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PFKFB3 controls acinar IP3R-mediated Ca2+ overload to regulate acute pancreatitis severity
Tan Zhang, Shengchuan Chen, Liang Li, Yuepeng Jin, Siying Liu, Zhu Liu, Fengyu Shi, Lifen Xie, Panpan Guo, Andrew C. Cannon, Akmal Ergashev, Haiping Yao, Chaohao Huang, Baofu Zhang, Lijun Wu, Hongwei Sun, Siming Chen, Yunfeng Shan, Zhengping Yu, Ezequiel J. Tolosa, Jianghuai Liu, Martin E. Fernandez-Zapico, Feng Ma, Gang Chen
Tan Zhang, Shengchuan Chen, Liang Li, Yuepeng Jin, Siying Liu, Zhu Liu, Fengyu Shi, Lifen Xie, Panpan Guo, Andrew C. Cannon, Akmal Ergashev, Haiping Yao, Chaohao Huang, Baofu Zhang, Lijun Wu, Hongwei Sun, Siming Chen, Yunfeng Shan, Zhengping Yu, Ezequiel J. Tolosa, Jianghuai Liu, Martin E. Fernandez-Zapico, Feng Ma, Gang Chen
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Research Article Inflammation Metabolism

PFKFB3 controls acinar IP3R-mediated Ca2+ overload to regulate acute pancreatitis severity

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Abstract

Acute pancreatitis (AP) is among the most common hospital gastrointestinal diagnoses; understanding the mechanisms underlying the severity of AP is critical for development of new treatment options for this disease. Here, we evaluate the biological function of phosphofructo-2-kinase/fructose-2,6-biphosphatase 3 (PFKFB3) in AP pathogenesis in 2 independent genetically engineered mouse models of AP. PFKFB3 was elevated in AP and severe AP (SAP), and KO of Pfkfb3 abrogated the severity of alcoholic SAP (FAEE-SAP). Using a combination of genetic, pharmacological, and molecular studies, we defined the interaction of PFKFB3 with inositol 1,4,5-trisphosphate receptor (IP3R) as a key event mediating this phenomenon. Further analysis demonstrated that the interaction between PFKFB3 and IP3R promotes FAEE-SAP severity by altering intracellular calcium homeostasis in acinar cells. Together, our results support a PFKFB3-driven mechanism controlling AP pathobiology and define this enzyme as a therapeutic target to ameliorate the severity of this condition.

Authors

Tan Zhang, Shengchuan Chen, Liang Li, Yuepeng Jin, Siying Liu, Zhu Liu, Fengyu Shi, Lifen Xie, Panpan Guo, Andrew C. Cannon, Akmal Ergashev, Haiping Yao, Chaohao Huang, Baofu Zhang, Lijun Wu, Hongwei Sun, Siming Chen, Yunfeng Shan, Zhengping Yu, Ezequiel J. Tolosa, Jianghuai Liu, Martin E. Fernandez-Zapico, Feng Ma, Gang Chen

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Figure 7

The kinase domain of PFKFB3 binds with the CD domain of IP3R and stabilizes IP3R expression.

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The kinase domain of PFKFB3 binds with the CD domain of IP3R and stabili...
(A) Whole cell lysate of 266-6 cells transfected with Flag-PFKFB3 and HA-IP3R-C immunoprecipitated and analyzed by Western blotting. (B) PLA signal detected in 266-6 cells cotransfected with Flag-PFKFB3 construct and HA-IP3R-C construct. Scale bar: 50 μm. (C) Western blot in 266-6 cells were cotransfected with Flag-PFKFB3 and HA-IP3R-C constructs. (D) Whole cell lysates from 266-6 cells transfected with Flag-PFKFB3 and HA-IP3R-CD were used for co-IP. (E) Whole cell lysates were prepared from 266-6 cells were cotransfected with Flag-PFKFB3 and HA-IP3R-HD3 constructs were used for co-IP. (F) The Flag-PFKFB3-K and HA-IP3R-CD constructs were transfected in 266-6 cells for the co-IP analysis. (G) The schematic containing structural information of IP3R and binding sites of PFKFB3 and IP3R interaction. (H and I) Western blot of IP3R (G) and p-IP3R (H) in 266-6 cells cotransfected with Flag-PFKFB3 construct or GFP construct in the presence of cycloheximide (CHX, 100 μg/mL; 0, 2, 4, 6 hours). (J) Purified Flag-PFKFB3 protein, GFP protein, HA-IP3R-C, ATP, and 1× kinase reaction buffer were used for the in vitro kinase assay. (K) The working model of PFKFB3 in FAEE-SAP progression. Each experiment was performed at least in triplicate.

Copyright © 2026 American Society for Clinical Investigation
ISSN 2379-3708

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