_treatment
Phosphoinositides
Phosphatidylinositols
0601 Biochemistry and Cell Biology
Mice
chemistry.chemical_compound
Insulin granule biogenesis
Lipid transporter
Pancreatic β-cell
Type 2 diabetes
0302 clinical medicine
Risk Factors
Insulin-Secreting Cells
Insulin Secretion
Insulin
Inositol
STARD10
Proinsulin
Mice, Knockout
[SDV.MHEP.EM] Life Sciences [q-bio]/Human health and pathology/Endocrinology and metabolism
0303 health sciences
Chemistry
Kinase
[SDV.MHEP.EM]Life Sciences [q-bio]/Human health and pathology/Endocrinology and metabolism
Lipids
Cell biology
Molecular Docking Simulation
Female
Protein Binding
Insulin processing
lcsh:Internal medicine
030209 endocrinology & metabolism
Article
Gene product
03 medical and health sciences
medicine
Animals
Phosphatidylinositol
lcsh:RC31-1245
Molecular Biology
Alleles
030304 developmental biology
Dense core granule
Secretory Vesicles
Cell Biology
Lipid Metabolism
Phosphoproteins
0606 Physiology
Mice, Inbred C57BL
Disease Models, Animal
030104 developmental biology
Diabetes Mellitus, Type 2
Carrier Proteins
Subjects
Details
- Language :
- English
- ISSN :
- 22128778
- Database :
- OpenAIRE
- Journal :
- Molecular Metabolism, Molecular metabolism, Molecular metabolism, Elsevier, 2020, 40, pp.101015. ⟨10.1016/j.molmet.2020.101015⟩, bioRxiv, Molecular metabolism, 2020, 40, pp.101015. ⟨10.1016/j.molmet.2020.101015⟩, Molecular Metabolism, Vol 40, Iss, Pp 101015-(2020), Carrat, G, Haythorne, E, Tomas, A, Haataja, L, Muller, A, Arvan, P, Piunti, A, Cheng, K, Huang, M, Pullen, T J, Georgiadou, E, Stylianides, T, Amirruddin, N S, Salem, V, Distaso, W, Cakebread, A, Heesom, K J, Lewis, P A, Hodson, D J, Briant, L J B, Fung, A, Sessions, R B, Alpy, F, Kong, A, Benke, P, Torta, F, Keong Teo, A K, Leclerc, I, Solimena, M, Wigley, DB & Rutter, G A 2020, ' The type 2 diabetes gene product STARD10 is a phosphoinositide binding protein that controls insulin secretory granule biogenesis ', Molecular metabolism, vol. 40, 101015 . https://doi.org/10.1016/j.molmet.2020.101015
- Accession number :
- edsair.doi.dedup.....4ee31ae299bb38311feeaf4ba6eff987
- Full Text :
- https://doi.org/10.1016/j.molmet.2020.101015⟩