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The P2X7-Mediated Mitochondrial ROS as an Emerging Core Target of Tuftsin Nanoparticles in Severe Acute Pancreatitis
E Wen1, Yu Tian2, Mingxiao Fang3
1Precision Medicine Center, The Second Affiliated Hospital of Chongqing Medical University, Chongqing 400010, People's Republic of China.
Abstract:
20% acute pancreatitis (AP) develops into severe AP (SAP), a global health crisis, with an increased mortality rate to 30%-50%. Mitochondrial damage and immune disorders are direct factors, which exacerbate the occurrence and progression of AP. So far, mitochondrial and immunity injury in SAP remains largely elusive, with no established treatment options available. Immunomodulation is a promising approach to treat pancreatitis. Herein, we proved that Tuftsin (TN), a vital endogenous immunomodulator, can inhibit SAP, while it is limited by extremely short biological half-life, low bioavailability, and the inconvenience of administration. Nano platform is the positive choice. Interestingly, we found that the activated P2X7 signaling was closely associated with the enhanced pancreatic inflammation via damaging mitochondrial function in SAP. Herein, we engineered a nanoplatform containing a Se-Se bond responsive for ROS to deliver TN, namely, DSPE-Se-Se-MPEG@TN (DSSM@TN), contributing to increases in TN's half-life and bioavailability. We synthesized TN-loaded ROS-responsive DSPE-Se-Se- MPEG@TN liposomes (DSSM@TN NPs) via a one-step emulsification method, which exhibited good biosecurity, high stability, suitable size, favorable ROS responsiveness and biocompatibility, as well as excellent capability for releasing TN during oxidative stress and inflammation environment. Moreover, the Se-Se bond with ROS-responsive ability was first proved to play a vital role for TN-loaded liposomes to enhance its anti-inflammation and antioxidant abilities via targeting damaged mitochondria during SAP progression. Mechanistically, DSSM@TN targeting damaged pancreas simultaneously inhibits mitochondrial dysfunction and inflammation in vivo and vitro via mitochondrial P2X7 signaling-impaired Nrf2/HO-1 signaling-inhibited PINK1/PARKIN pathway. Consequently, such a ROS-responsive immunotherapy nanomedicine targeted mitochondria holds great potential in facilitating substantial clinical progress in SAP treatment.
Insights
Tuftsin (TN) loaded nanoliposomes target damaged mitochondria to treat severe acute pancreatitis (SAP). This novel ROS-responsive immunotherapy improves TN delivery, reducing inflammation and mitochondrial dysfunction for better SAP treatment outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Immunology
- Gastroenterology
Background:
- Severe acute pancreatitis (SAP) is a critical condition with high mortality, often involving mitochondrial damage and immune dysfunction.
- Current treatments for SAP are limited, highlighting the need for novel therapeutic strategies.
- Tuftsin (TN), an endogenous immunomodulator, shows potential against SAP but suffers from poor bioavailability and short half-life.
Purpose of the Study:
- To develop a nanoplatform for improved delivery of Tuftsin (TN) to treat severe acute pancreatitis (SAP).
- To investigate the role of ROS-responsive nanoliposomes in enhancing TN's therapeutic efficacy.
- To elucidate the underlying mechanisms of nanomedicine action on mitochondrial function and inflammation in SAP.
Main Methods:
- Engineered ROS-responsive liposomes (DSMESM@TN NPs) encapsulating Tuftsin (TN).
- Utilized a Se-Se bond responsive to reactive oxygen species (ROS) for targeted delivery.
- Investigated in vitro and in vivo efficacy, focusing on mitochondrial P2X7 signaling, Nrf2/HO-1, and PINK1/PARKIN pathways.
Main Results:
- DSSM@TN NPs demonstrated good biosecurity, stability, suitable size, and biocompatibility.
- The nanoplatform effectively increased TN's half-life and bioavailability, releasing TN under oxidative stress.
- Targeting damaged mitochondria, DSSM@TN NPs inhibited inflammation and mitochondrial dysfunction by modulating key signaling pathways.
Conclusions:
- ROS-responsive Tuftsin (TN)-loaded nanoliposomes (DSSM@TN NPs) represent a promising strategy for severe acute pancreatitis (SAP) treatment.
- The nanomedicine effectively targets damaged mitochondria, mitigating inflammation and improving mitochondrial function.
- This approach holds significant potential for advancing clinical treatments for severe acute pancreatitis.
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