IER3IP1 is critical for maintaining glucose homeostasis through regulating the endoplasmic reticulum function and survival of β cells

Author:

Yang Jing1,Zhen Jinyang1,Feng Wenli1,Fan Zhenqian2,Ding Li1,Yang Xiaoyun1,Huang Yumeng1ORCID,Shu Hua1,Xie Jing1,Li Xin1ORCID,Qiao Jingting1ORCID,Fan Yuxin1,Sun Jinhong1,Li Na1,Liu Tengli34,Wang Shusen345,Zhang Xiaona1,Arvan Peter6ORCID,Liu Ming1ORCID

Affiliation:

1. Department of Endocrinology and Metabolism, Tianjin Medical University General Hospital, Tianjin 300052, China

2. Department of Endocrinology, The Second Hospital of Tianjin Medical University, Tianjin 300211, China

3. Organ Transplant Center, Tianjin First Central Hospital, Nankai University, Tianjin 300192, China

4. NHC Key Laboratory for Critical Care Medicine, Tianjin First Central Hospital, Tianjin 300384, China

5. Human Islet Resource Center, Tianjin First Central Hospital, Tianjin 300384, China

6. Division of Metabolism, Endocrinology & Diabetes, University of Michigan Medical School, Ann Arbor, MI 48105

Abstract

Recessive mutations in IER3IP1 (immediate early response 3 interacting protein 1) cause a syndrome of microcephaly, epilepsy, and permanent neonatal diabetes (MEDS). IER3IP1 encodes an endoplasmic reticulum (ER) membrane protein, which is crucial for brain development; however, the role of IER3IP1 in β cells remains unknown. We have generated two mouse models with either constitutive or inducible IER3IP1 deletion in β cells, named IER3IP1-βKO and IER3IP1-iβKO, respectively. We found that IER3IP1-βKO causes severe early-onset, insulin-deficient diabetes. Functional studies revealed a markedly dilated β-cell ER along with increased proinsulin misfolding and elevated expression of the ER chaperones, including PDI, ERO1, BiP, and P58IPK. Islet transcriptome analysis confirmed by qRT-PCR revealed decreased expression of genes associated with β-cell maturation, cell cycle, and antiapoptotic genes, accompanied by increased expression of antiproliferation genes. Indeed, multiple independent approaches further demonstrated that IER3IP1-βKO impaired β-cell maturation and proliferation, along with increased condensation of β-cell nuclear chromatin. Inducible β-cell IER3IP1 deletion in adult (8-wk-old) mice induced a similar diabetic phenotype, suggesting that IER3IP1 is also critical for function and survival even after β-cell early development. Importantly, IER3IP1 was decreased in β cells of patients with type 2 diabetes (T2D), suggesting an association of IER3IP1 deficiency with β-cell dysfunction in the more-common form of diabetes. These data not only uncover a critical role of IER3IP1 in β cells but also provide insight into molecular basis of diabetes caused by IER3IP1 mutations.

Funder

National Natural Science Foundation of China

MOST | National Key Research and Development Program of China

Tianjin Municipal Science and Technology Bureau

Tianjin Municipal Human Resources and Social Security Bureau

Tianjin Key Medical Discipline (Specialty) Constrution Project

HHS | National Institutes of Health

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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