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Updated: May 31, 2026

High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
PAX4 R192H variant impairs β cell function by disrupting β cell identity and compensatory capacity in response to
Jungsun Park1, Kyun Hoo Kim1,2, Hyunsuk Lee3,4,5
1Graduate School of Medical Science and Engineering, Korea Advanced Institute of Science and Technology, 193 Munji-Ro, Yuseong-Gu, KAIST, Daejeon, 34051, Republic of Korea.
Background:
Type 2 diabetes is characterized by progressive β cell dysfunction, yet the mechanisms by which genetic susceptibility contributes to β cell area and function remain poorly understood. PAX4 is a transcription factor critical for β cell development, and a nonsynonymous variant resulting in an arginine-to-histidine substitution at position 192 (R192H) has been associated with increased type 2 diabetes risk and identified only in individuals of East Asian ancestry.
Methods:
Here, we generated PAX4 R192H knock-in (Pax4R192H/R192H) mouse and integrated metabolic phenotyping, bulk and single cell transcriptomics, and human cohort analyses to investigate how PAX4 R192H mutation increases the risk of type 2 diabetes.
Results:
Homozygote knock-in mice (Pax4 R192H) exhibited normal pancreatic endocrine development but developed glucose intolerance and impaired insulin secretion when fed a high-fat diet. Bulk and single-cell RNA-seq of islets from Pax4 R192H mice fed high-fat diet revealed impaired β cell adaptation to metabolic stress characterized by enhanced endoplasmic reticulum stress and impaired β cell maturity, with upregulation of dedifferentiation and α cell markers and downregulation of β cell identity genes. Pax4 deletion in β cells resulted in similar phenotypic and transcriptomic profiles to Pax4 R192H mice. In humans, the trajectories of β cell function were evaluated over a 14-year period using biennial oral glucose tolerance tests from 4,242 participants, where PAX4 R192H carriers showed 1.4-fold accelerated decline in disposition index, with increasing body mass index further exacerbating their type 2 diabetes risk.
Conclusions:
Overall, PAX4 is essential for maintaining β cell identity and compensatory function under metabolic stress, and the R192H variant predisposes to type 2 diabetes by impairing this adaptive capacity.
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