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Updated: Jan 14, 2026

Isolation of Primary Mouse Hepatocytes for Nascent Protein Synthesis Analysis by Non-radioactive L-azidohomoalanine Labeling Method
Published on: October 23, 2018
Beyond fructolysis: ketohexokinase orchestrates ER proteostasis in nutrient-stressed hepatocytes
Salaheldeen Elsaid1, Xiangdong Wu1, Junkai Hu1
1Radiology Department, University of Maryland, Baltimore, Maryland, United States.
Abstract:
Excessive intake of fructose and fats disrupts hepatocyte function by overwhelming endoplasmic reticulum (ER) capacity, leading to unresolved protein stress and progression to metabolic dysfunction-associated steatohepatitis (Shepherd EL, Saborano R, Northall E, Matsuda K, Ogino H, Yashiro H, Pickens J, Feaver RE, Cole BK, Hoang SA, Lawson MJ, Olson M, Figler RA, Reardon JE, Nishigaki N, Wamhoff BR, Günther UL, Hirschfield G, Erion DM, Lalor PF. JHEP Rep 3: 100217, 2021). Ketohexokinase (KHK), the primary enzyme for fructose metabolism, is increasingly recognized for nonmetabolic roles (Peng C, Yang P, Zhang D, Jin C, Peng W, Wang T, Sun Q, Chen Z, Feng Y, Sun Y. Acta Pharm Sin B 14: 2959-2976, 2024; Li X, Qian X, Peng LX, Jiang Y, Hawke DH, Zheng Y, Xia Y, Lee JH, Cote G, Wang H, Wang L, Qian CN, Lu Z. Nat Cell Biol 18: 561-571, 2016), but its function in regulating ER proteostasis under nutrient stress remains unclear. We show that steatogenic conditions synergistically induce lipid accumulation and robust KHK expression, accompanied by activation of the IRE1α-XBP1 branch of the unfolded protein response. This adaptive axis was observed in HepG2 cells, primary hepatocytes from Gubra Amylin NASH, (GAN) diet-fed mice, and liver biopsies from MASLD patients, establishing a conserved KHK-IRE1α axis across species. Khk knockdown disrupted this balance, causing accumulation of misfolded and ubiquitinated proteins, proteotoxic stress, and a shift toward PERK-CHOP-driven apoptosis. Similar signatures in Khk-deficient mouse livers further underscore KHK's role in sustaining ER homeostasis. Our findings identify KHK as a dual-function enzyme: a metabolic gatekeeper of fructose flux and a proteostatic regulator that safeguards hepatocyte survival. Although KHK contributes to steatosis, its complete loss destabilizes ER proteostasis, suggesting that selective inhibition of KHK enzymatic activity may offer therapeutic benefit without compromising ER function.NEW & NOTEWORTHY This study uncovers a noncanonical role for ketohexokinase (KHK) in maintaining ER proteostasis during nutrient overload. In hepatocytes exposed to fructose and saturated fat, KHK promotes adaptive IRE1α-XBP1 signaling and prevents proteotoxic stress and apoptosis. These findings position KHK as a metabolic checkpoint linking fructose metabolism to ER stress resolution and offer new insight into liver survival pathways relevant to MASLD and MASH.
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