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Biology subjects

Huang, L. Q.

Publications and source records attributed to Huang, L. Q..

2 recordsLinked to original sources

Construction of Animal Models Based on Exploring Pathological Features and Mechanisms of Different Locations in the Progression of DVT-APTE-CTEPD/CTEPH

BackgroundChronic thromboembolic pulmonary disease (CTEPD) and chronic thromboembolic pulmonary hypertension (CTEPH) are sequelae of acute pulmonary embolism (APE) and severely affect patients health and quality of life. The treatment of these conditions is challenging, and their underlying mechanisms remain unclear. The main reason for this is the lack of an animal model that can fully simulate the entire chain of DVT-APTE-CTEPD/CTEPH progression. The objective of this study is to construct an ideal animal model that simulates the major pathological changes of DVT-APTE-CTEPD/CTEPH and can be used for mechanistic exploration. We aim to compare the advantages and disadvantages of different modeling approaches and provide an experimental basis for investigating the mechanisms of pulmonary embolism chronicization at different stages of evolution. Methods and MaterialsWe first evaluated the pathological changes in the pulmonary arterial intima stripping tissue of CTEPH patients. Animal models were established by multiple injections of thrombus columns through the internal jugular vein to simulate distal remodeling of the pulmonary artery. To simulate significant remodeling and fibrosis in the middle and distal segments of the pulmonary artery, thrombus columns were injected along with splenectomy. A CTEPD model with intimal fibrosis remodeling was successfully established by selectively injecting large thromboemboli into the pulmonary artery sites in large animals (dogs). A rat model with pathological manifestations of intimal fibrosis remodeling in the proximal end of the pulmonary artery was constructed using large thrombi combined with nitric oxide synthase inhibitors. An animal model of DVT was established using the inferior vena cava ligation method. ResultsAccording to the different pathological features and mechanisms observed in the progression of human DVT-APTE-CTEPD/CTEPH, we constructed animal models that conform to these pathological manifestations and mechanisms, each with its own advantages. Furthermore, the different methods used to construct animal models can be integrated and applied together. ConclusionAnimal models constructed using different modeling methods can effectively simulate the pathological and physiological manifestations of the corresponding stages of chronic pulmonary embolism. Researchers can select the aforementioned models according to their specific research purposes, directions, and requirements.

zoology↗

"Hitting Two Birds with One Stone" Design of Intestinal Integrin-Targeting and Redox Homeostasis-Regulating Oral Nanotherapy for Ulcerative Colitis

Designing highly efficient orally administrated nanotherapeutics with specific inflammatory site-targeting functions in the gastrointestinal (GI) tract for ulcerative colitis (UC) management is a significant challenge. Straightforward and adaptable modular multifunctional nanotherapeutics represent groundbreaking advancements and are crucial to promoting broad application in both academic research and clinical practice. In this study, we focused on exploring a specific targeting modular and functional oral nanotherapy, serving as "one stone", for the directed localization of inflammation and the regulation of redox homeostasis, thereby achieving effects against "two birds" for UC treatment. The designed nanotherapeutic agent OPNs@LMWH, which has a core-shell structure composed of oxidation-sensitive {varepsilon}-polylysine nanoparticles (OPNs) in the core and low-molecular-weight heparin (LMWH) in the shell, exhibited specific active targeting effects and therapeutic efficacy simultaneously. We qualitatively and quantificationally confirmed that OPNs@LMWH possessed high integrin M-mediated immune cellular uptake efficiency and preferentially accumulated in inflamed lesions. Compared with bare OPNs, OPNs@LMWH exhibited enhanced intracellular reactive oxygen species (ROS) scavenging and anti-inflammatory effects. After oral administration of OPNs@LMWH to mice with dextran sulfate sodium (DSS)-induced colitis, robust resilience was observed. OPNs@LMWH effectively ameliorated oxidative stress and inhibited the activation of inflammation-associated signalling pathways while simultaneously bolstering the protective mechanisms of the colonic epithelium. Overall, these findings underscore the compelling dual functionalities of OPNs@LMWH, which enable effective oral delivery to inflamed sites, thereby facilitating precise UC management.

bioengineering↗