Macrophage-Targeted Nanocarriers Based on Tetrahedral DNA Nanostructure Alleviate Sepsis-Induced Acute Lung Injury by Triple-Pathway Suppression of Pyroptosis

  • ACS Appl Mater Interfaces. 2026 Apr 15;18(14):20128-20145. doi: 10.1021/acsami.6c01459.
Yunlong Zhang  1 Mingliang Pan  1 Fei Ma  2 Changting He  3 Qin Gu  3 Yongli Wang  4 Zhou Pan  1 Huijuan Wang  1 Yan Yan  1 Xinting Fu  5 Yue Jia  2 Han Duan  5 Yanqiu Wu  5 Zihui Wei  5 Jiamei Wang  4 Bin Li  3  2 Yuhui Liao  3  4 Liying Zhan  1
Affiliations
  • 1. Department of Critical Care Medicine & Department of Emergency, Renmin Hospital of Wuhan University, Wuhan, Hubei 430060, China.
  • 2. School of Basic Medical Sciences, Ningxia Medical University, Yinchuan 750004, Ningxia China.
  • 3. School of Inspection, Ningxia Medical University, Yinchuan, Ningxia 750004, China.
  • 4. Institute for Engineering Medicine, Kunming Medical University, Kunming, Yunnan 650500, China.
  • 5. Department of Microbiology, School of Public Health, Southern Medical University, Guangzhou, Guangdong 510515, China.
Abstract

Sepsis-induced acute lung injury (SI-ALI) is a critical complication of sepsis characterized by severe pulmonary edema, hyper-inflammatory responses, and high mortality rates, for which precise therapeutic strategies remain limited. In this study, we developed a macrophage-targeting, dimethyl fumarate (DMF)-loaded tetrahedral DNA nanoplatform (T-D@TDN) and evaluated its physicochemical properties, antipyroptotic mechanisms, and therapeutic efficacy in SI-ALI. The nanostructure exhibits excellent biocompatibility, efficient alveolar macrophage (AM) targeting, and prolonged pulmonary retention following intranasal administration. In a murine model of SI-ALI induced by cecal ligation and puncture (CLP), T-D@TDN treatment significantly reduced pulmonary inflammatory cytokine levels and alleviated pulmonary edema and tissue injury, accompanied by a marked improvement in the 48-h survival rate. Mechanistically, T-D@TDN integrates a triple-regulation strategy to suppress pyroptosis: the TDN framework exerts intrinsic ROS-scavenging activity, while the released DMF activates the NRF2/HO-1 axis to further eliminate intracellular ROS and directly inhibits GSDMD cleavage. Collectively, these findings demonstrate that T-D@TDN functions as a multifunctional inhalable nanotherapeutic agent capable of multidimensionally regulating oxidative stress and Pyroptosis pathways, providing a promising noninvasive strategy for the treatment of SI-ALI and related inflammatory lung diseases.

Keywords
alveolar macrophage; gasdermin D; pyroptosis; sepsis-induced acute lung injury; tetrahedral DNA nanostructure.
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